Showing posts with label Data Center Design. Show all posts
Showing posts with label Data Center Design. Show all posts

Monday, February 10, 2020

Never Stop Learning - Get your Training Manuals for Critical Facilities and Data Center Design



Reliability and Redundancy Matter - Your data center / critical facilities should be kept rolling under any circumstances. Understanding the infrastructure's design and operations can minimize disruptions and avoid costly downtime.

With our high quality training courses and credential programs, you are able to gain the knowledge and best practices in data center / critical infrastructure design, operations and efficiency:

Data Center and Critical Facilities Design Courses and Syllabus   Data Center and Critical Facilities Design Courses and Syllabus


Budget concern? Inconvenient to travel and take the face-to-face courses? Why don't consider to purchase the self-learning kit / training manuals which are currently on sale for further learning and reference?


  • Electrical Design for Mission Critical Supply
    http://www.amazon.com/dp/9887797219

    Total Number of Slide: 130
    Hard Copy: Black & White
    Digital Copy: DVD Included (in color and PDF format)

  • HVAC Design and Cooling for Data Center Efficiency
    http://www.amazon.com/dp/9887797200

    Total Number of Slide: 263
    Hard Copy: Black & White
    Digital Copy: DVD Included (in color and PDF format)

  • Project Management for Data Center & Critical Facilities: From Design to Commissioning
    http://www.amazon.com/dp/9887797235

    Total Number of Slide: 216
    Hard Copy: Black & White
    Digital Copy: DVD Included (in color and PDF format)


Each manual is edited by a team of Chartered Engineers (CEng) who has more than 20 years experience in data center design & build, building services engineering, facilities management and energy conservation in the private and public sectors. All content has been fully taken into account the requirements of international codes and standards, which prepare you to face most of the challenges in data centers and critical facilities of any size, in any location.


For order details, please contact our team (www.stmedia-asia.com/contact.html) or visit the Amazon online. Payment can be made by bank wire or credit card. Worldwide shipping will be provided.



    
    


  
  
  


About us

Strategic Media Asia (SMA) provides an interactive environment and opportunities for members of engineers to exchange professional views and experience on critical infrastructure and electrical and mechanical facilities through various training courses and site tour events.


In addition, our team is one of the CPD Course Providers of the Chartered Institution of Building Services Engineers (CIBSE).



For details, please visit http://www.stmedia-asia.com/trainings.html.



Wednesday, January 9, 2019

Learn How to Design Electrical Systems for Mission-Critical Infrastructure (28 - 29 March 2019)




Course in Electrical Design for Mission Critical Supply (2-day)
(28 - 29 March 2019, approved CPD course by CIBSE UK)


Mission critical facilities have particular power requirements that significantly impact how they are designed and operated. 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)


The course details about the power system components that support typical data centers or mission-critical infrastructure. It prepares individual to fully understand the high voltage systems' design & build by exploring the international best practices and the instructors' experience.

All sections are conducted by Chartered Engineers (CEng) who have more than 20 years experience in electrical engineering, project management, sustainable engineering and facility engineering for critical services.


Date: 28 - 29 March 2019 (Thursday - Friday)
Time: 10:00 – 18:30
Venue: 19/F, New Victory House (Officeplus), 103 - 93 Wing Lok Street, Sheung Wan, Hong Kong
(Near Exit A2, Sheung Wan Station)


Fee: Special rate for (1) the HKIE / CIBSE or all professional membership classes in engineering; or
(2) more than 1 enrollment made at the same time


For course details, please refer to http://www.stmedia-asia.com/newsletter_6.html.



Enrollment & Registration

Kindly complete and return an Application Form together with a crossed cheque made payable to “Strategic Media Asia Limited” - Room 403, 4th Floor, Dominion Centre, 43 - 59 Queen's Road East, Hong Kong.


About the Organizer

Strategic Media Asia Limited (SMA) is one of the approved CPD course providers of the Chartered Institution of Building Services Engineers (CIBSE). Our mission is to provide an interactive environment and opportunities for the engineers to exchange professional views and experience on critical infrastructure and data center services.

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


Adverse Weather Arrangement - Events in the morning, afternoon or evening will be cancelled if typhoon signal No. 8 or above or black rainstorm warning is still hoisted after (or is announced by the Hong Kong Observatory to be hoisted at / after) 6:00 a.m., 11:00 a.m. and 4:00 p.m. respectively. Delegates will be notified when the class will be made up as soon as possible.






