Showing posts with label Power. Show all posts
Showing posts with label Power. Show all posts

Friday, May 20, 2016

Keep Your Knowledge Current in Electrical Design for Mission Critical Supply

Within the built environment, mission critical facilities and data centers have particular power requirements that significantly impact how they are designed and operated. Further to the


(1) Site Selection,
(2) Space Planning,
(3) Cooling,
(4) Redundancy and
(5) Fire Suppression,


you are recommended to join the 2-day advanced learning (CIBSE approved CPD Course) in Electrical Design for Mission Critical Supply.




With more than 18 years experience in critical facilities and electrical system design, the Instructors (with Chartered Engineer (CEng) status) will detail about the international standards, best practices and design project experience. You will gain insight into the critical supply system, from power components to distributions and efficiency; from power requirements to sizing, design, testing and commissioning.


-- Concept on primary supply and secondary supply
-- Power flow in mission critical supply system
-- Features of major equipment for critical supply

  > Uninterrupted power supply and power storage
  > Backup generator
  > Automatic transfer switch
  > Static transfer switch
  > Isolation transformer

-- Efficiency assessment
-- Power quality review
-- Configuration diagram of critical supply (N+1 / 2N) design & analysis
-- Review of cable sizing to incorporate harmonics content
-- Earthing system design
-- Testing and commissioning requirements
-- Brief of Systems Merging Appraisal Test (SMAT)


This is an advanced learning section on top of the Data Center Facilities Design & Infrastructure Engineering. For details, please refer to http://www.stmedia-asia.com/newsletter_6.html.



About the Organizer

Strategic Media Asia (SMA) is one of the approved CPD course providers of the Chartered Institution of Building Services Engineers (CIBSE) UK.

The team exits provide an interactive environment and opportunities for members of ICT industry and facilities' engineers to exchange professional views and experience.

SMA connects IT, Facilities and Design. For accreditation details and background, please visit www.stmedia-asia.com/about.html.



Tuesday, November 12, 2013

Data Center Design: Battery-based / Static UPS or Rotary UPS?

UPSs vary greatly in physical size, weight, form factor (e.g., standalone vs. rack-based), capacity, supported input power source (e.g., single phase vs. 3-phase), technological design, and cost.

When considering the procurement of a UPS for a data center or other mission critical facility, there are a number of design and acquisition decisions to make such as:


  1. The size of the load to be protected
  2. The battery runtime required
  3. The proper input and output voltages
  4. The right type of system (i.e. on-line, line-interactive, etc.)
  5. Pricing and performance seen within manufacturer product portfolios
  6. The advances in technologies
  7. The ideal level of redundancy (i.e., N, N+1, 2N, 2N+1, etc.)
  8. The required output distribution


This time our focus will be limited to comparing 3-phase battery-based UPS and rotary UPSs that support data centers. Some of the common 3-phase UPS architectures are listed below:


- Double Conversion On-Line UPS
- Delta Conversion On-Line UPS
- Engine-coupled Rotary UPS
- Flywheel UPS


Other Single phase UPS systems (will be discussed later):


  • Standby UPS (single-phase load ranges from 100 to 1,500 VA)
  • Line Interactive UPS (single-phase load ranges from 0.5 to 10 kVA)
  • Standby Ferro UPS (single-phase load ranges from 3 to 15 kVA)



Double Conversion On-Line UPS

This design is by far the most common type for loads above 10 kVA. A double conversion UPS is considered ‘on-line’ because its nearly ideal output waveform is derived completely from battery power through its inverter. As such, this isolates the output from the input. The input primarily serves to continually charge the battery.

Therefore, during an AC power failure, on-line operation results in no transfer time. Since 100% of the load power is converted twice, once from AC to DC (to charge the battery) and a second time from DC to AC (for the output), a double conversion UPS is inherently less efficient than offline UPS types.

These UPSs are available in a broad range of sizes for three-phase loads from 10 to 1,000 kVA. Furthermore, these UPSs can be arranged in a vast array of configurations to achieve high availability for very large three-phase data center loads.




Delta Conversion On-Line UPS

That design is a more recent topology that was originally patented and utilized exclusively by APC for its Silcon-series 3-phase UPS line.

The advantage of this topology is its energy efficiency. It achieves high efficiency by not processing 100% of the power, 100% of the time, as is the case with a double conversion UPS.

Rather, it processes only the portion of the power that is outside of the ‘window’ of an acceptable power waveform, while at the same time having an output that is on-line with load such that there is only a load step change from steady-state to full battery-load operation. As such, this technology is best suited for the highest power applications and well above 1,000 kW.




Engine-coupled Rotary UPS

A rotary UPS is one that unlike the prior approaches does not rely on electronics to pass through or recreate an output AC waveform. Rather, a rotary UPS relies on a mechanical motor and generator to create a pure sine wave output without the need for filter capacitors. Additionally, the resulting low input impedance allows the ability to handle any type of load no matter how ‘dirty’ it may be.




Also, this approach yields an ability to handle high fault currents and provide isolation from high harmonic load input currents. Finally, a rotary UPS can be configured to use direct diesel bypass. By comparison, a static (or battery-based) UPS, can only source its load from a generator in a ‘break before make’ fashion. Due to the nature of its ability to handle ‘difficult’ loads, rotary UPSs are large in size and expensive. As such, they are reserved for large loads in excess of 1,000 kW.




The advantages of Rotary UPS:

  1. Most energy efficient UPS/CPS system
  2. Use of stored kinetic energy
  3. No batteries required, that means no chemical waste!
  4. Save energy for battery room's ventilation and cooling 
  5. Lowest Total Cost of Ownership (TCO)
  6. Highest power factor
  7. No conditioned battery room required, that means saving space
  8. Long life time
  9. Efficiency about 96%



Flywheel UPS

Flywheel UPS system is similar to the settings of battery-based UPS system. The rotary UPS is called “rotary” because rotating components (such as a motor-generator) within the UPS are used to transfer power to the load. The true definition of a rotary UPS is any UPS whose output sine wave is the result of rotating generation. Therefore, the UPS in Figure below, although it utilizes a flywheel as a rotating temporary energy storage source in case the utility fails, is not, by definition, a rotary UPS.






About The Blogger


Strategic Media Asia (SMA, www.stmedia-asia.com) is a leading technical training and event organizer for corporations specialized in data center design & build, E&M facilities, telecom, ICT, finance and colocation. Currently, SMA delivers a series of data center trainings and qualification programs in Hong Kong, Taiwan and Macau.

All these events / training seminars are designed to support the leadership needs of senior executives (Chief Information Officers, IT Directors / Managers, Facilities Managers, company decision makers, etc.) and to provide useful and applicable knowledge.

