Assessing thermal conductivity of composting reactor with attention on varying thermal resistance between compost and the inner surface

Waste Manag. 2016 Dec:58:144-151. doi: 10.1016/j.wasman.2016.09.018. Epub 2016 Sep 19.

Abstract

Dynamic estimation of heat transfer through composting reactor wall was crucial for insulating design and maintaining a sanitary temperature. A model, incorporating conductive, convective and radiative heat transfer mechanisms, was developed in this paper to provide thermal resistance calculations for composting reactor wall. The mechanism of thermal transfer from compost to inner surface of structural layer, as a first step of heat loss, was important for improving insulation performance, which was divided into conduction and convection and discussed specifically in this study. It was found decreasing conductive resistance was responsible for the drop of insulation between compost and reactor wall. Increasing compost porosity or manufacturing a curved surface, decreasing the contact area of compost and the reactor wall, might improve the insulation performance. Upon modeling of heat transfers from compost to ambient environment, the study yielded a condensed and simplified model that could be used to conduct thermal resistance analysis for composting reactor. With theoretical derivations and a case application, the model was applicable for both dynamic estimation and typical composting scenario.

Keywords: Heat transfer; Modeling; Reactor composting; Thermal resistance.

MeSH terms

  • Equipment Design
  • Hot Temperature
  • Models, Theoretical
  • Soil / chemistry*
  • Thermal Conductivity*
  • Waste Management / instrumentation*
  • Waste Management / methods

Substances

  • Soil