Subscribe to the Knowledge Blog in Critical Infrastructure Design


RELIABILITY & REDUNDANCY MATTER - Your facilities and IT infrastructure are complex that are different from general buildings and require special design and operation knowledge and skill. Understanding the design considerations and avoiding costly downtime are critical.

Subscribe to our Knowledge Blog (http://green-data.blogspot.com or http://data-center-design.tumblr.com), share your view and get monthly readings online. All topics focus on key components and considerations of designing / operating mission-critical facilities and infrastructure:-




P.S. Think your team might also be interested? Pass it on >

Strategic Media Asia Limited
Connecting IT, Facilities and Design

T (852) 2117 3893 | F (852) 2184 9978

Room 403, 4th Floor, Dominion Centre, 43 - 59 Queen's Road East, Hong Kong
http://www.stmedia-asia.com | http://green-data.blogspot.com




Tuesday, July 10, 2018

Building Information Modeling (BIM) for Electrical System Design

Building Information Modeling (BIM) is used frequently when working across multiple disciplines, including mechanical, electrical, plumbing, and fire protection engineering, and also with other stakeholders such as architects and contractors. Data Center Design with BIM is one of the obvious examples to facilitate and streamline complex design teamwork and coordination.

Consulting engineers, on the other hand, are facing with the same challenges, including the increment of speed and complexity of projects, which evolve codes and standards and a continual push for the electrical discipline to advance in BIM.


While BIM has been around for 20 years and is used regularly by architects and both structural and civil engineers, adoption by mechanical, electrical, plumbing (MEP), and fire protection engineering firms has only started to take off in more recent years. Today, as more architects require all parties working on a project to engage with BIM, consulting engineers are demanding the tools necessary to advance BIM in the electrical space, such as the ability to access more information online and easier access to BIM models and manufacturer support and expertise.



An overall view of a building shows a single mechanical, electrical, plumbing, and fire protection (MEP/FP) design model representing accurate location and overall dimensions of equipment and systems. This image is rendered from a single Revit model containing MEP/FP disciplines along with IT and audio-visual (AV) disciplines representing accurate location and overall dimensions of equipment and systems.


The value of BIM is that it gets the right information to all the right people at the right time, enabling collaboration, productivity, and insight. However, there are some challenges, particularly in the electrical space, that must be overcome for BIM to reach its full value.



A partial model view shows electrical equipment, mechanical/plumbing equipment ducts and piping, along with a related pump schedule.


One key challenge to BIM adoption in the electrical space is the lack of accurate, relevant, and standardized BIM content. To date, to move forward with BIM implementation, many firms have had to develop their own content libraries - often by downloading from a repository of manufacturers' products online.

This poses challenges, as many products are subject to frequent manufacturer updates; which means that maintaining an up-to-date content library becomes difficult. For example, if a user downloads an electrical panelboard and leaves it on his or her hard drive for several years, the product information in the BIM environment will quickly become outdated as the downloaded content remains static, yet the actual product continues to evolve.

It's critical that product data remains up-to-date in BIM models. BIM is not just a design tool that stops being used after the construction phase of a project; rather, it is an overall lifecycle tool that uses the information from conception through design and commissioning and into operation and maintenance of the building.

The power of BIM lies in the information. At any point in the lifecycle of a project, the information must be accurate to help reduce time-consuming errors and rework. Additionally, it must be accessible from virtually anywhere, at any time, and by all the project stakeholders - and it must be actionable to help inform the decision-making process with simulation and analysis.

Bridging the gap between BIM environments and product data is critical to the advancement of BIM in the electrical space.



About us

Strategic Media Asia (SMA) is one of the approved CPD course providers of the Chartered Institution of Building Services Engineers (CIBSE) UK. The team exists to 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 the other design considerations, please visit 
(13) Generator Systems, etc.

All topics focus on key components and provide technical advice and recommendations for designing a data center and critical facilities.




Monday, April 9, 2018

Data Center Design Consideration: Electrical Rooms (2)

So far we have reviewed few types of general interior electrical spaces that factor into new building design in Part (1) - Data Center Design Consideration: Electrical Rooms - Working Spaces, Dedicated Spaces and Main Equipment Rooms.

Let's further explore the considerations of Distribution Pathways and Local/Branch Equipment Rooms when designing MEP spaces.



Distribution Pathways

Distribution pathways are needed for interconnecting all the electrical equipment and end-user devices, and the pathways will affect where rooms are located. Conduits can be routed above the equipment, below ground, or in the ceiling space of the floor below, though overhead conduits need space within the rooms to leave the equipment and transition to the desired route going to other parts of the building (see picture below). The routing of the feeders and how they enter/exit the distribution equipment must be evaluated during design and reconfirmed during the shop drawing review, as this will impact how the equipment is constructed and affect its physical size.