For detail, please visit our data center courses & training seminars at http://www.stmedia-asia.com/trainings.html.


Monday, October 28, 2013

Now for Sale - Training Manual of "HVAC Design and Cooling Specialist for Data Center Efficiency"


HVAC DESIGN & COOLING SPECIALIST FOR DATA CENTER EFFICIENCY


This is a training manual developed by a team of experienced Chartered Engineers (CEng). For data center operators and facilities managers, we help you to understand key challenges and consider different factors, from design, testing, commissioning, sustainability and efficiency, of HVAC (Heating, Ventilation, and Air Conditioning) system for data centers.

In addition, the manual details the guidelines of data centers’ cooling criteria, HVAC load development, air distribution, liquid cooling, contamination, availability and redundancy, Computer Fluid Dynamic (CFD) model, energy efficiency, etc., from general theory to technical implementation.

To predict a data center’s power and heat loads over the years ahead is the hardest thing for data center owners. It introduces datacom power trends and cooling applications showing expected growth in power density for different types of computing equipment out to 2020.


Total Number of Page: 106
Total Number of Slide Contained: 204
Size: 210mm x 300mm x 10mm
Language: English
Color: Black & White
CD / Soft Copy: Not Included

THE MANUAL CONTENT



Datacom Equipment Power Trends and Cooling Applications

(a) load trends and their applications
(b) air cooling and liquid cooling of computer equipment

Design Consideration

(a) design criteria and HVAC load
(b) computer room cooling and air distribution
(c) liquid cooling
(d) availability and redundancy
(e) integration with other MEP system
(f) controls and computer fluid dynamics

Testing and Commissioning

(a) air cleanliness test, heat load test
(b) factory acceptance test and site acceptance test
(c) integrated performance test (IST)

Sustainable Design

(a) combined heat power plant (CHP)
(b) solar, geothermal and evaporative cooling method
(c) air side economizers
(d) desiccant unit

Energy Efficiency

(a) power usage effectiveness (PUE)
(b) chilled water plant optimization
(c) water side and air side equipment
(d) part load operation
(e) controls and energy management
(f) LEED certified data center
(g) building energy code















ORDER METHOD

Please contact us at info@stmedia-asia.com
The manual is also available on eBay: http://www.ebay.com/usr/st-media


Monday, September 9, 2013

Data Center Power & Cooling Strategies

In today’s world of high-density data center equipment, power and cooling needs are a supply and demand problem. You should understand the supply limitations of a data center and the demand of the equipment. The cost of data centers is on the rise as a result of the increased power capacity required. While server costs have remained virtually consistent, power density has been increasing.

It’s imperative for CFOs to understand the cost of energy relative to the cost of the server because the need for more data centers is increasing due to the demand for more business applications.

Powering and cooling your own data center is not only of budgetary concern, there is risk in the continuity of the physical environment itself. It is recommended that the temperature ranges 16-24*C with a humidity of 40-55%. The temperature is constantly on the rise because the electrical power used heats the air.

Unless that heat is removed, the ambient temperature will rise, resulting in equipment malfunction. Too much humidity will cause water to condense on internal parts and not enough humidity can produce static electricity discharge problems which will damage components.







When housing your own center, it is critical that all elements of the electrical system, including backups, should be fully duplicated and critical servers connected to both the ‘A’ and ‘B’ power feeds. Your backup power should consist of one or more uninterrupted power supplies (UPS), battery banks, or diesel generators. Static switches are sometimes used to ensure instantaneous switch-over in the event of a power failure. Power is the critical element in a data center because its performance affects the proper execution of every other system in the facility.

If you choose to house your IT operations in data centers, computer rooms, NOC’s, or server farms, be diligent in your research of power and cooling systems because they need to be carefully coordinated. Your equipment and data need 24 hours of protection 7 days a week.


About The Blogger


Strategic Media Asia (SMA, www.stmedia-asia.com) is a leading technical training and event organizer for corporations specialized in data center design & build, E&M facilities, telecom, ICT, finance and colocation services. Currently, SMA delivers a series of data center trainings and qualification programs in Hong Kong, Taiwan and Macau.

All these events / training seminars are designed to support the leadership needs of senior executives (Chief Information Officers, IT Directors / Managers, Facilities Managers, company decision makers, etc.) and to provide useful and applicable knowledge.

For detail, please visit SMA's Technical Training Seminars & Data Center Qualification Programs.


Tuesday, May 14, 2013

How to Upgrade your Data Center and Critical Facilities?


An aging data center may no longer be able to meet the power, cooling and structural demands of advancing technologies, but few businesses have the time or the capital to build new facilities.

Fortunately, organizations can extend the working life of their data center by renovating the facility by making changes that cost little to nothing. Data center upgrades allow a business to adopt new standards and improve existing infrastructures to introduce new technologies with better performance and more efficiency.

There are several data center design changes that can extend the life of your facilities and data center


(1) Elevate your data center temperature



The data center's working temperature has long been a subject of myth and legend, but research and initiatives from industry organizations such as  the American Society of Heating, Refrigerating and Air-Conditioning Engineers (ASHRAE) have found that data centers don't need to be cooled like meat lockers. Modern servers and other computing equipment can operate reliably at elevated temperatures.

A 2008 ASHRAE document recommended a temperature range from 65 to 80 degrees Fahrenheit for Class 1 data center equipment. Recommendations in 2011 broadened the allowable temperature range from 59 to 90 degrees Fahrenheit for enterprise-class servers and 41 to 113 degrees Fahrenheit for appropriately designed servers and other equipment.

In addition, the extended temperature range also makes it possible to adopt alternative or supplemental cooling schemes (at least during certain parts of the day), such as free air or air/water economizers -- cooling technologies that might not have even been considered when your data center was first built.


(2) Upgrade servers and systems for better consolidation and efficiency



Servers consume the majority of energy in a data center -- primarily in the processors and memory components. Organizations can gain significant energy efficiency by upgrading servers to more efficient models during normal technology refresh cycles where capital is already budgeted. The newer server may also provide greater amounts of memory, allowing a virtualized server to provide much higher levels of consolidation than earlier servers.

This means the same amount of computing work can be done with far fewer servers, saving equipment capital and generating only a fraction of the heat for a data center's cooling system to contend with.


(3) Change the system layout and rack layout for power and cooling efficiency


It is a matter of Hot Aisle & Cold Aisle.

Suppose you had a traditional data center where a large computer room air-conditioning unit (CRAC) cooled the room. Now imagine that a server refresh and consolidation project slashed the number of servers by 75%. With just a quarter of the original server count in this example, it may be possible to rearrange the remaining servers in far fewer racks and use containment to enclose the remaining servers. This limits the air volume that must be cooled, significantly reducing the amount of mechanical cooling needed and allowing for alternative cooling technologies.

