Trough composting is a highly efficient technology for treating livestock manure and converting it into valuable resources. The flow field in the aeration pipes and the flow field within the compost pile are critical factors affecting trough composting. Due to the large size of compost piles and the harsh internal environment, it is difficult to quantify the flow field distribution within the pipes and the compost piles. This study established a three-dimensional fluid model of the bottom pipeline and the compost pile within a 90 m³ trough composting system. The perforation spacing of the bottom pipe was optimized by gradually reducing the spaces between openings. Effect of optimized perforation spacing on flow velocity within the pipe and the compost pile were optimized. The results indicated that a gradually changed perforation structure can enhance both the magnitude and uniformity of flow velocity distribution within the pipeline and the compost pile. Field trials of trough composting at an engineering scale revealed that the average relative error between actual measured wind speeds over the compost pile and simulated values remained within 10%. This study provides a theoretical basis and data support for the engineering construction of aeration systems in trough composting.
Xu et al. (Thu,) studied this question.
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