Conduit pathways need to be considered when designing electrical rooms to ensure proper clearances are met and that the distribution is efficient.


Below grade conduit routing needs to be coordinated with other utilities and footing/foundation elements. The restrictions that these place on the routing may impact the layout of the equipment in the room and the size of the space needed. Similarly, beams on the floor above or below the equipment may require an offset of conduit or shifting of the equipment to allow for the conduit installation to effectively occur.

Horizontal pathways can define the placement of electrical rooms, as other building elements may impede these routes and affect installation. Structural beams and large ductwork can become obstacles, especially in tandem with high ceilings. Large-volume spaces like gymnasiums and atriums require extra care as to how conduit will be routed across or around these areas, especially when the entering/exiting pathway would be lower in elevation than the ceiling.

Vertical risers are typically accommodated in either one of two ways—through shafts (pull boxes may be required depending on the height of the building and conduit layout) or stacked electrical closets. Stacked closets allow for the busway or conduits that distribute power throughout the building to be run through these spaces for a more efficient and less expensive installation. If these closets are constructed with 2-hour-rated partitions, the stacked rooms can provide the code-required circuit protection for EPSS feeders and fire alarm circuits without having to rely on more costly wiring methods.


Local/branch Equipment Rooms

A third space type, the local/branch equipment room, is often referred to as an electrical closet (see picture below). Distribution panels, branch circuit panels, and low-voltage transformers are typically located in these spaces and directly serve the end-user loads: lighting, receptacles, and small equipment. Lighting control system panels and devices (and other electrical system devices) are sometimes also located in these rooms. Given the amount of change that occurs in buildings over their lifespan, extra wall space should always be provided in these rooms for future equipment.



The electrical closet is arranged to meet multiple requirements. First, all code clearances have been met. Additionally, it provides a vertical pathway for feeders extending up through the building.


In multistory buildings, these spaces should be stacked. The placement of electrical closets within a building’s footprint is often an item of much debate and discussion with the rest of the design team. The NEC has set restrictions on piping and ductwork routed through these rooms (i.e., dedicated spaces). Conduit needs to be routed out of the room to the floor or area served; minimizing branch circuit lengths help avoid excessive voltage drop and reduce distribution costs. These rooms should be located as close to the center of the area served, with conduits routed out in all directions.

Avoid specific adjacency to other building elements. Often, closets are targeted for location next to mechanical shafts, but the need to get duct-work and/or piping out of these becomes challenging and conflicts with the electrical equipment’s dedicated space. Similarly, locations next to stairs or elevator shafts present other challenges and limit the routing of conduits out of the electrical rooms. Locating electrical rooms next to these, especially if placed between, should be carefully evaluated to ensure there is enough space and flexibility for conduits.


Additional Space Needs

Outside of working- and dedicated-space needs, there are many special considerations for electrical rooms that depend on building programs as well as exterior spaces that will directly impact how the electrical systems are designed. The needs and expectations associated with an office building are very different from that of a data center or hospital with regard to the electrical distribution systems. Redundancy and resiliency are essential for mission critical-type facilities. Flooding due to natural disasters is a key element in determining equipment placement. These equipment should be located above the anticipated flood levels. This ensures ongoing continued operations during and after an event.




Mission critical and safety-critical installations require added redundancy to ensure the continuity of business operations. Redundancy of systems requires more space, as the equipment is separated into different rooms in different parts of the building. Having panels that are part of a redundant distribution arrangement (A and B sources) located adjacent or in close proximity to each other in the same electrical room greatly minimizes the value that the intended redundancy offers. The redundant equipment should be located in separately rated spaces, with the A sources and distribution located apart from the B sources and distribution.





Additional clearance requirements include allowing for future equipment to be moved into a room or allowing for the eventual replacement of that same equipment. While code may only require 3 or 4 ft of clearance in front of a piece of equipment, the physical dimension of the equipment could be larger. Because of this, the only way to effectively remove and reinstall a replacement is to leave an area that is larger than the footprint of the equipment.

Getting equipment from the exterior of a building to its final location may not always be a concern during the initial building construction, but it will certainly be an issue during later time periods of equipment modifications, additions, or replacement. The entire pathway from the building exterior, including doorways, may need to be enlarged due to the height or width of the equipment. If the equipment is located on a floor level that is below- or abovegrade, then area wells, reinforced floors, and a pathway or removable sections of the exterior wall assembly may be required.





