代表性论文专著
主要学术论文(一作/通讯):
[1] Mingzhang Pan, Wenshuai Que, Xiaoya Li*, Zongrun Wang, Yue Zeng, Xiaorong Zhou. A novel multi-generation energy harvesting system integrating photovoltaic and solid oxide fuel cell technologies. Journal of Cleaner Production, 2023, 425, 138770.
[2] Xiaoya Li, Angyin Wu, Jia Li, Zongkang Li, Donghoon Lee, Seok Woo Lee*. Anion Effects on Thermopower of Electrochemical Systems for Low-Grade Heat Harvesting. ACS Energy Letters, 2023, 8, 4061-4068. (副封面论文Supplementary Cover)
[3] Xiaoting Chen, Xiaoya Li*, Mingzhang Pan, Zongrun Wang. Superstructure-free synthesis and multi-objective optimization of supercritical CO2 cycles. Energy Conversion and Management, 2023, 284: 116966.
[4] Xiaoya Li, Angyin Wu, Caitian Gao, Zongkang Li, Seok Woo Lee*. Copper hexacyanoferrate as a long-life cathode for aqueous aluminum ion batteries. Materials Today Energy, 2023, 31: 101205.
[5] Xiaoya Li, Jia Li, Jeonghun Yun, Angyin Wu, Caitian Gao, Seok Woo Lee*. Continuous thermally regenerative electrochemical systems for directly converting low-grade heat to electricity. Nano Energy, 2022, 101: 107547.
[6] Xiaoya Li, Wen Su*, Weicong Xu, Baomin Dai, Jian Li, Liang Li. Editorial: CO2-based energy systems for cooling, heating, and power. Frontiers in Energy Research, 2022, 10: 993093.
[7] Xiaoting Chen, Mingzhang Pan, Xiaoya Li*, Ke Zhang. Multi-mode operation and thermo-economic analyses of combined cooling and power systems for recovering waste heat from data centers. Energy Conversion and Management, 2022, 266: 115820.
[8] Mingzhang Pan#, Xiaoting Chen#, Xiaoya Li*. Multi-objective analysis and optimization of cascade supercritical CO2 cycle and organic Rankine cycle systems for waste-to-energy power plant. Applied Thermal Engineering, 2022, 214: 118882.
[9] Ke Zhang#, Mingzhang Pan#, Xiaoya Li*. A novel efficient and economic integrated energy system based on solid oxide fuel cell with energy storage and carbon dioxide capture. Energy Conversion and Management, 2022, 252: 115084.
[10] Xiaoting Chen, Mingzhang Pan, Xiaoya Li*. Novel supercritical CO2/organic Rankine cycle systems for solid-waste incineration energy harvesting: Thermo-environmental analysis. International Journal of Green Energy, 2022, 19(7): 786-807.
[11] Mingzhang Pan, Ke Zhang, Xiaoya Li*. Optimization of supercritical carbon dioxide based combined cycles for solid oxide fuel cell-gas turbine system: Energy, exergy, environmental and economic analyses. Energy Conversion and Management, 2021, 248: 114744.
[12] Xiaoya Li, Bin Xu*, Hua Tian, Gequn Shu. Towards a novel holistic design of organic Rankine cycle (ORC) systems operating under heat source fluctuations and intermittency. Renewable and Sustainable Energy Reviews, 2021, 147: 111207.
[13] Xiaoya Li*, Steven Lecompte*, Jera Van Nieuwenhuyse, Kenny Couvreur, Hua Tian, Gequn Shu, Michel De Paepe, Christos N. Markides. Experimental investigation of an organic Rankine cycle with liquid-flooded expansion and R1233zd(E) as working fluid. Energy Conversion and Management, 2021, 234: 113894.
[14] Bin Xu, Xiaoya Li*. A Q-learning based transient power optimization method for organic Rankine cycle waste heat recovery system in heavy duty diesel engine applications. Applied Energy, 2021, 286: 116532.
[15] Xiaoya Li, Hua Tian*, Gequn Shu*, Mingru Zhao, Christos N. Markides, Chen Hu. Potential of carbon dioxide transcritical power cycle waste-heat recovery systems for heavy-duty truck engines. Applied Energy, 2019, 250: 1581-1599.
[16] Xiaoya Li, Gequn Shu*, Hua Tian*. Integrating off-design performance in designing CO2 power cycle systems for engine waste heat recovery. Energy Conversion and Management, 2019, 201: 112146.