In other cases, under-floor cooling may be more effective by reworking the electrical cabling, network cabling and water lines that cross below the floor.

A poorly designed and haphazard layout can obstruct cooling air distribution, making more work for the mechanical cooling unit. In addition, any water distribution increases the potential for damage to electrical and network wiring, so many organizations opt to route electrical and network wiring overhead -- leaving water lines under-floor -- and may even upgrade network cabling to allow for future bandwidth improvements.

Don't overlook the rack space itself. For example, fully populating racks can concentrate more equipment in less space, making any containment -- and associated cooling -- more effective. And some racks may not be deep enough to accommodate new generations of computing equipment. This can lead to wiring congestion and airflow problems.


(4) Consider supplemental or alternative cooling schemes



Mechanical heating, ventilation and air conditioning (HVAC) systems are a staple of the modern data center, but they are also costly, energy-hungry and a potential single-point of failure in data center availability. If the cooling system fails, a data center can overheat in a matter of minutes.

Data center renovations often focus on ways to supplement or replace traditional mechanical cooling with alternative equipment or methods that are enabled by higher operating temperatures, better containment and less equipment.

Popular alternative cooling approaches include chilled water heat exchangers (water economizers), evaporation cooling and even free air cooling (air economizers).

These methods, however, require affordable environmental resources that are suited to the task and available for much of the day. For example, using cold lake water to drive a water economizer requires a nearby lake. In many cases, these alternative methods are added to supplement traditional HVAC, lowering run times and power needs.

Organizations that must continue using HVAC are taking a fresh look at the cooling system's capacity and efficiency. The potential problem is that a large, aging HVAC system runs even less efficiently if it is used infrequently; easing the cooling load on your legacy HVAC system might actually cost more and be harder on the mechanical system.

This means that raising operating temperatures and reducing the amount of computing equipment may justify a smaller cooling system.


(5) Consider availability and reliability issues in power distribution


Upgrading the uninterrupted power supply (UPS) systems to a newer model can improve UPS energy efficiency and provide more intelligent power monitoring/measurement capabilities that complement a data center infrastructure management scheme.

When a UPS is replaced, it is hopefully with a higher efficiency system, and may also become a redundant [N+1] configuration and possibly even a modular or incremental capacity solution. Power equipment upgrades may spawn broader wiring and distribution upgrades in older buildings.

It is also a common practice to upgrade in-rack power distribution units (PDUs) to add intelligent power management, along with rack temperature and humidity monitoring. With UPS and PDU upgrades together, an organization can gather energy use data and make more informed decisions about power costs in the data center.


(6) Finally, consider the availability of data center power


Organizations with aging, unreliable or overtaxed power grids may consider local co-generation options to ensure uninterrupted power. Traditional diesel generators are quickly giving way to more efficient and environmentally friendly alternatives, including solid oxide fuel cells such as Bloom Energy Servers or solar arrays to produce some amount of local electricity. If it's not possible to install local co-generation on-site, it may be possible to contract with regional co-generation providers for supplemental electricity.



About The Blogger

Strategic Media Asia (SMA, www.stmedia-asia.com) is a leading technical training and event organizer for corporations specialized in data center design & build, E&M facilities, telecom, ICT, finance and colocation. Currently, SMA delivers a series of data center trainings and qualification programs in Hong Kong, Taiwan and Macau.

All these events / training seminars are designed to support the leadership needs of senior executives (Chief Information Officers, IT Directors / Managers, Facilities Managers, company decision makers, etc.) and to provide useful and applicable knowledge.




Friday, August 10, 2012

Cloud Computing and Data Center Facilities Design

During the early days of data center design and management, facilities teams were able to run their own environments with only minimal interaction with other IT teams. Over the past few years, however, the sitution has been changed.


Impacts of Cloud


The effects of the cloud take numerous forms. When it comes to data center design and management, cloud computing can be a truly powerful tool. Consider the following:

  • Datacenter consolidation. With advancements in virtualization, IT facilities managers can now reduce the amount of physical data center resources that are directly in use. This means fewer servers and better resource utilization. This reduction in data center space can result in more intelligent computing and better cost management.

  • Monitoring and management. As a direct result of cloud computing, new monitoring and management tools have made the modern data center easier to control. Monitoring features are able to look at metrics such as workload balancing, server environmental statistics and even check for alerts and alarms. Working in a distributed environment settings has created the direct need for better management software. Facilities managers should take this into consideration and see how cloud-ready tools can help their environment.

  • Reconsidering HVAC. With a reduction in the physical footprint as a result of cloud computing and virtualization, facilities administrators are able to create a more efficient environment with better cooling and management practices. With cloud computing, there will be new requirements as far as how much environmental control will be required. This can be either a positive or negative, depending on the cloud approach. If a private cloud is being built onsite with new, integrated architecture, there may actually be a need for more cooling requirements, even if the footprint is less. On the other hand, offloading a cloud platform to a public provider can result in less cooling and power needs.

  • Disaster Recovery. A big benefit of cloud computing is the ability to replicate an entire data center to a remote facility (or numerous remote facilities). The other major consideration is the fact that these cloud-based DR data centers can be provisioned on demand with a pay-as-you-go model. This means facilities administrators won’t have to worry about their remote infrastructure until the time comes for a DR event. Of course, testing and constant monitoring of the secondary environment is always key.

  • On-demand computing. Instead of having systems being in a state of always on – facilities and IT teams can coordinate to ensure that a portion of that infrastructure is cloud-ready and provisioned only on demand. This means fewer data center components and less idle machines. More environments are looking to cloud providers to help them offload certain types of workloads and better their physical data center efficiencies.

  • Data management and warehousing. The conversation around “big data” is growing. More environments are seeking answers and solutions to how they can better manage their ever expanding database needs. Many times this means adding more shelves to a SAN and storing yet more data onsite. With cloud computing, facilities managers can leverage outside, WAN-based resources, to host some of their data needs. This means possible offloading or archiving massive amounts of data for quick retrieval, but making it all cloud-based.

  • Decentralizing the data center. Resiliency, redundancy and efficiency are always at the top of any facilities person’s list. A part of that process is to reduce single points of failure within a data center as well as making data more quickly to the end-user. With cloud computing, facilities can extend their environment and utilize more resources on-demand. This decentralized methodology can help offload hardware from an existing data center, create a more redundant system, and ensure that data can be placed closer to the end-user.

Monday, July 23, 2012

Key Areas to Examine for Data Center Efficiency

Are you struggling on where to start your energy efficiency efforts? Look to these four key areas for improvements.