Buildings are expected to have a life well beyond the initial install, and yet future growth and conduit installation are rarely considered. This automatically infers change, which will likely come in the form of added equipment and conduit. Initial planning and system design should account for this by including spare breakers, additional distribution sections, and oversized-conduit rack supports.



About us

Strategic Media Asia (SMA) is one of the approved CPD course providers of the Chartered Institution of Building Services Engineers (CIBSE) UK. The team exists to 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 the Data Center Design Consideration, please visit 
(12) Electrical Rooms (I) and (II)

All topics focus on key components and provide technical advice and recommendations for designing a data center and critical facilities.



Wednesday, March 21, 2018

Data Center Design Consideration: Electrical Rooms (1)

Switchboards, switchgear, transformers, generators, and UPSs require space for installation, maintenance, heat dissipation and future expansion (if possible). The wiring, busways, and raceways that distribute the electrical power must be accounted for now or in the future.

Electrical engineers should coordinate with mechanical engineers, architects, structural engineers, and others involved in the design of electrical rooms. Documentation and monitoring of electrical system’s equipment and how it connects to the rest of the facility must be accurately maintained.

We are going to explain the applicable code requirements and evaluate the design criteria for appropriate electrical-room size to accommodate present and future needs. Furthermore, we analyze the requirements for coordinating with structural, architectural, fire protection, and HVAC requirements.


   


Electrical rooms and mechanical, electrical, and plumbing (MEP) spaces are often an afterthought when it comes to building design and planning, either relegated to locations that are left over or deemed undesirable for other planning purposes. This shortsightedness can have unfortunate consequences on the cost, operations, and flexibility of the systems for the future.

NFPA 70: National Electrical Code (NEC) dictates the minimum amount of space needed around the equipment for access, operations, safety reasons, and conduit installation. Together, with the actual equipment sizes, this defines the overall minimum dimensional requirements of the room.





There are three types of general interior electrical spaces that factor into new building design: (1) main equipment rooms, (2) distribution pathways, and (3) local/branch equipment rooms. Code-required working space and dedicated space needs must be met. This article will outline important considerations for these spaces in the early stages of building design as they relate to building type, intended occupancy, size, and future expectations of both the building and the electrical systems.


Working Spaces


Let’s see the different between working and dedicated space as stated by the NEC (see picture below). The working space helps safeguard a clear working zone around all equipment and ensures protection for any workers or occupants within the room. This includes defining minimum width, depth, and height requirements for the working space, which varies due to voltage and the specific equipment. The higher the voltage of the equipment, the greater the depth of the working space. The width should be equal to the width of the equipment and no less than 30 in., while allowing for opening any doors or hinged panels to a full 90 deg. The height should be 6 ft 6 in. from the floor, or the height of the equipment if greater than 6 ft 6 in.

The style and construction type of the electrical equipment dictates whether only front access is required, or if rear and/or side access also is required. For each point of access to a piece of equipment, the minimum working clearances must be provided.



The dedicated space (depicted in red) and the working clearances (depicted in blue) are shown in a new emergency distribution room.


Dedicated Spaces


Dedicated space is a zone above the electrical equipment. It’s reserved to provide future access to the electrical equipment, protection of the electrical equipment from foreign systems, and for installing conduit/other raceways supporting incoming and outgoing circuits. The requirement for dedicated space applies primarily to switchgear, switchboards, panelboards, and motor control centers. The space should be equal in width and depth to the equipment size and extend from the floor to a height of 6 ft above the equipment (or to a structural ceiling, whichever is lower). No equipment or systems foreign to the electrical installation are allowed in this zone by the NEC.



The medium-voltage switchgear sections and unit substation transformers in a large data center installation require additional space and clearances.


The area above the dedicated space may contain foreign systems, provided proper protection prevents damage from drips, leaks, or breaks in these systems. However, it’s good practice to avoid having these systems installed in electrical rooms altogether.

While installations of equipment greater than 1,000 V generally follow the same principles, some of the specifics vary, requiring additional clearance around the equipment due to the increased hazard that these voltages impose (see picture above). Access to this equipment is preferably limited to only those deemed qualified to be there. For this reason, electrical equipment should be installed in rooms or spaces that are dedicated for that purpose and have controlled access.


Main Equipment Rooms


The main electrical room, or service entrance space, should coordinate with the local electrical utility. For example, main equipment rooms have requirements that dictate access to the space from the exterior for servicing, maintenance, and service feeder installation. The type of equipment installed will also further determine the room requirements. The service entrance room is typically located on an exterior wall for both code and practical reasons; it makes installation easier and minimizes the length of the service entrance conductors. Because the service conductors are usually the largest in the facility, this can have a substantial impact on cost.