[17] Xiaoya Li, Jian Song, Guopeng Yu, Youcai Liang, Hua Tian, Gequn Shu*, Christos N. Markides*. Organic Rankine cycle systems for engine waste-heat recovery: heat exchanger design in space-constrained applications. Energy Conversion and Management, 2019, 199: 111968.
[18] Xiaoya Li, Gequn Shu, Hua Tian*, Guangdai Huang, Peng Liu, Xuan Wang, Lingfeng Shi. Experimental comparison of dynamic responses of CO2 transcritical power cycle systems used for engine waste heat recovery. Energy Conversion and Management, 2018, 161: 254-265.
[19] Xiaoya Li, Hua Tian*, Gequn Shu*, Chen Hu, Rui Sun, Ligeng Li. Effects of external perturbations on dynamic performance of carbon dioxide transcritical power cycles for truck engine waste heat recovery. Energy, 2018, 163: 920-931.
[20] Xiaoya Li, Gequn Shu, Hua Tian*, Lingfeng Shi, Guangdai Huang, Tianyu Chen, Peng Liu. Preliminary tests on dynamic characteristics of a CO2 transcritical power cycle using an expansion valve in engine waste heat recovery. Energy, 2017, 140: 696-707.
其它学术论文:
[1] Jia Li, Xiaoya Li, Donghoon Lee, Jeonghun Yun, Angyin Wu, Cheng Jiang, Seok Woo Lee*. Engineering of Solvation Entropy by Poly(4-styrenesulfonic acid) Additive in an Aqueous Electrochemical System for Enhanced Low-Grade Heat Harvesting. Nano Letters, 2023, 23, 6164−6170.
[2] Zongkang Li, Jeonghun Yun, Xiaoya Li, Moobum Kim, Jia Li, Donghoon Lee, Angyin Wu, Seok Woo Lee*. Power-free contact lens for glucose sensing. Advanced Functional Materials, 2023, 2304647.
[3] Jeonghun Yun#, Zongkang Li#, Xinwen Miao, Xiaoya Li, Jae Yoon Lee, Wenting Zhao, Seok Woo Lee*. A tear-based battery charged by biofuel for smart contact lenses. Nano Energy, 2023, 110: 108344.
[4] Angyin Wu, Xiaoya Li, Donghoon Lee, Jia Li, Jeonghun Yun, Cheng Jiang, Zongkang Li, Seok Woo Lee*. Thermoresponsive ionic liquid for electrochemical low-grade heat harvesting. Nano Energy, 2023, 105: 108022.
[5] Jia Li#, Peihua Yang#,*, Xiaoya Li, Cheng Jiang, Jeonghun Yun, Wenqi Yan, Kang Liu, Hong Jin Fan*, Seok Woo Lee*. Ultrathin smart energy-storage devices for skin-interfaced wearable electronics. ACS Energy Letters, 2023, 8: 1-8. (封面论文Front Cover)
[6] Yezhou Liu, Caitian Gao, Jeonghun Yun, Yeongae Kim, Jia Li, Xiaoya Li, Seok Woo Lee*. Thermally assisted alkali/zinc ion hybrid battery for high roundtrip efficiency. ACS Applied Energy Materials, 2022, 5, 3: 2780-2785.
[7] 陈崇辉,欧少端,苏文*,李晓雅,蔺新星,周乃君.基于有机工质及CO2的跨临界动力循环研究进展[J/OL].洁净煤技术. https://kns.cnki.net/kcms/detail/11.3676.TD.20211119.1818.003.html
[8] Jian Song, Xiaoya Li, Kai Wang, Christos N. Markides*. Parametric optimisation of a combined supercritical CO2 (S-CO2) cycle and organic Rankine cycle (ORC) system for internal combustion engine (ICE) waste-heat recovery. Energy Conversion and Management, 2020, 218: 112999.
[9] Bin Xu, Dhruvang Rathod*, Adamu Yebi, Xueyu Zhang, Darui Zhang, Xiaoya Li, Zoran Filipi. Parametric study on reinforcement learning optimized energy management strategy for a hybrid electric vehicle. Applied Energy, 2020, 259: 114200.
[10] Rui Wang, Gequn Shu*, Xuan Wang*, Hua Tian, Xiaoya Li, Mingtao Wang, Jinwen Cai. Dynamic performance and control strategy of CO2-mixture transcritical power cycle for heavy-duty diesel engine waste-heat recovery. Energy Conversion and Management, 2020, 205: 112389.
[11] Gequn Shu, Rui Wang, Hua Tian*, Xuan Wang*, Xiaoya Li, Jinwen Cai, Zhiqiang Xu. Dynamic performance of the transcritical power cycle using CO2-based binary zeotropic mixtures for truck engine waste heat recovery. Energy, 2020, 194: 116825.
