ITU-T SERIES L SUPP 11-2014 ITU-T L 1300 C Supplement on a verification test and feasibility study of energy and space efficient cooling systems for data centres with high density .pdf
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1、 I n t e r n a t i o n a l T e l e c o m m u n i c a t i o n U n i o n ITU-T Series L TELECOMMUNICATION STANDARDIZATION SECTOR OF ITU Supplement 11 (12/2014) SERIES L: CONSTRUCTION, INSTALLATION AND PROTECTION OF CABLES AND OTHER ELEMENTS OF OUTSIDE PLANT ITU-T L.1300 Supplement on a verification te
2、st and feasibility study of energy and space efficient cooling systems for data centres with high density ICT devices ITU-T L-series Recommendations Supplement 11 L series Supplement 11 (12/2014) i Supplement 11 to ITU-T L-series Recommendations ITU-T L.1300 Supplement on a verification test and fea
3、sibility study of energy and space efficient cooling systems for data centres with high density ICT devices Summary Supplement 11 to the ITU-T L series of Recommendations refers to the best practices defined in Recommendation ITU-T L.1300. More precisely, this Supplement provides firstly an introduc
4、tion to a verification test and feasibility study of energy and space efficient cooling systems for data centres with high density ICT devices. Secondly, trial calculations of energy conservation benefits with respect to the application to a full-scale data centre are then reported. History Edition
5、Recommendation Approval Study Group Unique ID* 1.0 ITU-T L Suppl. 11 2014-12-19 5 11.1002/1000/12439 Keywords Best practice, data centre, energy efficient, information and communication technology and climate change (ICT an outline of verification and testing methodologies; verification test results
6、; and trial calculations of energy conservation benefits calculations results when applied to a full-scale data centre. 2 Definitions This Supplement defines the following terms: 2.1 power density: The energy consumption of ICT equipment per rack cabinet of floor area of a server room. 2.2 space eff
7、iciency: The ratio of floor area employed for ICT equipment in relation to the total floor area of the building. 3 Abbreviations and acronyms This Supplement uses the following abbreviations and acronyms: AHU Air Handling Unit WB Wet-Bulb 4 Introduction 4.1 Background In his speech to the General As
8、sembly of the United Nations in September 2009, Prime Minister Hatoyama stated Japans international pledge to reduce CO2 emissions by 25% of 1990 levels by the year 2020 as a mid-term target. As a contribution to this target, a “world-leading reduction in environmental impact“ was also proposed for
9、the “Haraguchi Vision“. At the same time, there is no method for measuring the reduction in CO2 emissions within the internationally recognized field of ICT. With 2010 as the first target period, work on providing advice on methods of evaluating the effects of CO2 reductions for ICT commenced at the
10、 International Telecommunication Union (ITU), and international standardization for ICT on climate change has been strengthened. Within the context of information and communications, the importance of data centres, which form the foundation of information and communications, has increased with the d
11、evelopment of cloud computing and the rapid progress in ICT. Furthermore, in business activities, in terms of improving the efficiency of operations, rapid progress has been achieved in ICT, and the demand for data centres, the foundation of the ICT infrastructure, is growing rapidly. Data centres h
12、ouse large numbers of ICT 2 L series Supplement 11 (12/2014) devices (e.g., server storage network devices) for the processing and storage of a wide variety of data and have air conditioning equipment to cool the interiors of the buildings. Accordingly, the consumption of power, in association with
13、this rapid expansion of demand for data centres, is itself growing rapidly. The proportion of power required by air conditioning equipment for such cooling is high compared with the power consumed by the ICT devices, and a reduction in the power consumption of data centres is a matter of considerabl
14、e importance in improving the efficiency of air conditioning equipment, and in improving energy conservation. Furthermore, in Japan, the majority of data centres of telecommunication operators are located on sites in the suburbs of the capital and other large cities, and construction of space-effici
15、ent data centres is therefore a matter of importance. Equipment for the verification and testing of various cooling methods used for data centres was therefore constructed, and cooling efficiency measured and verified. Energy consumed with the various cooling methods was calculated, with usage of en
16、ergy and space included, and a high-efficiency method of air conditioning determined. 4.2 Objective Air conditioning used in data centres involves blowing chilled air from the server room floor to supply chilled air to the inlets of the server racks, and thus removing the heat generated by the ICT d
17、evices. This system is often referred to as “floor supply air conditioning“. For data centres located in cold areas, power consumption for air conditioning can be reduced by using natural energy from exterior air and snow. This has considerable possibilities, and examples are in use, and planned, bo
18、th in Japan and overseas. In Japan, on the other hand, the majority of data centres of telecommunication operators are located on sites in the suburbs of the capital and other large cities, and efficient use of the limited space available at these sites, and the need for high energy efficiency data
19、centre equipment, is of clear importance. In existing server rooms with high-load and high-density racks, air conditioning power consumption of various cooling methods was therefore tested and verified to investigate the optimum specifications and energy conservation benefits for air conditioning eq
20、uipment in high power density data centres. 5 Outline of verification and testing 5.1 Experimental equipment Figure 1 shows an outline of the equipment employed in verification and testing. This testing was conducted at the Hitachi Plant Technologies Ltd., Matsudo Research Laboratories (Matsudo City
21、, Chiba Prefecture), using a simulated server room and test air conditioning equipment. The simulated server room contained simulated server equipment with built-in heaters, and was mounted on a free-access floor. The facilities comprised a cold aisle supplying chilled air from the air conditioning
22、equipment, and a hot aisle facing the server rack exhaust. Test air conditioning equipment comprised a floor supply air conditioner employing conventional air conditioning and outdoor air cooling, an evaporative cooling unit, and a spot cooling unit. The test equipment comprised eight simulated serv
23、ers generating 8 kW of heat per rack. The floor supply air conditioner had a cooling capacity of 64 kW with an airflow of 20 000 m3/hr, and the evaporative cooling unit had a cooling capacity of 32 kW with an airflow of 10 000 m3/hr. One of each was installed. Four spot cooling units, each with a co
24、oling capacity of 15 kW/unit, were also installed. L series Supplement 11 (12/2014) 3 Figure 1 Outline of a verification test facility The typical floor supply air conditioning method was of the under-floor type in which cooling is achieved by supplying cooled air from multiple floor outlets. Hot in
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