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[1] H. Jawad, M.Y. Jaber and R.Y. Nuwayhid. “Improving supply chain sustainability using exergy analysis”. European Journal of Operational Research, Vol. 269(1), pp. 258-271, 2018.10.1016/j.ejor.2017.10.007Search in Google Scholar

[2] S. Yang and Y. Qian. “The inclusion of economic and environmental factors in the ecological cumulative exergy consumption analysis of industrial processes”. Journal of Cleaner Production, vol. 108, pp. 1019-1027, 2015.Search in Google Scholar

[3] A. Muchtar. “Preliminary Analysis of Single-Flash Geothermal Power Plant by Using Exergy Method. Case Study: Ulubelu Geothermal Power Plant-Indonesia”. International Journal of Renewable Energy Research (IJRER), vol. 8(3), pp. 1685-1696, 2018.Search in Google Scholar

[4] A.A. Ojo, O. Awogbemi, and A.O. Ojo. “An Overview of the Exploitation of Renewable Energy Resources in Nigeria, South Africa, and the United Kingdom”. International Journal of Renewable Energy Research (IJRER), vol. 10(2), pp. 843-861, 2020.Search in Google Scholar

[5] S. Nyquist. “Energy 2050: Insights from the ground up”. McKinsey & Company, 2016.Search in Google Scholar

[6] F. Freme. “US Coal supply and demand: 2009 review”. Electric Power, Vol. 922(937.8), pp. 946-8, 2009.Search in Google Scholar

[7] US Energy Information Administration (Ed.). (2011). Annual Energy Outlook 2011: With Projections to 2035. Government Printing Office.Search in Google Scholar

[8] J. Phillips, (2008). Modeling the US Coal Supply Chain. Colorado School of Mines. Retrieved from http://dahl.mines.edu/coalphillips.pdf,(last accessed in June 2012).Search in Google Scholar

[9] S. Mehmood, B.V. Reddy and M.A. Rosen. “Exergy analysis of a biomass co-firing based pulverized coal power generation system”. International journal of green energy, vol. 12(5), pp. 461-478, 2015.10.1080/15435075.2013.840834Search in Google Scholar

[10] T. Aniokete, M. Ozonoh, and M.O. Daramola. “Synthesis of Pure and High Surface Area Sodalite Catalyst from Waste Industrial Brine and Coal Fly Ash for Conversion of Waste Cooking Oil (WCO) to Biodiesel”. International Journal of Renewable Energy Research (IJRER), vol. 9(4), pp. 1924-1937, 2019.Search in Google Scholar

[11] L. Man-Zhi, Z. Mei-Hua, L. Xue-Qing, and Y. Ji-Xian. “The research on modeling of coal supply chain based on objectoriented Petri net and optimization”. Procedia Earth and Planetary Science, vol. 1(1), pp. 1608-1616, 2009.Search in Google Scholar

[12] A. Thomas, J. Venkateswaran, G. Singh and M. Krishna-moorthy. “A resource constrained scheduling problem with multiple independent producers and a single linking constraint: A coal supply chain example”. European Journal of Operational Research, vol. 236(3), pp. 946-956, 2014.10.1016/j.ejor.2013.10.006Search in Google Scholar

[13] L. Pan, P. Liu, L. Ma and Z. Li. “A supply chain based assessment of water issues in the coal industry in China”. Energy Policy, vol. 48, pp. 93-102, 2012.10.1016/j.enpol.2012.03.063Search in Google Scholar

[14] A. Thomas, J. Venkateswaran, G. Singh and M. Krishna-moorthy. “A resource constrained scheduling problem with multiple independent producers and a single linking constraint: A coal supply chain example”. European Journal of Operational Research, vol. 236(3), pp. 946-956, 2014.10.1016/j.ejor.2013.10.006Search in Google Scholar

[15] H. Jawad, M.Y. Jaber, M. Bonney and M.A. Rosen “Deriving an exergetic economic production quantity model for better sustainability”. Appl. Math. Model. vol. 40, pp. 6026-6039, 2016.Search in Google Scholar

[16] A. Baral, B.R. Bakshi, and R.L. Smith. “Assessing resource intensity and renewability of cellulosic ethanol technologies using Eco-LCA”. Environmental science & technology, vol. 46(4), pp. 2436-2444, 2012.Search in Google Scholar

[17] I. Manisalidis, E. Stavropoulou, A. Stavropoulos and E. Bezirtzoglou. “Environmental and health impacts of air pollution: A review”. Frontiers in public health, vol. 8, 2020.10.3389/fpubh.2020.00014704417832154200Search in Google Scholar

[18] International Energy Agency, Data and Statics: https://www.iea.org/data-and-statistics. July. 01, 2020 [July. 01, 2020].Search in Google Scholar

[19] M. Mann and P. Spath. “A life cycle assessment of biomass cofiring in a coal-fired power plant”. Clean Products and Processes, vol. 3(2), pp. 81-91, 2001.10.1007/s100980100109Search in Google Scholar

[20] J. Bijańska and K. Wodarski. “Model of process management system in enterprises of the hard coal mining industry”. Management Systems in Production Engineering, vol. 28(2), pp. 112-120, 2020.10.2478/mspe-2020-0017Search in Google Scholar

[21] C. Wang, D. Mu. “An LCA study of an electricity coal supply chain”. Journal of Industrial Engineering and Management, vol. 7(1), pp. 311-335, 2014.10.3926/jiem.1053Search in Google Scholar

