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1

Tessmer, Raymond G. The TVA strategic analysis model: Its structure and uses. [Chattanooga, Tenn.?]: System Forecasting Group, Tennessee Valley Authority, 1985.

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2

Veena, D. R. Rural energy: Consumption, problems, and prospects : a replicable model for India. New Delhi: Ashish Pub. House, 1988.

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3

Leif, Brubakk, ed. SEEM, an energy demand model for Western Europe. Oslo: Statistisk sentralbyrå, 1995.

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4

Sliwinski, B. A model of U.S. Army Materiel Command (AMC) energy consumption. Champaign, Ill: US Army Corps of Engineers, Construction Engineering Research Laboratory, 1986.

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5

United Nations. Economic Commission for Africa. Development of the energy balance statistics and energy systems model for the Union of Comoros. Moroni, Comoros]: United Nations Economic Commission for Africa, 2018.

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6

), Northwest Power Planning Council (U S. Model conservation standards equivalent code. Portland, Or: Northwest Power Planning Council, 1986.

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7

), Northwest Power Planning Council (U S. Model conservation standards equivalent code. Portland, Or: Northwest Power Planning Council, 1985.

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8

Jalinier, Christian. Energy consumption of heavy road vehicles: Dynamic verifiable interactive transportation model. Pointe Claire, Que: FERIC, 1992.

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9

Robertson, Joseph. Evaluation of automated model calibration techniques for residential building energy simulation. Golden, CO: National Renewable Energy Laboratory, 2013.

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10

Organisation for Economic Co-operation and Development. Dept. of Economics and Statistics. Use of the Edmonds-Reilly model to model energy-related greenhouse gas emissions. Paris: Organisation for Economic Co-operation and Development, 1992.

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11

Eckstein, Zvi. Maʼazan ha-energyah be-Yiśraʼel: Model kalkali ṿe-taḥaziyot biḳush ʻanfe ha-mesheḳ le-energyah besisit. Ramat Gan: Modelim kalkaliyim be-ʻe. m., 1991.

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12

Vallance, B. Interactive energy demand analysis: The MAED-BI model application in the Shanxi Province, PRC. Laxenburg, Austria: International Institute for Applied Systems Analysis, 1990.

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13

Bargur, Jona. Maʼazan ha-energyah shel Yiśraʼel li-shenat 1988 be-emtsaʻut model Eflow. Tel-Aviv: ha-Merkaz ha-benteḥumi le-nituaḥ ṿe-ḥizui ṭekhnologi le-yad Universiṭat Tel-Aviv, 1990.

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14

Kennedy, Michael. Documentation for simplified heating system equipment model. [Seattle, WA]: Ecotope, 1990.

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15

Abdullah, Bilaal. Peak oil paradigm shift: The urgent need for a sustainable energy model. [St. James] Trinidad and Tobago: Medianet Limited, 2005.

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16

Khazzoom, J. Daniel. An econometric model integrating conservation measures in the residential demand for electricity. Greenwich, Conn: JAI Press, 1986.

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17

Pakanen, Jouko. Prediction and fault detection of building energy consumption using multi-input, single-output dynamic model. Espoo: Technical Research Centre of Finland, 1992.

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18

Soliman, S. A. Electrical load forecasting: Modeling and model construction. Amsterdam: Butterworth-Heinemann, 2010.

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19

Pakanen, Jouko. An ARMAX-model approach for estimating static heat flows in buildings: A methods for computerised energy allocation systems. Espoo [Finland]: Technical Research Centre of Finland, 2002.

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20

Mandal, Sabuj Kumar. Casuality between energy consumption and output growth in Indian cement industry: An application of panel vector error correction model. Bangalore: Institute for Social and Economic Change, 2010.

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21

D, Tabors Richard, Electric Power Research Institute, and Massachusetts Institute of Technology. Energy Laboratory., eds. Industrial interfuel substitution: Model development and case study. Palo Alto, Calif: Electric Power Research Institute, 1987.

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22

Merijnen, A. J. Development of a computer model for the selection of boiler plants from the viewpoint of a low energy consumption. Luxembourg: Commission of the European Communities, 1985.

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23

Rutherford, Thomas Fox. The welfare effects of fossil carbon restrictions: Results from a recursively dynamic trade model. Paris: Organisation for Economic Co-operation and Development, 1992.

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24

Spreng, Daniel T. Net-energy analysis and the energy requirements of energy systems. New York: Praeger, 1988.

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25

Rogério C. de Cerqueira Leite. Energia para o Brasil: Um modelo de sobrevivência. Rio de Janeiro: Editora Expressão e Cultura, 2002.

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26

Elkhafif, Mahmoud. Energy forecasting models, simulations and price sensitivity: new formulation. Toronto, Ont: York University, Department of Economics, 1992.

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27

Galántai, Aurél. Szimulációs modell növénytermesztési technológiák energiafelhasználásának vizsgálatára. Budapest: Akadémiai Kiadó, 1986.

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28

Schüssler, Reinhard. Der Energieverbrauch der privaten Haushalte: Eine ökonomische Untersuchung. Frankfurt am Main: P. Lang, 1987.

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29

Nesbakken, Runa. Energiforbruk til oppvarmingsformål i husholdningene. Oslo: Statistisk sentralbyrå, 1993.

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30

Wang, Jingming. Taiwan neng yuan mi ji du fen xi. Taibei Shi: Zhonghua jing ji yan jiu yuan, 1994.