Using arc-resistant switchgear will also impact space needs. This equipment will be taller and may have a larger footprint. Engineers will also need to account for the potential exhaust gases and arc flash energy by providing a pathway to expel them and relieve the pressure buildup from inside the switchgear.

If an exterior transformer is used to provide the service to a building, feeders from the transformer enter the building and transition to the main service entrance disconnect, typically a switchgear, switchboard, or panelboard. These feeders are often routed underground into the building through the exterior foundation wall via a coordinated opening. Additional coordination with the structural engineer is needed to avoid footings.

The elevation of the service entrance conduits many times do not naturally align with the equipment to which it is routed. Additional space in the form of increased height or footprint commonly is required to allow for the successful transition and termination of these conduits and conductors. Service installations that require medium-voltage equipment and/or transformers installed indoors will require additional elements including more space, higher fire ratings of the rooms (per NEC Article 450), and increased ventilation.

The location of any exterior equipment also needs to be coordinated with other architectural and landscaping elements. Minimum separation distances are often dictated by local codes/ordinances or utility requirements for proximity to screen walls, fencing, vegetation, paths of egress, or building fenestration.

Generator installations offer additional challenges when it comes to defining space needs. Noise, odor, and vibration factor into the location of this equipment within a building. The equipment should be located to minimize disturbances to building occupants and adjacent properties. Many jurisdictions have specific requirements on noise emissions, which will impact equipment placement and other components needed to meet requirements. Increasing the distance of this equipment from sensitive areas is one way of dealing with the concerns, but this comes with added feeder costs and may prove to be more costly than other options.

Sound attenuation and equipment required to meet specific emissions requirements, such as diesel oxidation catalyst, particulate filters, urea tanks, and selective catalytic reduction units, have significant cost implications and require a large amount of space to install.

Tier 4 versus Tier 2 compliance is usually dictated by an owner’s desire to use a generator for utility peak shaving or other non-critical proposes. It is crucial to have a clear understanding of current and future implications in both of these areas from the outset of a project and to discuss them thoroughly with the building owner.

The weight of a generator and the vibration experienced during its operation will have an impact on the building’s structural design. Generators require a lot of ventilation for cooling and combustion needs; getting air into and out of the room is critical and will impact placement.

With regard to fuel storage, most installations require a volume of fuel that dictates an external fuel tank with interconnecting fuel lines. NFPA (National Fire Protection Association) limits the overall capacity of diesel fuel inside buildings to 660 gal. The relationship of the exterior tank and the generator is also important to minimize pumping requirements and allow for gravity-drain return-fuel piping. This requires the fuel tank to be lower in elevation than the generator.

Direct access to the outside is preferable for maintenance and testing. All of this requires close coordination with the architectural, structural, and mechanical disciplines.

NFPA 110: Standard for Emergency and Standby Power Systems requires the emergency power supply for Level 1 installations to be installed in a separate room, separated from the rest of the building by 2-hour fire-rated construction. While NFPA 110 does allow the emergency power supply system equipment (EPSS; equipment consists of all components from the emergency power supply, or EPS, to the load terminals of the transfer switches) to be installed in the same room as the EPS, it is good practice to keep these separated to help enhance system resiliency. EPS rooms are also prone to additional dust, moisture, temperature fluctuations, and excessive noise during operation that limits the ability to have a conversation and may have a negative impact on other equipment if co-located.

For mission-critical facilities (e.g., financial institutions, data centers, and airports) and other highly sensitive installations, the use of a dry-type, pre-action, or another type of fire protection system that does not rely on a normally wet piping installation is highly recommended. In cold climates, this has an added advantage of preventing pipes from freezing, rupturing, and potentially flooding the EPS room.


Continue Reading: Part (2) - Data Center Design Consideration: Electrical Rooms


About us

Strategic Media Asia (SMA) is one of the approved CPD course providers of the Chartered Institution of Building Services Engineers (CIBSE) UK. The team exists to 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 the Data Center Design Consideration, please visit 

All topics focus on key components and provide technical advice and recommendations for designing a data center and critical facilities.

Tuesday, December 5, 2017

Boost Your Data Center Efficiency with Multi-mode UPS Systems

When consulting-specifying engineers look at the hundreds of technology factors that go into a data center’s design, they know that even small variables, when multiplied by big numbers, add up quickly. That’s the case with seemingly small incremental increases in energy efficiency for uninterruptible power supply (UPS) systems used in data centers around the world.

