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1

American Society of Heating, Refrigerating and Air-Conditioning Engineers. and American National Standards Institute, eds. Method of testing thermal storage devices with electrical input and thermal output based on thermal performance. American Society of Heating, Refrigerating and Air-Conditioning Engineers, 2006.

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2

Lundin, Sven-Erik. Thermal energy storage technology in Sweden: R&D program, technology, economics, application. Swedish Council for Building Research, 1987.

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3

Adams, R. Dean. High performance memory testing: Design principles, fault modeling, and self-test. Kluwer Academic, 2003.

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4

Statens råd för byggnadsforskning (Sweden), ed. Development of advanced water-to-water heat pumps in the range of 200 to 5000 kW thermal output: Prestudy. Swedish Council for Building Research, 1986.

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5

Sharma, Ashok K. Semiconductor memories: Technology, testing, and reliability. IEEE Press, 1997.

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6

Margen, Peter. The role and economics of different types of energy storage. Swedish Council for Building Research, 1985.

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7

Torbjörn, Winqvist, and Statens råd för byggnadsforskning (Sweden), eds. Energy savings by subsurface use: A review of recent experience and research in Sweden. Swedish Council for Building Research, 1985.

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8

Margen, Peter. Economics of heat storage in small and large systems: General data and case studies. Swedish Council for Building Research, 1986.

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9

United States. National Aeronautics and Space Administration., ed. Parametric studies of phase change thermal energy storage canisters for Space Station Freedom. National Aeronautics and Space Administration, 1992.

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10

E, Lisano Michael, and United States. National Aeronautics and Space Administration., eds. Thermal Storage Advanced Thruster System (TSATS) experimental program. National Aeronautics and Space Administration, 1991.

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11

National Renewable Energy Laboratory (U.S.). Thermal Systems Group. Thermal storage and advanced heat transfer fluids. National Renewable Energy Laboratory, 2010.

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12

Statens råd för byggnadsforskning (Sweden), ed. The borehole heat store in rock at the Luleå University of Technology: Constructional and operational experience, the Lulevärme project 1982-1985. Swedish Council for Building Research, 1987.

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13

Sharma, Ashok K. Semiconductor memories: Technology, testing, and reliability. IEEE, the Institute of Electrical and Electronics Engineers, 1997.

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14

National Renewable Energy Laboratory (U.S.) and SolarPACES (Conference) (2011 : Granada, Spain), eds. High temperature phase change materials for thermal energy storage applications: Preprint. National Renewable Energy Laboratory, 2011.

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15

IEEE International Workshop on Memory Technology, Design, and Testing (1997 San Jose, Calif.). Proceedings: International Workshop on Memory Technology, Design, and Testing. IEEE Computer Society Press, 1997.

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16

Reeves, George. Electric thermal storage applications guide and product directory. EPRI, 1990.

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17

Hamdioui, Said. Testing static random access memories: Defects, fault models, and test patterns. Kluwer Academic, 2004.

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18

Andersson, Olof. Scaling and corrosion: Annex VI : environmental and chemical aspects of thermal energy storage in aquifers. Swedish Council for Building Research, 1992.

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19

Abel, Enno. The Economic margin for alternatives in new energy technology. Swedish Council for Building Research, 1987.

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20

Lennart, Sjöberg, Hallberg Rolf O, and Statens råd för byggnadsforskning (Sweden), eds. Leaching of rock fractures: Laboratory and field tests for borehole heat stores. Swedish Council for Building Research, 1988.

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21

IEEE International Workshop on Memory Technology, Design, and Testing (1998 San Jose, California). Memory technology, design and testing: Proceedings : International Workshop on Memory Technology, Design, and Testing. IEEE Computer Society Press, 1998.

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22

IEEE, International Workshop on Memory Technology Design and Testing (17th 2009 Hsinchu Taiwan). MTDT 2009: 2009 IEEE International Workshop on Memory Technology, Design, and Testing : proceedings, 31 August- 2 September 2009, Hsinchu, Taiwan. IEEE Computer Society, 2009.

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23

IEEE, International Workshop on Memory Technology Design and Testing (1994 San Jose Calif ). Records of the IEEE International Workshop on Memory Technology, Design, and Testing, August 8-9, 1994, San Jose, California. IEEE Computer Society Press, 1994.

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24

L, Podio Fernando, Society of Photo-optical Instrumentation Engineers., International Disk Drive Equipment and Materials Association., and Information Technology Laboratory (National Institute of Standards and Technology), eds. Recent advances in metrology, characterization, and standards for optical digital data disks: 21-22 July 1999, Denver, Colorado. SPIE, 1999.

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25

IEEE International Workshop on Memory Technology, Design and Testing (12th 2004 San Jose, Calif.). MTDT 2004: Records of the 2004 International Workshop on Memory Technology, Design and Testing : 9-10 August, 2004, San Jose, California, USA. IEEE Computer Society, 2004.