  • Cooling: Typically the lowest hanging fruit.
  • Water: Don’t overlook the use of water, due to its scarcity in certain areas. Water is related to energy as well.
  • Electrical Design: Recent engineering innovations offer new efficient options.
  • Incentives: Help offset improvement or development costs of energy efficiency.



Measuring Efficiency


Power Usage Effectiveness (PUE) is the most popular industry metric for measuring the energy efficiency of data centers. Today, there appears to be an arms race for the lowest PUE. Even if you aren’t one of the select few with the operational flexibility to participate, you can measure your PUE and work to improve efficiency relative to your own data center site. The industry group, The Green Grid, has many resources available on PUE.

You may also consider to take some data center training / certification - Energy and Cost Management for Data Center.


Green Cooling Techniques


ASHRAE’s latest version of TC 9.9 drastically expanded the recommended and allowable temperature and humidity ranges with the approval of the major server manufacturers. It is estimated that an energy savings of 2-4% can be realized for each degree Celsius the temperature is raised in a data center. It seems raising the temperature is low hanging fruit, but I have seen very few do it to date.

Another undisputed, easy and inexpensive energy saver is hot or cold aisle containment. Preventing the mixing of cold and hot air results in a higher return air temperature that yields an increased efficiency of the cooling system. Many systems exist ranging from hard containment systems to simple refrigerator curtains that you might see in a meat locker. Have a limited budget? Hot or cold aisle containment provides a compelling financial argument for adoption.

Free cooling is now a critical consideration–with either air-side or water-side economization. The new temperature and humidity ranges offered by TC 9.9 make free cooling feasible for a large part of the year in any location, and when designing a new data center or expanding an existing facility.
Liquid cooling has been talked about a great deal of late, with liquids being far more efficient at expelling heat than air. The approach requires some modification of the server so that it can be submerged in the liquid, but studies have shown positive results.

Evaporative cooling is another energy efficient technique, especially applicable in dry climates. However, evaporative cooling often sparks a debate over the use of additional water, especially in water-constrained areas.





Water Efficiency


Water is a topic that is gaining increased attention and will continue to do so in the future. I once heard a “futurist” say that “water is the new oil.” In evaluating evaporative and other cooling techniques, many (myself included) have made the mistake of evaluating only the amount of water used in the respective cooling systems.

In order to determine the complete hydro-footprint of a system, you must also look at energy usage and how much water is used in the production of that energy. The National Renewable Energy Lab (NREL) published a study that analyzed how much water is used in the production of power per kilowatt-hour on a state-by-state basis. While not perfect, it provides a basis for analysis from an authoritative source. After taking the amount of water used in the production of energy into account in a particular geography, evaporative cooling can have a smaller hydro-footprint (use less total water) than a chilled water system due to the amount of energy saved.

There have been a few projects of late that use either sea water or ground water for cooling, which is very efficient as it effectively eliminates the need for much of the cooling equipment. A site in central Nebraska is pursuing this tactic by using irrigation wells with a volume of 1,000 GPM at 52⁰F as the source of groundwater for cooling and re-injecting the water back into the aquifer. This is not only very energy efficient, but uses little to no water for cooling, saving on both capital expenditures (CAPEX) and operating expenditures (OPEX) through the elimination of much of the cooling equipment. The net impact addresses both the energy and water efficiency of the equation for a very energy efficient, and therefore sustainable, cooling solution.


Highly Efficient Electrical Solutions


Major efficiency gains have been made in recent years in electrical equipment that can improve your data centers’ PUE. There are multiple manufacturers of UPS’ that are reaching efficiencies of 96-98 percent at less than 50 percent load. This is important if you utilize A and B feeds to your equipment for redundancy.

Another trend is for the UPS to operate in a by-pass mode, which eliminates the losses through the batteries. Many are not yet comfortable with this mode of operation, but it is another efficiency gain to consider in optimizing performance. Higher voltage and DC power are also evolving trends that provide efficiency gains that bear mentioning.


 


Energy Efficiency Incentives and Rebates


Whether designing a new, energy efficient data center or upgrading your existing facility, there are many incentives available to help defray the cost and improve your ROI.

Power companies are commonly providing incentives based upon your performance compared to a baseline building or a baseline piece of equipment. Plan to include the power company as early in the design phase as possible, to maximize the financial benefits. Some require approval of the incentive prior ordering the equipment.


Additional Considerations


There are additional considerations beyond those mentioned above in optimizing your mission critical facility’s efficiency.
  • System modularity is an accepted practice that affects efficiency. Implementing modular and rapidly expandable designs in lieu of installing full density on day one typically results in higher efficiency through higher equipment utilization. This saves on CAPEX and OPEX, making for a smart business decision.
  • Cogeneration, also known as combined heat and power (CHP), has gained in popularity and can be as high as 60-80% efficient compared to the typical 30% efficiency of normal power plants.
  • Peak power shaving can also be achieved through thermal storage. This is done by creating ice at night when power rates are lower and utilizing the ice for cooling during the day.

Measure, Improve, Monitor and Repeat


Regardless of the selected energy efficiency measures in your new or existing data center, make sure you measure your initial or existing condition so you have a baseline. After your improvements are made, measure again to determine your new condition and your ROI. In the case of a new data center, perform a total cost of ownership (TCO) analysis to guide your decisions. You should continue to monitor your efficiency and make improvements to improve your PUE relative to your initial condition. As a reminder, measuring your outcomes against those in the industry under different operating conditions may not provide an apples-to-apples comparison.

Monday, June 18, 2012

Design & Operate a Data Center for Energy Efficiency

EU Code of Conduct for Data Center Energy Efficiency
2-day Training Seminar on EU Code of Conduct for Data Center Energy Efficiency (2012)
The Best Practices for Designing an Energy Efficient Data Center

Overview

In response to the rising challenges facing data centre operators, owners, systems designers, equipment manufacturers and customers, the European Commission have introduced the Code of Conduct for Energy Efficiency in Data Centres. The Code aims to raise awareness of the issues and opportunities and to recommend best practice solutions. We introduces the Code, the benefits it brings, the levels of commitment required, the technical background to the best practices, data collection and reporting together with real examples.

This 2-day training seminar enables individuals working in data centres to improve cost and energy efficiency. The ongoing development of the Code encompasses topics associated with new data centre planning, design and development, and the tuning and operation of existing facilities.
All sections are conducted by Chartered Engineers (CEng) and help you to approach best practices in designing and operating energy efficient data centers by our further technical programs.

