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A hybrid system using direct contact membrane distillation for water production to harvest waste heat from the proton exchange membrane fuel cell. (2018). Lai, Xiaotian ; Liu, Wei ; Long, Rui.
In: Energy.
RePEc:eee:energy:v:147:y:2018:i:c:p:578-586.

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Cited: 15

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  1. Performance evaluation for a high temperature alkaline fuel cell integrated with thermal vapor compression desalination. (2025). Al-Sarhan, Tala N ; Al-Nimr, Mohd A ; Dawahdeh, Ahmad I.
    In: Applied Energy.
    RePEc:eee:appene:v:377:y:2025:i:pd:s0306261924020749.

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  2. Multi-criteria optimization of a combined power and freshwater system using modified NSGA-II and AHP-entropy-topsis. (2024). Yang, Jinwen ; Ge, YI ; Han, Jitian ; Zhu, Wanchao ; Liang, Wenxing.
    In: Renewable Energy.
    RePEc:eee:renene:v:227:y:2024:i:c:s0960148124005573.

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  4. Precise modeling of PEM fuel cell using a novel Enhanced Transient Search Optimization algorithm. (2022). Jurado, Francisco ; Tostado-Veliz, Marcos ; Kamel, Salah ; Alghuwainem, Saad ; Qais, Mohammed H ; Turky, Rania A ; Hasanien, Hany M.
    In: Energy.
    RePEc:eee:energy:v:247:y:2022:i:c:s0360544222004339.

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  5. Elastocaloric cooler for waste heat recovery from proton exchange membrane fuel cells. (2022). Zhang, Zhufeng ; Li, Jiarui ; Lai, Cong ; Yuan, Jinliang ; Miao, HE ; Zhao, Jiapei ; Wang, FU ; Hou, Shujin.
    In: Energy.
    RePEc:eee:energy:v:238:y:2022:i:pa:s0360544221020375.

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  6. PEMFC Poly-Generation Systems: Developments, Merits, and Challenges. (2021). Robinson, John ; Arjunan, Arun ; Baroutaji, Ahmad ; Olabi, Abdul Ghani ; Abdelkareem, Mohammad Ali ; Wilberforce, Tabbi.
    In: Sustainability.
    RePEc:gam:jsusta:v:13:y:2021:i:21:p:11696-:d:662604.

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  7. Thermal energy recovery of molten carbonate fuel cells by thermally regenerative electrochemical cycles. (2021). Sayyaadi, Hoseyn ; Abdollahipour, Armin.
    In: Energy.
    RePEc:eee:energy:v:227:y:2021:i:c:s0360544221007386.

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  8. An alkaline fuel cell/direct contact membrane distillation hybrid system for cogenerating electricity and freshwater. (2021). Li, Yangyang ; Hu, Ziyang ; Zhang, Houcheng ; Zhao, Qin.
    In: Energy.
    RePEc:eee:energy:v:225:y:2021:i:c:s0360544221005521.

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  9. Comprehensive review of integrating fuel cells to other energy systems for enhanced performance and enabling polygeneration. (2020). Yao, Qinghe ; Kase, Kiwamu ; Zhang, Yongchao ; Yin, Shunan ; Shen, Yongting ; Katsushi, Fujii ; Kwan, Trevor Hocksun.
    In: Renewable and Sustainable Energy Reviews.
    RePEc:eee:rensus:v:128:y:2020:i:c:s1364032120301891.

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  10. Waste heat-driven desalination systems: Perspective. (2020). Askalany, Ahmed A ; Hussien, Malek Kamal ; Elsaid, Khaled ; Olabi, A G ; Abdelkareem, Mohammad Ali.
    In: Energy.
    RePEc:eee:energy:v:209:y:2020:i:c:s0360544220314808.

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  11. A solar membrane-based wastewater treatment system for high-quality water production. (2020). Azhar, Muhammad Rizwan ; Khiadani, Mehdi ; Shafieian, Abdellah.
    In: Energy.
    RePEc:eee:energy:v:206:y:2020:i:c:s0360544220313402.

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  12. Performance analyses of a combined system consisting of high-temperature polymer electrolyte membrane fuel cells and thermally regenerative electrochemical cycles. (2020). Zhang, Houcheng ; Guo, Xinru.
    In: Energy.
    RePEc:eee:energy:v:193:y:2020:i:c:s0360544219324156.

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  13. Energy analysis of a proton exchange membrane fuel cell (PEMFC) with an open-ended anode using agglomerate model: A CFD study. (2019). Toghraie, Davood ; Arasteh, Hossein ; Afrouzi, Hamid Hassanzadeh ; Hosseini, Mirollah.
    In: Energy.
    RePEc:eee:energy:v:188:y:2019:i:c:s0360544219317852.

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  14. Stirling engine powered reverse osmosis for brackish water desalination to utilize moderate temperature heat. (2018). Lai, Xiaotian ; Liu, Wei ; Long, Rui.
    In: Energy.
    RePEc:eee:energy:v:165:y:2018:i:pa:p:916-930.

