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燃机烟气与燃煤锅炉耦合燃烧技术
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作者 赖金平 陈辉 +4 位作者 张文振 刘欣 李朝兵 何陆灿 葛铭 《洁净煤技术》 CAS CSCD 北大核心 2024年第7期120-126,共7页
为有效利用燃机排烟热量,探索燃煤锅炉与燃机烟气耦合燃烧可行性。根据燃烧学基本理论,分析燃机烟气混入对燃煤锅炉的燃烧理论空气量、烟气量、燃烧器喷口速度等参数影响,提出燃机烟气与燃煤锅炉耦合燃烧技术方案。运用全尺寸数值模拟技... 为有效利用燃机排烟热量,探索燃煤锅炉与燃机烟气耦合燃烧可行性。根据燃烧学基本理论,分析燃机烟气混入对燃煤锅炉的燃烧理论空气量、烟气量、燃烧器喷口速度等参数影响,提出燃机烟气与燃煤锅炉耦合燃烧技术方案。运用全尺寸数值模拟技术,分析烟气耦合对燃煤锅炉燃烧特性影响。数值模拟结果表明,烟气耦合后燃煤锅炉火焰切圆直径变大;煤粉气流初始温度增加,挥发分析出提前,煤粉着火提前;燃煤锅炉烟气量增大,锅炉炉膛温度降低,水冷壁吸热量下降;炉膛出口NOx排放质量浓度由222.1 mg/m^(3)升至229.5 mg/m^(3),焦炭燃尽率由98.91%降至96.9%。结合数值模拟结果,分析烟气耦合后发电机组能耗。虽然机组发电煤耗较耦合前升高2.0 g/kWh,但燃机烟气的余热利用效率由约80%提升至约93%,折算机组煤耗降低10.98 g/kWh,全厂能耗降低8.98 g/kWh,表明燃机烟气与燃煤锅炉耦合燃烧技术方案可行。燃机烟气替代了大部分燃煤锅炉二次风量,通过燃煤锅炉空预器的风量大幅降低,造成空预器换热量大幅下降,排烟温度大幅升高,需在空预器后增加余热利用装置。 展开更多
关键词 燃机烟气 燃煤锅炉 耦合 燃烧特性 余热效率
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Performance and Optimization for a Ground-Coupled Liquid Loop Heat Recovery Ventilation System 被引量:1
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作者 周亚素 Per FAHLEN Torbjrn LINDHOLM 《Journal of Donghua University(English Edition)》 EI CAS 2007年第6期749-755,共7页
Ground-coupled heat pumps(GCHP)are commonly used in residential heating system.To mitigate the boreholes temperature dropping with operating time,a new exhaust-air recharging system is developed.The new recharging sys... Ground-coupled heat pumps(GCHP)are commonly used in residential heating system.To mitigate the boreholes temperature dropping with operating time,a new exhaust-air recharging system is developed.The new recharging system can be used in three operational modes.In this paper,a ground-coupled heat recovery ventilation(HRV)model is discussed.A thermal model is set up to find the optimal brine flow rate and heat transfer allocation ratio between exhaust and supply coils for maximum heat recovery efficiency.Contrary to the conventional liquid-loop HRV systems,the brine temperature entering the exhaust coil never goes blow zero(0℃),and hence defrosting is needless in the ground-coupled HRV system.This can make the ground-coupled HRV system over 20% more efficient than a conventional HRV system at low outdoor temperatures. 展开更多
关键词 a ground-coupled HRV system thermal model heat recovery efficiency coils allocation ratio brine flow rate
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Efficiency analysis of trilateral-cycle power systems for waste heat recovery-to-power generation
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作者 Habeeb A.AJIMOTOKAN 《Journal of Central South University》 SCIE EI CAS CSCD 2016年第12期3160-3170,共11页
Numerous innovative heat recovery-to-power technologies have been resourcefully and technologically exploited to bridge the growing gap between energy needs and its sustainable and affordable supply.Among them,the pro... Numerous innovative heat recovery-to-power technologies have been resourcefully and technologically exploited to bridge the growing gap between energy needs and its sustainable and affordable supply.Among them,the proposed trilateral-cycle(TLC) power system exhibits high thermodynamic efficiency during heat recovery-to-power from low-to-medium temperature heat sources.The TLCs are proposed and analysed using n-pentane as working fluid for waste heat recovery-to-power generation from low-grade heat source to evaluate the thermodynamic efficiency of the cycles.Four different single stage TLC configurations with distinct working principles are modelled thermodynamically using engineering equation solver.Based on the thermodynamic framework,thermodynamic performance simulation and efficiency analysis of the cycles as well as the exergy efficiencies of the heating and condensing processes are carried out and compared in their efficiency.The results show that the simple TLC,recuperated TLC,reheat TLC and regenerative TLC operating at subcritical conditions with cycle high temperature of 473 K can attain thermal efficiencies of 21.97%,23.91%,22.07% and 22.9%,respectively.The recuperated TLC attains the highest thermodynamic efficiency at the cycle high temperature because of its lowest exergy destruction rates in the heat exchanger and condenser.The efficiency analysis carried out would assist in guiding thermodynamic process development and thermal integration of the proposed cycles. 展开更多
关键词 trilateral cycle waste heat recovery-to-power generation thermodynamic performance simulation efficiency analysis process development and integration
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