Registration Detail

Date To Be Announced (2-day)
Time 10:00am - 5:30pm
Venue 10th Floor,Central Building, 1 - 3 Pedder Street, Central, Hong Kong
Target Audience CIO, CTO, IT Directors, Data Center Operations / Facilities Managers, Data Center / ICT Consultants and E&M Engineers
Fee Normal Rate: HK$6,500 (Early Bird Rate: 10% Discount)
(Two refreshment breaks will be provided.)
Enrollment Online Registration or Download Application Form
Exam and
Certification
All content cover an accredited syllabus necessary to sit the British Computer Society (BCS) "Intermediate Certificate in EU Code of Conduct for Data Center" exam through Prometric (www.prometric.com). However, taking the course does not offer a guarantee of passing. Extra examination fee required.

Individual CPD / completion certificate can be granted by our experienced Chartered Engineers (Available upon request).
Should you have any enquiry, please feel free to contact us at 3796 3026 / info@stmedia-asia.com

 

Day 1 Content


- Define, identify and list data center best practice sections
- Power distribution in data center - the power tree
- Optimizing the data centre requirements
- Area of responsibilities (physical building, mechanical & electrical plant, data floor, racks, etc.)
- Efficient cooling 1 (hot / cold aisle containment, raised floor, ceiling height, airflow control, etc.)
- Efficient cooling 2 (CRAC settings, arrangement of cable trays, cabinets and cooling plants, etc.)
- Efficient cooling 3 (air free cooling, water free cooling, mechanism of absorption chiller, etc.)
- Interactions and interdependencies of various systems
- Standby UPS
- Standby ferro UPS
- Line interactive UPS
- Double conversion on-line UPS
- Delta conversion on-line UPS
- Temperature and humidity control
- Factors affecting data center energy consumption


Day 2 Content


- Resilience level and provisioning
- Data center efficiency and Uptimes Tier levels requirements
- ASHRAE 2011 common environmental guidelines
- ETSI EN 300 019 Class 3.1
- Select and deploy of new IT equipment
- Data centre utilisation, management and planning (software, IT and M&E)
- Physical building layout (site selection, water sources, use of economizers, etc.)
- Lighting control (EU standards, LEED, BREEAM, etc.)
- Monitoring (energy use & environmental reporting, etc.)
- Items under consideration (rotary UPS, mechanical UPS, etc.)
- Minimum practices for data center energy efficiency
- Metrics used to measure data center energy efficiency


Delivered by Experienced Speakers

Mr. Joe Tang

Having more than 10 years experience in mission critical design, Mr. Tang was working on numerous projects involving data centers, disaster recovery sites, trading floors for multinational financial institutes and data centre providers in Hong Kong, Taiwan, Shanghai, South Korea and India.

He is specialized in the areas of master site planning, mission critical infrastructure design, single point of failure study, cause and effect analysis and integrated system test. Mr. Tang is now working in a multi-disciplines consultancy providing sustainable design and green initiatives to different sections in Asia Pacific.

Mr. Tang is also:

- A Chartered Engineer of Engineering Council (CEng)
- A Member of The Institution of Engineering and Technology (MIET)
- A Corporate Member of Chartered Institution of Building Services Engineering(MCIBSE)
- A Member of American Society of Heating, Refrigerating and Air-Conditioning Engineers (MASHARE)
Ir Joson Chan

Ir Chan had started his career as part-time lecturer since 2001 and has been served in various territory institutes. He majors in teaching subjects in electrical engineering, project management, sustainable engineering and facility engineering for critical services. Ir Chan is a permanent members of CNet Training professional data centre training team.

Ir Chan has gained extensive experience within different aspects of infrastructure projects and as a Senior Engineer in an E&M consultant firm, mainly involved in the data centre / financial institutions MEPF design projects and working with companies such as Morgan Stanley, Deutsche Bank, HSBC, etc. He is now working in an international theme park and resort to maintain facility support of critical facility and Network Communication Centre. He unites learning with this key career experiences, allowing delegates to gain essential insight into real-life working and scenarios.

Ir Chan is also:

- A Chartered Environmentalist (CEnv)
- A Fellow of Society of Operations Engineers (FSOE)
- A Chartered Engineer of Engineering Council (CEng)
- A Member of The Institution of Engineering and Technology (MIET)
- A Corporate Member of the Hong Kong Institution of Engineers (MHKIE)
- Grade H0 and C0 Registration of Electrical Worker of the HKSAR Government
Ir K.T. Poon

Ir Poon has more than 10 years consultancy experience in data center design and build, operation management, energy and cost management projects both in Hong Kong and China. He was also working for a design and installation of a facility management system in an international school in Hong Kong with a subsystem of an energy management system.

Ir Poon is a part time lecturer in various tertiary institutes. He also teaches facility management, business strategic management of the distance learning courses (both degree and master degree) offered by overseas universities.

Ir Poon is also:

- A Corporate Member of the Hong Kong Institution of Engineers (MHKIE)
- A Chartered Member of the British Computer Society (MBCS)
- A Chartered Engineer of the Engineering Council, U.K. (CEng)
- European Engineer of the European Federation of National Engineering Associations (Eur. Ing.)
- A Chartered Information Technology Professional of the British Computer Society (CITP)

Recent Participants Come Form...

Airport Authority Hong Kong Fujitsu Hong Kong Limited
Asia Satellite Telecommunications Ltd Johnson Controls Hong Kong Limited
Citic Telecommunication CPC Group Leigh & Orange Limited
CTM (Macau SAR) Meinhardt (Hong Kong) Limited
EMSD, HKSAR Government Mizuho Corporate Bank Limited
Elixir International Limited Sociedade De Jogos De Macau
Facilities Analysis & Control Limited Welcome Air-Tech Limited
And More...

© 2012 Strategic Media Asia Limited

T (852) 3796 3026 | F (852) 2184 9978 | www.stmedia-asia.com
Room 1303, Leighton Centre, 77 Leighton Road, Causeway Bay, Hong Kong


Friday, June 1, 2012

Data Center Redundant Capacity - Where Can I Add Load?

One of the key power usage metrics that we often requesting is Available Redundant Capacity (ARC). We don’t always ask for it using this name. More simply, we want to know “Where can we safely add new IT equipment without overloading and potentially bringing down my facility?”

Friday, March 2, 2012

Towards a More Energy-Efficient Data Center

We recently saw the European Commission recognize 27 IBM Data Centers for energy efficiency. The commission, the executive body of the European Union, was going by the EU’s Code of Conduct for Data Centers, and we’re not 100 percent sure what requirements that entails, but we do know it’s A Good Thing.

In fact, as IBM officials said in a press statement, the honor represents “the largest portfolio of data centers from a single company to receive the recognition.”The idea is to reduce energy consumption “in a cost-effective manner without decreasing mission critical data center functions,” IBM officials said, using certain established best practices.

Great. What might those be?