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26

IEEE International Workshop on Memory Technology, Design and Testing (8th 2000 San Jose, Calif.). Records of the 2000 IEEE International Workshop on Memory Technology, Design and Testing: August 7-8, 2000, San Jose, California. IEEE Computer Society, 2000.

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27

IEEE International Workshop on Memory Technology, Design, and Testing (1999 San Jose, Calif.). Records of the 1999 IEEE International Workshop on Memory Technology, Design, and Testing, August 9-10, 1999, San Jose, California, USA. IEEE Computer Society Press, 1999.

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28

International, Test Conference (34th 2003 Charlotte N. C. ). Proceedings: Board and system test track. International Test Conference, 2003.

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29

Nordell, Bo. A borehole heat store in rock at the University of Luleå: The Lulevärme Project, 1982-1988. Swedish Council for Building Research, 1990.

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30

Huber, Georg. Wärmflaschen, Wärmesteine, Wärmepfannen: Zur Geschichte der Wärmespender von 1500 bis heute. Husum, 2000.

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31

Madaeni, Seyed Hossein. Capacity value of concentrating solar power plants. National Renewable Energy Laboratory, 2011.

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32

Zuev, Sergey, Daut Yahutl', Boris Bass, and Ruslan Maleev. Ignition devices for fuel-air mixture of heat engines. INFRA-M Academic Publishing LLC., 2024. http://dx.doi.org/10.12737/1911604.

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The textbook describes the basic theoretical foundations and practical tasks in the field of research of ignition devices of fuel-air mixture of heat engines. The data concerning the working conditions of spark plugs, their classification, device and main characteristics are presented. The features of electrophysical processes in spark plugs of automotive internal combustion engines are described in detail. The methodology and algorithms of numerical simulation of the thermal state of a spark plug are considered. The development, testing and quality control, production and operation of ignitio
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33

International Test Conference (34th 2003 Charlotte, N.C.). Proceedings International Test Conference 2003: [September 30-October 2, 2003, Charlotte Convention Center, Charlotte, NC, USA. International Test Conference, 2003.

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34

IEEE Electron Devices Society. Standards Committee., Institute of Electrical and Electronics Engineers., and IEEE-SA Standards Board, eds. IEEE standard definitions and characterization of floating gate semiconductor arrays. Institute of Electrical and Electronics Engineers, 1999.

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35

United States. National Aeronautics and Space Administration., ed. Passively adaptive inflatable structure for the Shooting Star Experiment. National Aeronautics and Space Administration, 1998.

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36

Galen, E. van. Recommendations for European solar storage test methods for sensible and latent heat storage devices: Results of special tasks carried out by the individual group members. Commission of the European Communities, 1985.

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37

B, Ibrahim Mounir, and United States. National Aeronautics and Space Administration., eds. Analysis of thermal energy storage material with change-of-phase volumetric effects. National Aeronautics and Space Administration, 1990.

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38

Method of Testing Active Latent Heat Storage Devices Based on Thermal Performance (Ashrae Standards, 94.1-1985). Amer Society of Heating, 1992.

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39

Method of Testing Active Latent Heat Storage Devices Based on Thermal Performance (Ashrae Standards, No 94.1-1985). Amer Society of Heating, 1986.

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40

Method of Testing Active Latent-Heat Storage Devices Based on Thermal Performance (ANSI/ASHRAE Standard 94.1-2002 (RA 2006)) Reaffirmation of ANSI/ASHRAE Standard 94.1-2002. Amer Society of Heating, 2005.

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41

Adams, R. Dean. High Performance Memory Testing: Design Principles, Fault Modeling and Self-Test (Frontiers in Electronic Testing). Springer, 2002.

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42

Kalaiselvam, S., and R. Parameshwaran. Thermal Energy Storage Technologies for Sustainability: Systems Design, Assessment and Applications. Elsevier Science & Technology Books, 2014.

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43

Adams, R. Dean. High Performance Memory Testing: Design Principles, Fault Modeling and Self-Test. Springer, 2013.

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44

Adams, R. Dean. High Performance Memory Testing: Design Principles, Fault Modeling and Self-Test. Springer London, Limited, 2006.

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45

Sharma, Ashok K. Semiconductor Memories: Technology, Testing, and Reliability. Wiley-IEEE Press, 2002.

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46

Hamdioui, Said. Testing Static Random Access Memories: Defects, Fault Models and Test Patterns (Frontiers in Electronic Testing). Springer, 2004.

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47

Ding, Yulong, and Luisa Cabeza. Thermal Energy Storage: Materials, Devices, Systems and Applications. Royal Society of Chemistry, The, 2020.

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48

Thermal Energy Storage: Materials, Devices, Systems and Applications. Royal Society of Chemistry, The, 2020.

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49

Modeling void growth and movement with phase change in thermal energy storage canisters. National Aeronautics and Space Administration, 1993.

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50

Modeling void growth and movement with phase change in thermal energy storage canisters. National Aeronautics and Space Administration, 1993.

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