A novel method for predicting the thermal stabilization temperature of organic Rankine cycle system working fluids based on transition state theory
Author:
Funder
National Natural Science Foundation of China
Publisher
Elsevier BV
Reference55 articles.
1. Conventional and advanced exergy investigation of a double flash cycle integrated by absorption cooling, ORC, and TEG power system driven by geothermal energy;Mohammadi;Energy,2023
2. Off-design performance evaluation of thermally integrated pumped thermal electricity storage systems with solar energy;Wang;Energy Convers Manag,2024
3. Energy and exergy analyses of a biomass trigeneration system using an organic Rankine cycle;Al-Sulaiman;Energy,2012
4. Opportunities and strategies for multigrade waste heat utilization in various industries: a recent review;Su;Energy Convers Manag,2021
5. Thermal stability and pyrolysis mechanism of working fluids for organic Rankine cycle: a review;Huo;Int J Energy Res,2022
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