Speaking broadly, IBM officials rattled off a list of general areas where one can find energy efficiencies in contact centers — energy-efficient hardware, free cooling, cold aisle containment and the like.

A bit more specifically, IBM officials said, one factor that weighed heavily in their winning the EU award is that many of their data centers support cloud computing. This isn’t only to save energy, of course, as the cloud is in high demand these days for its efficiencies, flexibility and profitability and other good common-sense business reasons.

Analytics are a huge part of IBM’s energy-saving success. The company uses Mobile Measurement Technology, an in-house product of IBM Research, using “thousands of sensors to record and analyze temperatures and air flow to detect hot and cold spots,” company officials explain, to get energy flow insight leading to the intelligence that lets IBM “efficiently cool data centers with a high measure of security and reliability and significant reduction in cost.”

The company believes in replacing older hardware equipment with more energy efficient servers, consolidating servers: fewer and more efficient servers = lower energy usage.

So that’s Big Blue’s overall approach. Solid, basic principles at work: Use the most energy-efficient servers you can find because they’ll save you money in the long run; consolidate your server needs; use analytics to find where you can cut down on costs within the data center itself; and take advantage of cloud computing where possible.

Bully for IBM. Does anybody else use a different approach?

The Federal Energy Management Program (FEMP) issued a white paper titled “Best Practices Guide For Energy-Efficient Data Center Design” in March 2011. It addresses energy efficiency across the enterprise, breaking down its recommendations in seven areas.

Information Technology (IT) Systems

This is a good place to start because “IT equipment loads can account for over half of the entire facility’s energy use.” The white paper identifies rack servers as a major culprit, saying they account for “the largest portion of the IT energy load in a typical data center,” taking up lots of space, and drawing full power even when running at 20 percent use or lower, which according to the paper is, in fact, most of the time.

The FEMP recommends looking for servers with variable speed fans, as they can adjust to how much power is needed to actually cool the server. Throttle-down devices are helpful as well, reducing energy consumption on idle processors via “power management.” Use multi-core processor chips where possible, and consolidate your IT system redundancies — “consider one power supply per server rack,” instead of power supplies for each server.

Grouping equipment with similar heat load densities and temperature requirements means you can cool them more efficiently, the paper says, pointing to virtualization as another way to find efficiency.

Environmental Conditions

Yes, these matter. The FEMP cites the American Society of Heating, Refrigerating and Air-Conditioning Engineers and Network Equipment Building System, which has published recommendations for “environmental envelopes” for inlet air for IT equipment. Done correctly, it can help reduce overall energy consumption, and the recommendations are presented in the paper with cool charts and graphs we really can’t do justice to here.

But bear in mind that variable speed fans in servers are guided by internal server temperature, so if your data center’s using inlet air conditions higher than what’s recommended, well, the fans aren’t going to do the best job they can saving you money.

Air Management

Another important yet frequently overlooked area. Basically, what this refers to is the way you configure the center to get rid of as much air mixing between cool and hot as possible. You have lower operating costs if the hot air being expelled from the equipment isn’t recirculated to the machines again. The cooling air needs to be delivered to the servers as efficiently as possible.

No, it’s not a horribly sexy aspect of data center efficiency, but the money you save is.

The paper talks about cable congestion reducing total air flow, and allowing hot spots to develop. It recommends greater under-floor clearance, of at least two feet for raised-floor installations, and having a “cable management strategy” to minimize air flow obstructions, with possibly a cable mining program, involving the removal of abandoned or inoperable cables. Aisle separation’s a good idea too, with cool air aisles on one side of a row of servers and hot on the other. Those flexible plastic strips you see at supermarket refrigeration sections can really help here.

Cooling Systems

Probably one of the first things you thought of when you thought of data center energy efficiency, but as we hope you’ve seen by now, other considerations play a considerable part. The most common type of system here for smaller data centers would be a direct expansion (DX) system, CRAC units readily available off the shelf. Rooftop units are not pricey and work well, too.

Central air handler systems provide better performance, the paper notes, observing that they can “improve efficiency by taking advantage of surplus and redundant capacity to improve efficiency.”

Chilled water systems are another option, with a high-efficiency VFD-equipped chiller with condenser water reset recommended by the FEMP as “the most efficient cooling option for large facilities.”

There’s much more in the paper about other options for cooling systems.

Electrical Systems

Keep in mind both initial and future loads here, the FEMP white paper warns, adding that efficiencies can range widely from manufacturer to manufacturer. Use uninterruptible power supply systems for backup power, and for maximum efficiency determine exactly what equipment actually needs UPS and which doesn’t.

Demand response is voluntarily lowering energy usage during peak demand, and your utility will probably offer you some incentive to sign up for a program like that. Many companies simply switch to backup power during peak times and pocket the savings from the lower rates.

Using DC power distribution will save conversions, but it’s expensive to install since it’s still not widely-used. And consider savings you can find with lighting — think about what space really needs to be illuminated all day and what space doesn’t. Zone occupancy sensors can really help you reduce your lighting costs and overall energy costs.

Other Energy-Efficient Design Opportunities

The FEMP paper provides a few more things to think about:

  • On-Site Generation. With a constant electrical demand this option can make sense. They’re an alternative to grid power. Some places let you sell self-generated power back to the grid, which lowers capital expenses.
  • Co-Generation Plants. This is using a power station or similar technology to help produce electricity, and its waste heat can run a chiller to provide cooling.
  • Standby Losses. Reduce these, and use waste heat from the data center to minimize losses by block heaters. Here’s one place solar panels might make sense.
  • Waste Heat. This can be used to provide cooling — nifty irony there, no? Done correctly, the FEMP says, using absorption or adsorption chillers, your chilled water plant energy costs can be cut by at least 50 percent. Adsorption chillers require less maintenance than absorption models, but are new to the U.S. market.

Data Center Metrics and Benchmarking

You do this to track performance and see where you can find improvements. The paper provides links to various benchmarks.

Measuring Power Usage Effectiveness and Data Center Infrastructure Efficiency is a good place to begin benchmarking, not that they represent the entire, overall efficiency of your whole data center, as the paper says, but rather the “efficiency of the supporting equipment within a data center.” Which is still quite a lot.

Energy Reuse Effectiveness is another area for productive benchmarking, as is the Rack Cooling Index and Return Temperature Index, your Heating, Ventilation and Air-Conditioning System Effectiveness and the Airflow Efficiency, not to mention the Cooling System Efficiency.

On-Site Monitoring and Continuous Performance Measurement is an important area to benchmark, and the paper provides resources to assist with this as well.


Adopted from http://news.thomasnet.com

Wednesday, February 15, 2012

The Data Center of Google in Hong Kong


Google has kicked off the construction of its first Asian data center in Hong Kong which is expected be up and running in early-2013.

