底燃式下送风(BLDD)清洁煤炉的建模

M. Ibraimo, H. Annegarn, C. Pemberton-Pigott
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引用次数: 4

摘要

在南非高地的低收入社区,使用煤炭作为家庭燃料来满足烹饪和取暖的需要,导致室内和环境空气污染严重。煤炭燃烧被认为是豪登省空气污染的最大来源,就由此产生的人类暴露而言。作为解决这一问题的措施之一,我们开发了一种创新的清洁燃烧多用途(烹饪和取暖)煤炉。采用底部照明向下通风(BLDD)设计。然而,通过构建和测试来优化基本设计是一项耗费时间和资源的工作。在本文中,我们报告了使用PHOENICS计算流体动力学(CFD)软件开发一个模型来模拟BLDD煤炉的最佳几何形状,包括热量和气体传递组件。我们使用PHOENICS软件中的质量、动量和能量平衡,通过FLAIR程序(PHOENICS的专用子模块程序,旨在为供暖、通风和空调系统提供气流和热模拟设施)来评估从燃料床到排气管的热量分布的基本设计。在简化计算效率的前提下,建立了矩形管道模型,并将模拟结果与实验结果进行了对比验证。本文报告了CFD建模的初步结果,包括空气流动和温度分布,假设燃烧室中有恒定的热源。该模型的验证将加快设计周期,以达到优化热(烹饪)性能和减少污染排放的设计解决方案。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Modelling of bottom-lit down-draft (BLDD) clean-burning coal stove
The use of coal as a household fuel to meet requirements of cooking and heating in low income communities on the South African Highveld results high levels of indoor and ambient air pollution. The combustion of coal is regarded as the largest source of air pollution in Gauteng Province, in terms of resultant human exposure. As part of measures to combat this problem, an innovative clean-burning multi-use (cooking and heating) coal stove has been developed. Incorporating a bottom-lit down-draft (BLDD) design. However, optimising the fundamental design by construction and testing has been a time and resource consuming exercise. In this paper we report on the use of PHOENICS computational fluid dynamics (CFD) software to develop a model for simulating an optimal geometry for the BLDD coal stove, including heat and gas transfer components. We used mass, momentum and energy balances built within PHOENICS software, through FLAIR program (a special-purpose sub-module program of PHOENICS, designed to provide an air-flow and thermal-simulation facility for heating, ventilation and air conditioning systems), to evaluate the basic design in terms of heat distribution from fuel bed to exhaust pipe. As a simplifying assumption for computational efficiency, a model using rectangular conduits was built and validated by comparing the simulations with experimental performance of the stove. This article reports the initial findings of the CFD modelling, involving air flows and temperature profile, assuming a constant heat source located in the combustion chamber. Validation of the model will lead to an accelerated design cycle for reaching a design solution for optimised thermal (cooking) performance and reduced pollution emissions.
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