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Energy recovery from commercial-scale composting as a novel waste management strategy

机译:从商业规模堆肥中回收能量作为一种新颖的废物管理策略

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This study reports operational information from a commercial-scale Aerated Static Pile (ASP) composting system with energy recovery, one of the few currently in operation globally. A description of this innovative system is followed by operational data on energy capture efficiency for 17 experimental trials with variable compost vapor and heat sink temperatures. Energy capture was directly and predictably related to the differential between compost vapor and heat sink temperatures, with energy capture ranging from 17,700 to 32,940 kJ/h with a compost vapor temperature range of 51-66 degrees C. A 5-day temperature lag time existed between compost pile formation, and when compost vapor temperatures were sufficiently high for energy recovery = 50 degrees C). The energy recovery system also exhibited a time lag between the initiation of aeration and when the vapor reaching the heat exchanger reached pile vapor temperature. Consequently, future ASP composting sites employing an energy recovery system may have to alter aeration system design and schedules to compensate for any type of heating-up phase that reduces energy recovery.
机译:这项研究报告了来自商业规模的带能量回收的充气式静态堆肥(ASP)堆肥系统的运行信息,这是目前全球范围内运行的少数几个系统之一。对该创新系统进行说明后,将进行有关17种具有不同堆肥蒸气和散热器温度的实验试验的能量捕获效率的运行数据。能量捕获与堆肥蒸汽和散热器温度之间的差异直接且可预测地相关,能量捕获的范围为17,700至32,940 kJ / h,堆肥蒸汽温度范围为51-66摄氏度。存在5天的温度滞后时间堆肥形成之间,以及堆肥蒸汽温度足够高以至于能量回收> = 50摄氏度时)。能量回收系统还显示了从曝气开始到到达热交换器的蒸汽达到堆蒸汽温度之间的时间间隔。因此,未来采用能量回收系统的ASP堆肥场可能必须更改曝气系统的设计和时间表,以补偿任何减少能量回收的加热阶段。

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