[12] Jian Song, Xiaoya Li, Xiaodong Ren, Hua Tian, Gequn Shu, Chunwei Gu, Christos N. Markides*. Thermodynamic and economic investigations of transcritical CO2-cycle systems with integrated radial-inflow turbine performance predictions. Applied Thermal Engineering, 2019, 165: 114604.
[13] Gequn Shu, Chen Hu, Hua Tian*, Xiaoya Li, Zhigang Yu, Mingtao Wang. Analysis and optimization of coupled thermal management systems used in vehicles. Energies, 2019, 12(7): 1265.
[14] Chinedu K. Unamba, Paul Sapin, Xiaoya Li, Jian Song, Kai Wang, Gequn Shu, Hua Tian, Christos N. Markides. Operational optimisation of a non-recuperative 1-kWe organic Rankine cycle engine prototype. Applied Sciences, 2019, 9(15): 3024.
[15] Xuan Wang, Gequn Shu*, Hua Tian*, Wei Feng, Peng Liu, Xiaoya Li. Effect factors of part-load performance for various organic rankine cycles using in engine waste heat recovery. Energy Conversion and Management, 2018, 174: 504-515.
[16] Xuan Wang, Gequn Shu, Hua Tian*, Peng Liu, Dongzhan Jing, Xiaoya Li. The effects of design parameters on the dynamic behavior of organic ranking cycle for the engine waste heat recovery. Energy, 2018, 147: 440-450.
[17] Gequn Shu, Xiaonan Ma, Hua Tian*, Haoqi Yang, Tianyu Chen, Xiaoya Li. Configuration optimization of the segmented modules in an exhaust-based thermoelectric generator for engine waste heat recovery. Energy, 2018, 160: 612-624.
[18] Lingfeng Shi, Gequn Shu, Hua Tian*, Guangdai Huang, Xiaoya Li, Tianyu Chen, Ligeng Li. Experimental investigation of a CO2-based transcritical Rankine cycle (CTRC) for exhaust gas recovery. Energy, 2018, 165(Part B): 1149-1159.
[19] Hua Tian*, Linqing Li, Gequn Shu*, Nanhua Yan, Xiaoya Li, Zhigang Yu. Composition shift in zeotropic mixture-based organic Rankine cycle system for harvesting engine waste heat. International Journal of Energy Research, 2018, 42(14): 4345-4359.
[20] Gequn Shu, Xiaoya Li, Hua Tian*, Lingfeng Shi, Xuan Wang, Guopeng Yu. Design condition and operating strategy analysis of CO2 transcritical waste heat recovery system for engine with variable operating conditions. Energy Conversion and Management, 2017, 142: 188-199. (导师一作,本人二作)
[21] Lingfeng Shi, Gequn Shu, Hua Tian*, Guangdai Huang, Tianyu Chen, Xiaoya Li, Daiqiang Li. Experimental comparison between four CO2-based transcritical Rankine cycle (CTRC) systems for engine waste heat recovery. Energy Conversion and Management, 2017, 150: 159-171.
[22] Xuan Wang, Gequn Shu*, Hua Tian*, Peng Liu, Dongzhan Jing, Xiaoya Li. Dynamic analysis of the dual-loop organic Rankine cycle for waste heat recovery of a natural gas engine. Energy Conversion and Management, 2017, 148: 724-736.
[23] Gequn Shu, Xuan Wang, Hua Tian*, Peng Liu, Dongzhan Jing, Xiaoya Li. Scan of working fluids based on dynamic response characters for organic Rankine cycle using for engine waste heat recovery. Energy, 2017, 133: 609-620.
[24] Xuan Wang, Gequn Shu*, Hua Tian, Peng Liu, Xiaoya Li, Dongzhan Jing. Engine working condition effects on the dynamic response of organic Rankine cycle as exhaust waste heat recovery system. Applied Thermal Engineering, 2017, 123: 670-681.
[25] Lingfeng Shi, Gequn Shu, Hua Tian*, Guangdai Huang, Liwen Chang, Tianyu Chen, Xiaoya Li. Ideal point design and operation of CO2-based transcritical Rankine cycle (CTRC) system based on high utilization of engine's waste heats. Energies, 2017, 10(11): 1692.
[26] Gequn Shu, Lingfeng Shi, Hua Tian*, Shuai Deng, Xiaoya Li, Liwen Chang. Configurations selection maps of CO2-based transcritical Rankine cycle (CTRC) for thermal energy management of engine waste heat. Applied Energy, 2017, 186: 423-435.