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  15. Comparative performance evaluation of self-humidifying PEMFCs with short-side-chain and long-side-chain membranes under various operating conditions. (2018). Cha, Dowon ; Kim, Yong Chan ; Yang, Wonseok ; Jeon, Seung Won.
    In: Energy.
    RePEc:eee:energy:v:150:y:2018:i:c:p:320-328.

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  1. A review on flow field design for proton exchange membrane fuel cells: Challenges to increase the active area for MW applications. (2024). Gazdzicki, P ; Ribeirinha, P ; Knori, T ; Rocha, C.
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  2. Multifunctional bypass valve for water management and surge protection in a proton-exchange membrane fuel cell supply-air system. (2023). Yu, Sangseok ; Kim, Younghyeon ; Nguyen, Huu Linh ; le Tri, Dat Truong ; Vu, Hoang Nghia.
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  3. Pre-diagnosis of flooding and drying in proton exchange membrane fuel cells by bagging ensemble deep learning models using long short-term memory and convolutional neural networks. (2023). Kwon, Obeen ; Choi, Heesoo ; Kim, Jae Yeon ; Cha, Suk Won ; Park, Taehyun ; Shim, Kyuhwan ; Lee, Hee Yun ; Ryu, Sangbong ; Jang, Yujae.
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  4. A Review on the Numerical Studies on the Performance of Proton Exchange Membrane Fuel Cell (PEMFC) Flow Channel Designs for Automotive Applications. (2022). Sathia, Denis Ashok ; Ravi, Dineshkumar ; Fly, Ashley ; Palaniswamy, Karthikeyan ; Elangovan, Devaraj ; Chakraborty, Suprava ; Raj, Thundil Karuppa.
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  5. Literature Review of Energy Management in Combined Heat and Power Systems Based on High-Temperature Proton Exchange Membrane Fuel Cells for Residential Comfort Applications. (2022). Batlle, Carles ; Costa-Castello, Ramon ; Sanz, Victor.
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  6. Performance improvement of proton exchange membrane fuel cell stack by dual-path hydrogen supply. (2022). Cheng, Zongyi ; Jian, Qifei ; Huang, BI ; Luo, Lizhong ; Bai, Xingying.
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  7. Investigation of proton exchange membrane fuel cell stack with inversely phased wavy flow field design. (2022). Gao, Yan ; Liu, Meiru ; Song, Yating ; Yin, Cong ; Tang, Hao ; Qiao, Zemin.
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  8. Novel Use of Green Hydrogen Fuel Cell-Based Combined Heat and Power Systems to Reduce Primary Energy Intake and Greenhouse Emissions in the Building Sector. (2021). Domenech, Luis ; Garcia, Victor ; Renau, Jordi ; Barreras, Felix ; Lozano, Antonio ; Sanchez, Fernando ; Gimenez, Alberto ; Real, Antonio ; Verdejo, Pedro.
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  9. High-Efficiency Combined Heat and Power through a High-Temperature Polymer Electrolyte Membrane Fuel Cell and Gas Turbine Hybrid System. (2021). Ubertini, Stefano ; Facci, Andrea Luigi ; Loreti, Gabriele.
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  30. Power optimization of a combined power system consisting of a high-temperature polymer electrolyte fuel cell and an organic Rankine cycle system. (2016). Lee, Won-Yong ; Kim, Seung-Gon ; Sohn, Young-Jun .
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    RePEc:eee:energy:v:85:y:2015:i:c:p:458-467.

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  33. Modeling and optimization of a heat-pump-assisted high temperature proton exchange membrane fuel cell micro-combined-heat-and-power system for residential applications. (2015). Arsalis, Alexandros ; Kar, Soren K. ; Nielsen, Mads P..
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  34. Effect of different fuel options on performance of high-temperature PEMFC (proton exchange membrane fuel cell) systems. (2014). Arpornwichanop, Amornchai ; Patcharavorachot, Yaneeporn ; Authayanun, Suthida ; Saebea, Dang .
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  35. Micro combined heat and power (MCHP) technologies and applications. (2013). Ghobadian, Barat ; Galogah, Reza Janzadeh ; Maghanki, Maryam Mohammadi ; Najafi, Gholamhassan.
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  36. A conceptual model of a high-efficiency, stand-alone power unit based on a fuel cell stack with an integrated auto-thermal ethanol reformer. (2013). Jayanti, S. ; Jaggi, Vikas .
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    RePEc:eee:appene:v:110:y:2013:i:c:p:295-303.

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  37. Comparison of high-temperature and low-temperature polymer electrolyte membrane fuel cell systems with glycerol reforming process for stationary applications. (2013). Arpornwichanop, Amornchai ; Authayanun, Suthida ; Mamlouk, Mohamed ; Scott, Keith .
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    RePEc:eee:appene:v:109:y:2013:i:c:p:192-201.

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  38. Modelling of start-up time for high temperature polymer electrolyte fuel cells. (2011). Singdeo, Debanand ; Dey, Tapobrata ; Ghosh, Prakash C..
    In: Energy.
    RePEc:eee:energy:v:36:y:2011:i:10:p:6081-6089.

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