In a statement released Thursday, the Internet giant said it will be investing US$300 million--which includes the cost of land, construction and technical equipment--to build the facility in Kowloon, Hong Kong, on a 2.7 hectare site. Once completed, users in Asia can expect "faster and more reliable" access to Google's online tools and services, said Simon Chang, Google's head of Asia-Pacific hardware operations.

Even with Hong Kong's warm weather, Chang said the "innovative design" of the facility will make it one of the most efficient and environmentally friendly in Asia. "One way we'll achieve region-leading efficiency [in Hong Kong] is by custom designing each element to operate at optimal efficiency," he said.

Beside custom designs, he noted that the Hong Kong facility will make use of efforts used across its global data center network to increase efficiency. These include, for example, maximizing the use of free cooling instead of chillers, running equipment at a much hotter temperature than typical data center, and measuing and adjusting power usage to achieve peak efficiency, said the Google executive.

Once fully operational, the Hong Kong data center will hire about 25 full-time staff and a number of part- and full-time contractors for various roles such as computer technicians, electrical and mechanical engineers, and catering and security staff.

Hong Kong will not be the only Asian data center for Google. In September, the Internet giant announced it had purchased 2.45 hectares of land in Singapore to build a data center, although it was unable to confirm when construction for the site would begin.

Adopted from www.zdnetasia.com


Wednesday, January 18, 2012

Direct Current (DC) for Data Center: You can save more

It was also the year that direct current (DC) took a back seat to alternating current (AC) after Niagara Falls Power Company chose AC transmission for its power plant. Although we live in an AC-dominated world, DC seems poised for a comeback, particularly in data centers. Facebook adopted a DC architecture in its Prineville, Ore., data center. SAP spent $128,000 retrofitting a data center at its offices in Palo Alto, Calif., to rely on DC power. In 2010 it cut SAP’s energy bills by $24,000 per year.

ABB, the Swiss-Swedish conglomerate, bought a controlling interest last year in Validus DC Systems, which specializes in DC data center equipment. ABB also opened a factory in North Carolina to produce HVDC (high voltage DC) equipment for delivering power from solar and offshore wind farms to the grid. The Tres Amigas “superstation” will rely heavily on HVDC.

General Electric, meanwhile, bought Lineage Power, which produces DC equipment, and it has talked about using DC to power mining shovels and other heavy-duty equipment.

Nextek Power Systems and the EMmerge Alliance are also promoting DC as a way to cut power in buildings.



Behind the DC drive

What’s driving it? Although AC became the standard for electronic transmission, DC didn’t disappear. It just hid. Servers, large numbers of electric motors, batteries, even ships and airplanes run on DC. Solar panels produce DC power. Wind turbines can produce AC or DC power, but the extreme variability of wind power means that electricity generated by turbines has to pass through battery banks before it gets to the grid. As a result, wind farms are effectively DC.

The landline telephone system runs on DC too, notes Brian Fortenberry, a program manager at the Electric Power Research Institute.

To solve the mismatch, a whole industry of AC-DC converters has been developed. National Semiconductor sells billions of dollars’ worth of chips to convert power. Inverters in the solar industry exist to convert DC from solar panels to AC that can run on the wires in your home.

In data centers, the AC-DC gymnastics top the charts. Typically, AC from the grid has to be stepped down in voltage so it can be routed safely in building equipment. Lower-voltage AC then gets converted to DC so it can go to an uninterruptable power supply (UPS). DC power from the UPS then gets converted to AC so it can go over the wires in the building. Then it gets converted back to DC. Usually five conversions, or steps, downward take place.

By converting grid AC at the door of a data center to medium-voltage DC or converting stepped-down AC to DC at the last possible moment, a data center can cut utility bills by 10 to 20 percent or more, according to Trent Waterhouse, the VP of marketing for power electronics at General Electric.

Validus and others have also eliminated some of the technological hurdles involved in transmitting via DC, namely the monster-sized copper cables.

The same dynamics work in buildings. In a retail establishment, DC power from solar panels could go directly to DC-powered LED lights with not-intermediate conversions that sap energy, according to Nextek. Perhaps not coincidentally, Redwood Systems, the lighting networking company, touts that its technology is actually an example of DC networking.

More savings comes in real estate. DC data centers require 25 percent to 40 percent less square footage than their AC counterparts, largely because computer equipment can connect directly to backup batteries.

In a hypothetical example, a 2.5-megawatt data center power module in the AC world might need 7,295 square feet, Ronald Ranaldi, the VP of sales at Validus, told me last year. An equivalent DC power module might occupy only 5,102 square feet, a savings of 2,193 square feet. What’s more, a single data center might consist of several 2.5-megawatt modules.

“Real estate is often greater than the energy savings,” says Ranaldi. “In large, green field data centers, you are literally eliminating buildings.”

DC won’t take over the world. And not everyone is sold. Google is not taking DC for its data centers in part because of the cost that would be involved in retrofitting their existing architecture. But it seems that an idea that was current when Grover Cleveland was in the White House and Japan was just adopting the Gregorian calendar could make a comeback.


Adopted from http://gigaom.com/cleantech/


Thursday, January 12, 2012

Many Paths to the Green Data Center

The economics of data center power and cooling are hard to ignore.

According to triplepundit.com's Jeff Rangel, data center power consumption stands at 1.3 percent of worldwide use, nearly three times what it was in 2000. That represents nearly 80 metric megatons of carbon emissions per year and is on pace to more than quadruple by 2020. In dollar terms, Gartner reports that the cost to cool a 25,000-square-foot data center now tops out at $4.1 million per year.

Clearly, something has to give to both the economic and political pressures that high-energy consumption entails. That's probably why we're seeing such a wide range of ever-more exotic solutions to the data center's green problem.

Facebook, for example, wanted to go big with its latest European facility, a set of three 300,000-square-foot behemoths that would have been a nightmare to cool in the warm, humid south. Instead, the company chose Lulea, Sweden, less than 100 km from the Arctic Circle. The site features ample supplies of hydropower and a climate that rarely exceeds 80 degrees F even at the height of summer. When opened in 2014, the center will consume about 120 MW in order to handle the traffic needs of users across Europe, the Middle East and Africa.

The Facebook facility is only one of a number of new constructs that were built with energy efficiency in mind. Apple claims that its new site in Cupertino will house its own power-generation system, relying on the grid for backup only, and that the abundance of trees on the property will actually make it carbon negative. At the same time, Google is investing heavily in wind energy production, a move that it hopes will eventually cut energy costs below today's largely coal-based infrastructure.