According to the Uptime Institute, traditional transformer-based UPS devices represent only 12% of a typical data center’s energy consumption, given power use and energy conversion inefficiencies and heat loss. Although they account for only a fraction of the total energy consumption in a data center, even small improvements in UPS energy conversion efficiency can add up to significant lifecycle operational cost savings.



Figure 1: Typical Data Center AC-Power Configuration


Traditional double conversion UPS units (Figure 1), which protect the load during outages — use a rectifier to convert the alternating current (ac) power to direct current (dc) power, and an inverter to provide safe and clean ac power to the load using either the main or battery power.

Unfortunately, in this scenario power efficiency is the price paid for protection. Transformer-based double conversion UPS systems have a typical power efficiency rating in the range of 88% to 92%. As a result, double conversion UPS systems place a steep toll on annual data center energy operating budgets.

Newer three-level insulated gate bipolar transistor (IGBT) UPS technologies, which reduce switching and filtering power conversion losses, offer efficiency levels approaching 97% in double conversion mode, and up to 99% efficiency when operating in energy-saving multi-mode. These new, three-level UPS topologies create new OpEx rationales when designing data center power systems and specifying UPS technologies.


Multi-mode Transfer Speed


So what’s that optimum switching or transfer time? According to a Green Grid white paper on multi-mode (or eco-mode), “if, for example, a UPS has a transfer time of greater than 10 ms and is paired with information technology (IT) equipment that has ride-through capabilities of only 10 ms, the UPS may not be able to support the IT equipment.”

That’s one of the reasons a few companies design their multi-mode UPS products with transfer speeds of less than 2 ms. The technologies that help achieve these speeds are seamless and represent a robust set of power disturbance detection, analysis, and control systems.

When a multi-mode UPS unit’s responsive monitoring technologies detect any sort of deviation on the main or bypass power path, the inverter is immediately turned on to allow quality power to flow from the double conversion premium protection mode. In the same instant, the static switch on the bypass path from the utility is turned off to block the disturbance from reaching the load.

A variety of disturbance analyzers and fast-switching technologies are employed in combination, including


  • An instantaneous adaptive voltage error detector that monitors subtle changes in amplitude and duration
  • A root mean square (RMS) voltage error detector that computes the RMS of all three UPS output voltages for variances
  • An output short circuit detector that, after a breaker is tripped, will automatically increase line current to rapidly clear and reset the breaker
  • A sophisticated transient inverter controller that quickly manages the transfer of the load to inverter power and back again to the bypass path.


All of these advanced monitoring and control systems work in concert to anticipate and respond to a comprehensive set of possible power conditions, creating a transfer switch speed of less than 2 ms. This speed helps to maximize the intermittent transfer to double conversion protection, while maintaining higher multi-mode efficiency for the majority of the time when quality utility power is flowing.


Lifecycle Costs


In evaluating efficiency and lifecycle costs for multi-mode UPS systems, some might ask: If our UPS running in double conversion already gets us to 93% efficiency, why take a “risk” for a few percentage points in efficiency? Can that extra energy efficiency provide a significant return?



Figure 2: Small percentage improvements in power efficiency can yield significant savings over a 10-year period.


If we look at a UPS deployment at a typical 10 MW data center realizing just a 1% gain in efficiency, we can see a significant impact over 10 years. As Figure 2 shows, while CapEx (Capital Expenditure) are fixed, a Total Cost of Ownership (TCO) evaluation of the OpEx (Operating Expense) for running an UPS over 10 years creates an operational savings of $1.4 million when energy efficiency improves a single percent — from 93% to 94% efficiency. With newer multi-mode UPS technologies that provide up to 96.5% efficiency, that savings could jump to almost an additional $3.4 million.

As both corporate and data center providers challenge their consulting-specifying partners to deliver projects that balance capital and lifecycle costs, as well as ensure the reliability and energy efficiency of their facilities, new multi-mode UPS efficiency models provide a compelling set of tools for data center designers and engineers.


About us

Strategic Media Asia (SMA) is one of the approved CPD course providers of the Chartered Institution of Building Services Engineers (CIBSE) UK. The team exists to 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 the Data Center Design Consideration, please visit 

All topics focus on key components and provide technical advice and recommendations for designing a data center and critical facilities.






Wednesday, October 25, 2017

Understand the Cooling and Ventilation System Design for Data Center


Air Conditioning System Design for Data Center
(23 - 24 March 2017, approved CPD course by CIBSE UK)


It targets to engineers involved in designing or handling HVAC (Heating, Ventilation and Air Conditioning) equipment for mission critical facilities, IT infrastructure and data center projects.