[27] Gequn Shu, Lingfeng Shi, Hua Tian*, Xiaoya Li, Guangdai Huang, Liwen Chang. An improved CO2-based transcritical Rankine cycle (CTRC) used for engine waste heat recovery. Applied Energy, 2016, 176: 171-182.
会议论文:
[1] Xiaoya Li, Seok Woo Lee*. Ion-specific effects on the electrochemical thermopower in nickel hexacyanoferrate. The 18th International Conference on Nano/Micro Engineered and Molecular Systems (IEEE NEMS 2023).
[2] Xiaoya Li, Jia Li, Jeonghun Yun, Angyin Wu, Caitian Gao, Seok Woo Lee*. A continuously operated electrochemical system driven by low-grade thermal energy. 2022 MRS Spring Meeting & Exhibit.
[3] Xiaoya Li, Jian Song, Michael Simpson, Kai Wang, Paul Sapin, Gequn Shu*, Hua Tian, Christos N. Markides*. Thermo-economic comparison of organic Rankine and CO2-cycle systems for low-to-medium temperature applications. 5th International Seminar on ORC Power Systems (ORC2019).
[4] Xiaoya Li, Gequn Shu, Hua Tian*, Chen Hu, Rui Sun, Ligeng Li. Effects of pump speed perturbation on dynamic responses of CO2 transcritical power cycle. 6th International Conference on Cryogenics and Refrigeration (ICCR2018).
[5] Xiaoya Li*, Gequn Shu, Hua Tian. Simulation and analysis of CO2 transcritical power cycle for mobile engine waste heat recovery. 5th Annual Engine ORC Consortium Workshop (EORCC2018).
[6] Xiaoya Li, Gequn Shu*, Hua Tian, Lingfeng Shi, Daiqiang Li, Yue Wang. Preliminary dynamic tests of a CO2 transcritical power cycle for waste heat recovery from diesel engine. Energy Procedia 2017; 142: 1238-1243. (ICAE2017, EI检索).
[7] Xiaoya Li, Gequn Shu, Hua Tian*, Lingfeng Shi, Xuan Wang. Dynamic modeling of CO2 transcritical power cycle for waste heat recovery of gasoline engines. Energy Procedia 2017; 105:1576-1581. (ICAE2016, EI检索).
[8] 李晓雅,舒歌群,田华. 内燃机余热回收CO2动力循环仿真分析. 中国工程热物理学会工程热力学与能源利用学术会议,2017,浙江宁波。
[9] Angyin Wu, Xiaoya Li, Zongkang Li, Seok Woo Lee*. Electrolyte design on thermally regenerative electrochemical cycle for low-grade thermal energy harvesting. E-MRS 2023 Spring Meeting.
[10] Jian Song*, Xiaoya Li, Kai Wang, Michael Simpson, Paul Sapin, Gequn Shu, Hua Tian, Christos N. Markides. Thermodynamic and economic comparison of organic Rankine cycle (ORC) and CO2-cycle systems in internal combustion engine (ICE) waste-heat recovery applications. 5th Sustainable Thermal Energy Management International Conference (SusTEM2019).
[11] Chinedu K. Unamba, Xiaoya Li, Jian Song, Gequn Shu, Hua Tian, Paul Sapin, Christos N. Markides. Off-design performance of a 1-kWe organic Rankine cycle (ORC) system. 32nd International Conference on Efficiency, Cost, Optimization, Simulation and Environmental Impact of Energy Systems (ECOS2019).
[12] Yue Wang, Hua Tian, Gequn Shu, Guopeng Yu, Xiaonan Ma, Xiaoya Li. Simulation and optimization of metal-foam tube banks for heat transfer enhancement of exhaust heat exchangers. Energy Procedia 2017; 142: 3863-3869. (ICAE2017, EI检索).
[13] Xuan Wang, Gequn Shu*, Hua Tian, Peng Liu, Xiaoya Li, Dongzhan Jing. Dynamic response performance comparison of Ranking cycles with different working fluids for waste heat recovery of internal combustion engines. Energy Procedia 2017; 105: 1600-1605. (ICAE2016, EI检索).
[14] Hua Tian, Tuanbing Li, Xiaoya Li, Gequn Shu*, Xingyu Liang. Simulation and experimental research on a shell-tube heat exchanger using in ORC system for exhaust waste heat recovery of engine. 28th International Conference on Efficiency, Cost, Optimization, Simulation and Environmental Impact of Energy Systems (ECOS2015, EI检索).