Energy conservation isn't just about new construction. Some organizations are learning how to use unwanted heat in productive ways. KPMG, for example, shuttles exhaust from a natural gas power plant in its New Jersey facility to a pair of giant absorption chillers that in turn feed cold air to equipment racks. This kind of co-generation system — both power and cooling from essentially the same source — is estimated to require 22 percent less fuel than a traditional electrical system and cuts carbon emissions by 2,200 tons per year.

Data centers, even green ones, will no doubt continue to consume significant amounts of energy for some time to come — that's just the nature of the technology. But as long as the industry can show continued improvement in energy conservation, both the economic and public relations dividends should be substantial.

Adopted from www.itbusinessedge.com

Monday, December 19, 2011

Increase in Power Bill Raise The Importance of Energy Efficient Data Center

In Hong Kong, China Light and Power (CLP) has asked the government for permission to raise the Power Bill by 9.2 percent next year in 2012, whereas Hongkong Electric (HKE) demanded a 2.64 to 6.08 percent fee hike. The increases requested by both power companies far exceed the rate of inflation. They will add considerably living expenses to residental customers and operation costs to businesses which require large amount of power and energy consumptions.


Adopted from South China Morning Post (SCMP)

Data centers, which come in different sizes and provide mission critical functions for most businesses, consume large amounts of energy and require many investments of significant financial resources to continue operations. Despite of the high demand of data centre in Hong Kong, many organizations are looking for new ways of doing more with less, reducing IT budgets or curtailing the incidental costs associated with data center operations and even expansion.

Saving Energy Consumption and Power Bill

Data center efficiencies can be attained through increasing compute densities, creating cold aisle containment systems or more effective use of outside air, but the key component over time is to have an easily understood metric to gauge data center efficiency, and how much improvement is taking place.

Strategic Media Asia (SMA), which is vendor independent and accredited by British computer Society (BCs), provides data centre and IT professionals with top level understanding of best practices in energy efficient data centre from a series of certificate courses and training seminars focusing on international green standard, financial and regulatory, facilities management, hardware management and software / system networks of Data Centre.
Completion of the accredited courses and examinations will be awarded 3 certificates granted by BCS:

Foundation Certificate in Green IT
Intermediate Certificate in EU Code of Conduct in Data Centre
Intermediate Certificate in Energy & Cost Management in Data Centre

The 3 certificates equips you and your team and data centre to apply for
Certified Energy Efficient Datacentre Award (CEEDA)

We aim at teaching several aspects: (1) Data Centre Utilization (2) Data Centre Facilities (3) Cooling (4) Power Equipment (5) Data Centre Cost Savings (6) Monitoring. Each unit is principally assessed by examinations that lead you through all the steps needed to arrive at a baseline of a modern green data centre and energy saving.

Furthermore, we bring you a unique opportunity to learn from our lecturers and apply the knowledge immediately to your own facility with assistance from our experts. An additional on-site audit services for your own data centre with full audit report can help you achieving the criteria of best practice design and energy efficient in data centre after the series of training programmes.


Target Audience

Data Centre and Facilities Managers
Data Centre Operators
Data Centre Design Consultants
Data Centre Technicians and Engineers
Sales Engineers from OEM Vendors
CSR / Environmental Champions in technology departments
IT Purchasers (Hardware & Software)
IT Architects and Solution Consultants

For more information, please contact (852) 3796 3026 or download our Training Event's Brochure.

Friday, December 9, 2011

Facebook Expands Green Open Hardware Push

The Open Compute Project is looking deeper into green data centres, from storage to systems management

If Facebook officials have their way, their Open Compute Project will go beyond servers and power supplies, touching on every aspect of a data centre’s infrastructure.

The initiative kicked off in April when Facebook open-sourced the server and data centre specifications the social networking giant employed in building its data centre in Prineville in Oregon. The project has since enrolled an impressive array of members, from Intel, Asus and Rackspace to Mellanox, Huawei and Red Hat, not to mention a few research and education institutions.

Spreading the initiative

It is an indication of the various directions in which the project is rapidly moving, Amir Michael, hardware design manager at Facebook, said in an interview with eWEEK during the recently concluded SC 11 supercomputing show in Seattle. Facebook is already moving forward with the next generation of the custom servers it has designed, Michael said.

At the same time, project members also are looking to tackle other aspects of the data centre, including systems management, storage and I/O. The push in these directions will help create the momentum to solve that key issues that Facebook officials saw when looking at data centre technology – that, in a broad way, proprietary products from large and small vendors alike could address some of the mainstream needs that are present in most enterprises, but often do not meet the unique demands a particular business may have.

Growing green roots

About two years ago, Facebook engineers set out  to start designing their own servers using standard off-the-shelf technologies. Up to that point, the company has been using systems from traditional OEMs. Facebook worked with chip makers Intel and Advanced Micro Devices, as well as systems makers Hewlett-Packard and Dell, to create the custom servers.

The aim was to build systems that offer the performance needed to run a fast-growing social network with 800 million-plus members while keeping down capital, power and cooling costs in the densely populated data centres. The Facebook-developed systems are 1.5U (2.65 inches) tall – rather than the more traditional 1U (1.5 inches) servers – which, among other positives, makes for better air flow and lower cooling costs, Michael said.

There is no paint or logos that are found on servers from OEMs – which not only reduces the capital costs, but also makes the systems lighter – there is a more energy-efficient power supply in place and they are easier to service, with tool-less components, from fans to power supplies.
The Oregon facility also uses outside air to keep the systems cool, rather than running expensive chiller units, Michael said.

Energy efficiency benefits

The result of the work was a 38 percent increase in energy efficiency at the Oregon facility at a lower cost of 24 percent as compared with Facebook’s other data centres, he said. The data centre also has a power usage effectiveness (PUE) ratio of 1.07. The PUE ratio is a way to measure how efficiently a facility uses its energy; the closer to 1.0, the better. The Environmental Protection Agency has a standard PUE rate of 1.5.

Facebook expects to get similar results as it builds new data centres, Michael said. Last month, company executives said they plan to build their next data centre in Lulea, Sweden, just on the edge of the Arctic Circle, to serve users inEuropeand other regions. The site was chosen for its cold air and access to hydroelectric power.

The company also is working on its next generation of servers, which will include such technologies as an Intelligent Platform Management Interface (IPMI) and the ability to reboot on the LAN. They also will continue to be powered by Intel and AMD chips, though Michael said the company also is keeping an eye on other chips, including those from ARM Holdings. ARM-designed chips from the likes of Nvidia, Qualcomm and Samsung are found in most smartphones, tablets and other mobile devices, but the company also is looking to move up the ladder and into low-power servers.

Adopted from http://www.eweekeurope.co.uk