All sessions highlight design principles such as psychrometric chart, cooling load calculation / estimation, etc. and the design considerations such as air distribution, availability / redundancy, common mistakes, Computer Fluid Dynamic (CFD) model, integration with MEPs (Mechanical, Electrical and Plumbing system), etc.

You'll be able to make informed decisions about the best choices of cooling systems for mission critical purposes and how system can best meet the project goal and SLA (Service Level Agreement).


Date: 23 - 24 March 2017 (Thursday - Friday)
Time: 10:00 - 17:30
Venue: 14/F, On Lok Yuen Building, 25-27A Des Voeux Road Central, Hong Kong
Fee: Special rate for CIBSE / HKIE all membership classes



> Datacom Equipment Power Trends and Cooling Applications

-- Load trends and their application
-- Air cooling of computer equipment
-- Liquid cooling of computer equipment


> Design Consideration

-- Design criteria
-- HVAC load
-- Computer room cooling
-- Air distribution
-- Liquid cooling
-- Availability and redundancy
-- Controls
-- Integration with other MEP (Mechanical, Electrical and Plumbing) system
-- Computer Fluid Dynamics (CFD)


> Testing and Commissioning

-- Air cleanliness test
-- Heat load test
-- Factory acceptance test
-- Site acceptance test
-- Integrated performance test (IST)


> Energy Efficiency

-- Power usage effectiveness
-- Chilled water plant optimization
-- Water side and air side equipment
-- Part load operation
-- Controls and energy management
-- LEED certified data center
-- Building energy code


> Sustainable Design

-- Combined heat power plant (CHP)
-- Solar cooling
-- Geothermal cooling
-- Evaporative cooling
-- Air side economizers
-- Desiccant unit


For details, please visit http://www.stmedia-asia.com/newsletter_6.html.





Get Ready to Become a Registered Specialist Contractor (Ventilation)
(29 April & 6 May 2017, Saturday)


Designed for enterprises in ventilation / air-conditioning engineering - Technical Director (TD), Authorized Signatory (AS) or other officers, our speaker introduces the register requirement, interview technique, Buildings Ordinance, ventilation and fire safety, occupational safety, health and environmental protection, etc.

The preparatory course helps local engineers and enterprises to facilitate compliance with the Buildings Ordinance in Hong Kong and to get ready to become a Registered Specialist Contractor for Ventilation Works (RSC-V).


Date: 29 April + 6 May 2017 (Saturday) - 11th round
Time: 9:00 - 13:00 / 13:30
Venue: 14/F, On Lok Yuen Building, 25-27A Des Voeux Road Central, Hong Kong
Fee: Early bird discount available for payment & application made before March 17, 2017


The RSC-V preparatory course is also available online www.stmedia-asia.com/aircon.html.





About us


Strategic Media Asia (SMA) is one of the approved CPD course providers of the Chartered Institution of Building Services Engineers (CIBSE) UK. The team exists to 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 the Data Center Consideration Series, please visit 


(1) Site Selection,
(2) Space Planning,
(3) Cooling,
(4) Redundancy,
(5) Fire Suppression,
(6) Meet Me Rooms,
(7) UPS Selection, and
(8) Raised Floor

All topics focus on key components and provide technical advices and recommendations for designing a data center and critical facilities.



Monday, October 16, 2017

InRack and InRow Cooling for Data Center

Traditional data center, computer room, and server room cooling methods cool down an entire room with cold air from centralized units to one end of the room. This approach is acceptable when power densities are minimal with few hot spots in the room. However, room-oriented designs are affected by room constraints including ceiling height, room shape, obstructions above and below the floor, rack layout, Computer room air conditioning (CRAC) units' location, power distribution, etc.




CRAC units force chilled air into a data center and around the equipment. In most cases, cooling these vast volumes of air is very inefficient. Although a hot and cold aisle containment decreases the volume, it still results in a lot of excess cooling and costs of powering the CRACs. 

So why don't consider more selective data center cooling options which work together with your CRAC units or chill specific critical loads with high efficient ways but low energy cost?




Modern data centers adopt InRack and InRow coolers (IRCs), also known as close-coupled cooling systems, because they are tailor-made for high densities of hot-running IT equipment and tight energy budgets. These cooling strategies are inherently more efficient than standard CRAC systems because it ties into the IT equipment rather than sending cooled air into the room space. They may be mounted among the IT racks / cabinets or they may be mounted overhead or under the floor.