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31

Bekbasarov, Isabay. Study of the process of driving piles and dies on models. ru: INFRA-M Academic Publishing LLC., 2020. http://dx.doi.org/10.12737/1074097.

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Abstract:
The monograph presents the results of experimental and theoretical studies conducted using models of driven piles and tape dies. The influence of the cross-section size, length, shape of the trunk and the lower end of the piles on their submergability, energy intensity of driving and load-bearing capacity was evaluated. The design and technological features of new types of piles are considered. A method for determining the load-bearing capacity of a pile model based on the results of dynamic tests has been developed. Similarity conditions and formulas are presented that provide modeling of the pile driving process in the laboratory. The influence of the shape of the tape dies on their submersibility, energy consumption of the driving and the bearing capacity of the foundations arranged in the vyshtampovannyh pits was evaluated. The method of determining the load-bearing capacity of a belt Foundation model based on the results of pit vyshtampovyvaniya is described. Recommendations on the choice of optimal parameters of piles and foundations, arranged in vystupovani pits. Recommended for researchers, specialists of design and construction organizations, doctoral students, postgraduates, undergraduates and students of construction and water management specialties.
32

Sadarjoen, Sismarjanto. Studi modeling sumber daya energi. Jakarta: Proyek Studi Potensi Sumber Daya Alam Indonesia, Lembaga Ilmu Pengetahuan Indonesia, 1986.

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33

Marino, Francesco Paolo R. La certificazione energetica degli edifici: Algoritmi di calcolo ed esperienze internazionali, edifici ad alta efficienza. 4th ed. Roma: EPC libri, 2009.

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34

Proskuri͡akov, V. M. Ėffektivnostʹ ispolʹzovanii͡a toplivno-ėnergeticheskikh resursov: Pokazateli, faktory rosta, analiz. Moskva: "Ėkonomika", 1988.

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35

Proskuryakov, V. M. Effektivnost' ispol'zovaniya toplivno-energeticheskikh resursov: Pokazateli, faktory rosta, naliz. Moskva: Ekonomika, 1988.

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36

Buttermann, Hans Georg. Ein Modell zur Erklärung des Faktoreinsatzes in der deutschen Zementindustrie. Essen: Rheinisch-Westfälisches Institut für Wirtschaftsforschung, 1997.

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37

Sterner, Thomas. Energy use in Mexican industry. [Göteborg, Sweden: Göteborgs universitet, Nationalekonomiska institutionen], 1985.

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38

Dumagan, Jesus C. Measuring the consumer welfare effects of carbon penalties: Theory and applications to household energy demand. Ithaca, N.Y: Dept. of Agricultural Economics, New York State College of Agriculture and Life Sciences, Cornell University, 1991.

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39

Moniḳah, Patsyuḳ, Warszawski Abraham, and Israel. Miśrad ha-energyah ṿeha-tashtit. Agaf meḥḳar u-fituaḥ., eds. Ḥishuv meḳorav shel tserikhat ha-energyah be-mivnim le-maṭarot kalkaliyot. [Jerusalem]: Medinat Yiśraʼel, Miśrad ha-energyah ṿeha-tashtit, Agaf meḥḳar u-fituaḥ, 1993.

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40

Zuazagoitia, Jaime. Long-term final energy demand analysis for Chile: Development and application of dynamic econometric and end-use static simulation models and their comparative analysis. Frankfurt am Main: P. Lang, 1994.

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41

Holub, Ed. Residential and commercial energy demand models: Review and agenda for improvement. Oak Ridge, TN: Oak Ridge National Laboratory, 1985.

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42

Rothman, Dale S. Estimating consumer energy demand using international data: Theoretical and policy implications. Ithaca, N.Y: Dept. of Agricultural Economics, New York State College of Agriculture and Life Sciences, Cornell University, 1993.

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43

Vershin, V. E. Ėnergo-ėkonomicheskiĭ analiz i modeli ėkonomicheskikh sistem. Moskva: Respublikanskiĭ issl. nauchno-konsulʹtat︠s︡ionnyĭ t︠s︡entr ėkspertizy, 1998.

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44

Dambiev, T︠S︡ T︠S︡. Termodinamicheskai︠a︡ modelʹ ustoĭchivogo razvitii︠a︡ regiona: Ėkologicheskiĭ i ėnergosberegai︠u︡shchiĭ aspekty. Ulan-Udė: Vostochno-Sibirskiĭ gos. tekhnologicheskiĭ universitet, 2001.

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45

Törmä, Hannu. Essays in the demand for energy in Finnish manufacturing. Jyväskylä, Finland: Jyväskylän yliopisto, 1987.

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46

Wittmann, Tobias. Agent-based models of energy investment decisions. Heidelberg: Physica-Verlag, 2008.

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47

Gidaspow, Dimitri. Computational techniques: The multiphase CFD approach to fluidization and green energy technologies. New York: Nova Science Publishers, 2009.

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48

Gidaspow, Dimitri. Computational techniques: The multiphase CFD approach to fluidization and green energy technologies. Hauppauge, N.Y: Nova Science Publishers, 2009.

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49

Westley, Glenn D. New directions in econometric modeling of energy demand: With applications to Latin America. Washington, D.C: Inter-American Development Bank, 1992.

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50

R, Ramanathan. Indian transport towards the new millennium: Performance, analysis, and policy. New Delhi: Cocept Pub. Co., 2004.

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