Chadi Nohra , Rassol Hamed Rasheed , Ahmed Mohsin Alsayah , Mohammed J. Alshukri , Jalal Faraj , Samer Ali , Mahmoud Khaled
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The suggested system presents a new architecture that makes simultaneous use of condenser air and diesel exhaust, two easily accessible but infrequently coupled thermal sources and sinks. Compared to conventional setups, this method greatly increases TEG efficiency by taking advantage of high temperature differentials and passive sink flow. To mimic the behavior of the system under various operating situations, we developed a comprehensive thermal model. The effect of TEG plate dimensions, duct heights, and the TEG thickness-to-thermal-conductivity ratio (t/k) on temperature gradients and power output were investigated parametrically. The findings indicate that while larger cooling loads from the HVAC system result in worse performance, increasing the generator load and t/k ratio increases power output. With duct height = 0.04 m and a 5 m × 0.2 m TEG plate, the optimized arrangement produced a peak output of 4745 W, which translates to a 2.37 % increase in fuel efficiency. This work provides a scalable model for sustainable energy integration in industrial applications and validates the potential of hybrid TEG systems for efficient waste heat recovery.</div></div>","PeriodicalId":18283,"journal":{"name":"Materials Science for Energy Technologies","volume":"8 ","pages":"Pages 178-187"},"PeriodicalIF":0.0000,"publicationDate":"2025-01-01","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Hybrid thermoelectric generator system for enhanced waste heat recovery from diesel generators using HVAC condenser airflow\",\"authors\":\"Chadi Nohra , Rassol Hamed Rasheed , Ahmed Mohsin Alsayah , Mohammed J. 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引用次数: 0
摘要
由于对能源效率的需求日益增加,人们对收集柴油发电机余热的兴趣增加了,这是一种大量但未充分利用的能源。通过将热梯度转化为电能,热电发电机(teg)提供了一种清洁的替代方案,可以提高燃油效率并降低污染物。为了改进热电发电,本工作拟构建并评估一种混合系统,该系统将暖通空调(HVAC)冷凝器的气流与柴油发电机废气的余热结合起来。建议的系统提出了一种新的架构,可以同时使用冷凝器空气和柴油废气,这两个容易接近但不经常耦合的热源和水槽。与传统装置相比,该方法通过利用高温差和被动汇流,大大提高了TEG效率。为了模拟系统在各种操作情况下的行为,我们开发了一个全面的热模型。研究了TEG板尺寸、风管高度和TEG厚度/导热系数(t/k)对温度梯度和输出功率的影响。研究结果表明,虽然HVAC系统的较大冷负荷会导致性能变差,但增加发电机负荷和t/k比会增加功率输出。在风道高度为0.04 m、TEG板为5 m × 0.2 m的情况下,优化后的布置产生的峰值输出功率为4745 W,燃油效率提高了2.37%。这项工作为工业应用中的可持续能源集成提供了一个可扩展的模型,并验证了混合TEG系统在高效废热回收方面的潜力。
Hybrid thermoelectric generator system for enhanced waste heat recovery from diesel generators using HVAC condenser airflow
Interest in collecting waste heat from diesel generators, a substantial but underutilized energy source, has increased due to the growing demand for energy efficiency. By transforming heat gradients into electrical power, thermoelectric generators (TEGs) offer a clean alternative that improves fuel efficiency and lowers pollutants. In order to improve thermoelectric power generation, this work intends to construct and assess a hybrid system that combines Heating, Ventilating, and Air Conditioning (HVAC) condenser airflow with waste heat from diesel generator exhaust gases. The suggested system presents a new architecture that makes simultaneous use of condenser air and diesel exhaust, two easily accessible but infrequently coupled thermal sources and sinks. Compared to conventional setups, this method greatly increases TEG efficiency by taking advantage of high temperature differentials and passive sink flow. To mimic the behavior of the system under various operating situations, we developed a comprehensive thermal model. The effect of TEG plate dimensions, duct heights, and the TEG thickness-to-thermal-conductivity ratio (t/k) on temperature gradients and power output were investigated parametrically. The findings indicate that while larger cooling loads from the HVAC system result in worse performance, increasing the generator load and t/k ratio increases power output. With duct height = 0.04 m and a 5 m × 0.2 m TEG plate, the optimized arrangement produced a peak output of 4745 W, which translates to a 2.37 % increase in fuel efficiency. This work provides a scalable model for sustainable energy integration in industrial applications and validates the potential of hybrid TEG systems for efficient waste heat recovery.