InRack Cooling




Dedicated racks, another low-effort retrofit, offer cooling isolation. The rack operates just like a standard data center rack, but it is sealed on all sides as a self-contained system. Cool air is forced up through the rack from the bottom, running over the equipment before exiting through the top to a hot plenum, where the heat is vented or recovered as necessary.




InRow Cooling




In-row cooling systems work within a row of standard server racks. The units are standard rack height, making them easy to match with the row and couple tightly to the IT equipment to ensure efficient cooling. Systems from APC by Schneider Electric, Liebert by Emerson Network Power, Rittal and others are engineered to take up the smallest footprint and offer high-density cooling. Ducting and baffles ensure that the cooling air gets where it needs to go.


    




Compared with the room-oriented architecture, the airflow paths are shorter and more clearly defined with the close-coupled cooling systems. Smaller fans can be used due to lower volumes of chilled air; energy costs are minimized; it is easier to target air onto high-density hot spots for preferential cooling; and business continuity improves, as the failure of any one single unit in the cooling environment only affects that rack or cabinet, as opposed to the total data center or the whole aisle containment. And, as the majority of these systems are modular, it is easy and cost-effective to build in degrees of resilience, leading to higher availability across the whole data center.


About us





Strategic Media Asia (SMA) is one of the approved CPD course providers of the Chartered Institution of Building Services Engineers (CIBSE) UK. The team exists to 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 the Data Center Design Consideration, please visit 
(3) Cooling,
(4) Redundancy,
(9) Code & Standards, and

All topics focus on key components and provide technical advice and recommendations for designing a data center and critical facilities.


Monday, July 3, 2017

Join the Technical Visit + CPD Course in Electrical Design for Mission Critical Supply



Electrical Design for Mission Critical Supply (2-day)
(10 - 11 August 2017, approved CPD course by CIBSE UK)


Mission critical facilities have particular power requirements that significantly impact how they are designed and operated. 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)


The sessions detail about the power system components that support typical data centers or mission-critical infrastructure. It prepares individual to fully understand the high voltage systems' design & build by exploring the international best practices and sharing the instructors' experience.

Speakers' Profile - www.stmedia-asia.com/profile


Date: 10 - 11 August 2017 (Thursday - Friday)
Time: 10:00 – 17:30

Venue: Ground Floor, Innocentre, 72 Tat Chee Avenue, Kowloon Tong, Hong Kong
(Next to the Hong Kong Productivity Council)

Fee: Special rate for CIBSE / HKIE all membership classes
Language: Cantonese (with English Course Materials)

For details, please refer to www.stmedia-asia.com/newsletter_6.html.






Half Day Technical Visit / Showroom Tour

Sponsor - APC by Schneider Electric (www.schneider-electric.com)


Further to the critical facilities design course, a half-day showroom tour is arranged to demonstrate the critical power, cooling facilities and data center management solutions by one of the world’s leading equipment provider. The tour also provides an interactive environment and opportunities for the engineers to exchange professional views on mission-critical facilities with a hands-on and immersive experience.


Date: 25 August 2017 (Friday)
Assembly Time: 15:45 - 16:00
Assembly Point: 11/F, Kerry Centre, 683 King's Road, Quarry Bay, Hong Kong


* Pre-registration required
* Seats are limited. Priority will be given to the CPD course's participants.


Enrollment & Registration

Kindly complete and return an Application Form together with a crossed cheque made payable to “Strategic Media Asia Limited” - Room 403, 4th Floor, Dominion Centre, 43 - 59 Queen's Road East, Hong Kong.


About the Organizer

Strategic Media Asia Limited (SMA) is one of the approved CPD course providers of the Chartered Institution of Building Services Engineers (CIBSE) UK. For details, please visit www.stmedia-asia.com/about.html or http://green-data.blogspot.com (Knowledge Blog).


Adverse Weather Arrangement - Events in the morning, afternoon or evening will be cancelled if typhoon signal No. 8 or above or black rainstorm warning is still hoisted after (or is announced by the Hong Kong Observatory to be hoisted at / after) 6:00 a.m., 11:00 a.m. and 4:00 p.m. respectively. Delegates will be notified when the class will be made up as soon as possible.


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Strategic Media Asia Limited
Connecting IT, Facilities and Design

T (852) 2117 3893 | F (852) 2184 9978

Room 403, 4th Floor, Dominion Centre, 43 - 59 Queen's Road East, Hong Kong
http://www.stmedia-asia.com | http://green-data.blogspot.com