Published June 2012 | Version v1
Journal article

Thermodynamic feasibility of harvesting data center waste heat to drive an absorption chiller

  • 1. School for Engineering of Matter, Transport and Energy, Arizona State University, P.O. Box 9309, Tempe, AZ 85287-9309 (United States)
  • 2. National Center of Excellence on SMART Innovations, Arizona State University, P.O. Box 9309, Tempe, AZ 85287-9309 (United States)
  • 3. School of Computing, Informatics, and Decision Systems Engineering, Arizona State University, P.O. Box 9309, Tempe, AZ 85287-9309 (United States)

Description

Highlights: ► We propose an alternative data center cooling architecture that is heat driven. ► Our primary source of thermal energy is the heat dissipated by the CPUs. ► Supplementary external heat sources such as solar thermal are included as well. ► We develop a comprehensive model that leads to a potentially realizable value of less than one. - Abstract: More than half the energy to run a data center can be consumed by vapor-compression equipment that cools the center. To reduce consumption and recycle otherwise wasted thermal energy, this paper proposes an alternative cooling architecture that is heat driven and leads to a more efficient data center in terms of power usage effectiveness (PUE). The primary thermal source is waste heat produced by CPUs on each server blade. The main challenge is capturing enough of this high-temperature heat to energize an absorption unit. The goal is to capture a high fraction of dissipated thermal power by using a heat capture scheme with water as the heat transfer fluid. To determine if the CPU temperature range and amount of heat are sufficient for chiller operation, we use server software, validation thermocouples, and chip specifications. We compare these results to required values from a simulator tool specific to our chiller model. One challenge is to simultaneously cool the data center and generate enough exergy to drive the cooling process, regardless of the thermal output of the data center equipment. We can address this by adding phase change latent heat storage to consistently deliver the required heat flow and, if necessary, a solar heat source. Even with zero solar contribution, the results show that the number of CPUs we have is sufficient and our PUE indicates a very efficient data center. Adding solar contribution, the steady-state model proposed leads to a potentially realizable PUE value of less than one.

Availability note (English)

Available from http://dx.doi.org/10.1016/j.enconman.2011.12.017

Additional details

Identifiers

DOI
10.1016/j.enconman.2011.12.017;
PII
S0196-8904(11)00371-2;

Publishing Information

Journal Title
Energy Conversion and Management
Journal Volume
58
Journal Page Range
p. 26-34
ISSN
0196-8904
CODEN
ECMADL

INIS

Country of Publication
United Kingdom
Country of Input or Organization
International Atomic Energy Agency (IAEA)
INIS RN
43076837
Subject category
S42: ENGINEERING;
Descriptors DEI
COMPRESSION; COMPUTER CODES; EXERGY; HEAT FLUX; HEAT SOURCES; HEAT TRANSFER FLUIDS; LATENT HEAT STORAGE; OPERATION; STEADY-STATE CONDITIONS; THERMOCOUPLES; VAPORS; WASTE HEAT
Descriptors DEC
ENERGY; ENERGY STORAGE; FLUIDS; GASES; HEAT; HEAT STORAGE; MEASURING INSTRUMENTS; STORAGE; WASTES

Optional Information

Copyright
Copyright (c) 2012 Elsevier Science B.V., Amsterdam, The Netherlands, All rights reserved.