[22] S. Bhagwat, X. Zhang and H. Fan. “Estimation of coal cleaning costs: a spreadsheet based interactive software for use in estimation of economically recoverable cost reserves”. US Geological Survey Professional. pp. 1-13, 2009.Search in Google Scholar

[23] M.E. Bösch, S. Hellweg, M.A. Huijbregts and R. Frischknecht. “Applying cumulative Exergy demand (CExD) indicators to the ecoinvent database”. The International Journal of Life Cycle Assessment, vol. 12(3), pp. 181-190, 2007.10.1065/lca2006.11.282Search in Google Scholar

[24] A. Vadiee and M. Yaghoubi, “Exergy Analysis of the Solar Blind System integrated with a Commercial Solar Greenhouse,” International Journal of Renewable Energy Research, vol. 6, no. 3, 2016.Search in Google Scholar

[25] J. Szargut. Exergy method: technical and ecological applications. WIT press, vol. 18, 2005.Search in Google Scholar

[26] R. Leutz, Nonimaging Fresnel Lenses: Design and Performance of Solar Concentrators, Springer Berlin Heidelberg, 2001.10.1007/978-3-540-45290-4Search in Google Scholar

[27] A.J. Mahmood. “An Experimental Study on Energy and Exergy for Glazed and Unglazed Solar System with Perforated Absorber Plate and Wire Mesh Layers”. International Journal of Renewable Energy Research (IJRER), vol. 9(4), pp. 1901-1911, 2019.Search in Google Scholar

[28] A. Bejan. Entropy Generation Minimization: The Method of Thermodynamic Optimization of Finite-Size Systems and Finite-Time Processes, CRC Press, 1995.Search in Google Scholar

[29] T. Loukil, J. Teghem, and D. Tuyttens. “Solving multi-objective production scheduling problems using metaheuristics”. European journal of operational research, vol. 161(1), pp. 42-61, 2005.10.1016/j.ejor.2003.08.029Search in Google Scholar

[30] M. Shokouhifar, A. Jalali. “Simplified symbolic transfer function factorization using combined artificial bee colony and simulated annealing”. Applied Soft Computing, vol. 55, pp. 436-451, 2017.10.1016/j.asoc.2017.02.029Search in Google Scholar

[31] Z.M. Zahedi, R. Akbari, M. Shokouhifar, F. Safaei and A. Jalali. “Swarm intelligence based fuzzy routing protocol for clustered wireless sensor networks”. Expert Systems with Applications, vol. 55, pp. 313-328, 2016.10.1016/j.eswa.2016.02.016Search in Google Scholar

[32] K. Sorensen. “Metaheuristics-the metaphor exposed”. International Transactions in Operational Research, vol. 22(1), pp. 3-18, 2015.10.1111/itor.12001Search in Google Scholar

[33] P. Festa. “A brief introduction to exact, approximation, and heuristic algorithms for solving hard combinatorial optimization problems”. In 2014 16th International Conference on Transparent Optical Networks (ICTON) pp. 1-20, 2014.10.1109/ICTON.2014.6876285Search in Google Scholar

[34] V. Haleh and F. Imam Ibrahim. “Feature Selection Methods: Genetic Algorithms vs. Greedy-like Search”. In Proc. Int. Conf. Fuzzy Intell. Control Syst pp. 1-10, 2005.Search in Google Scholar

[35] F. Fanian, V.K. Bardsiri and M. Shokouhifar. “A new task scheduling algorithm using firefly and simulated annealing algorithms in cloud computing”. International Journal of Advanced Computer Science and Applications, vol. 9 (2), pp. 195-202, 2018.10.14569/IJACSA.2018.090228Search in Google Scholar

[36] A. Saghaeeian, and R. Ramezanian. “An efficient hybrid genetic algorithm for multi-product competitive supply chain network design with price-dependent demand”. Applied Soft Computing, vol. 71, pp. 872-893, 2018.10.1016/j.asoc.2018.07.028Search in Google Scholar

[37] Y.B. Woo and B.S. Kim. “A genetic algorithm-based metaheuristic for hydrogen supply chain network problem with two transportation modes and replenishment cycles”. Computers & Industrial Engineering, vol. 127, pp. 981-997, 2019.10.1016/j.cie.2018.11.027Search in Google Scholar

[38] A. Rostami, M. M. Paydar and E. Asadi-Gangraj. “A Hybrid Genetic Algorithm for Integrating Virtual Cellular Manufacturing with Supply Chain Management Considering New Product Development”. Computers & Industrial Engineering, 2020.10.1016/j.cie.2020.106565Search in Google Scholar

[39] H. Gholizadeh and H. Fazlollahtabar. “Robust Optimization and modified genetic algorithm for a closed loop green supply chain under uncertainty: Case study in Melting Industry”. Computers & Industrial Engineering, 2020.10.1016/j.cie.2020.106653Search in Google Scholar

[40] Iran Ministry of Industry, Mine and Trade: https://en.mimt.gov.ir. July. 10, 2020 [July. 10, 2020].Search in Google Scholar

[41] Iranian Mines & Mining Industries Development & Renovation Organization: http://imidro.gov.ir/general_content/2634-coal.html, July. 10, 2020 [July. 10, 2020].Search in Google Scholar

[42] G. Luo, J. Zhang, Y. Rao, X. Zhu and Y. Guo. “Coal Supply Chains: A Whole-Process-Based Measurement of Carbon Emissions in a Mining City of China”. Energies, vol. 10 (11), pp. 1855, Nov. 2017; https://doi.org/10.3390/en10111855.10.3390/en10111855Search in Google Scholar

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