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首页> 外文期刊>International journal of environment and waste management >Fuzzy inference system for deciding the appropriate feedstock for waste to energy and compost systems
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Fuzzy inference system for deciding the appropriate feedstock for waste to energy and compost systems

机译:模糊推理系统,用于确定废物转化为能源和堆肥系统的合适原料

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A Mamdani fuzzy inference system has been proposed here to work as a decision support model for evaluating the appropriateness of the 'waste to energy' anaerobic digester feedstock. Methane yield depends upon the nature of feedstock and the pH environment within the digester. Presently the 'waste to energy' industry and compost facility utilises years of experience and practice to prepare feedstock within the approved C:N ratio challenging widespread acceptability of the technology. Lack of experienced personnel has resulted in under utilisation of the waste, bulkier systems and variable quality of compost generation. Six linguistic fuzzy rules have been framed to classify the best feedstock in the 24-30.5 C:N range with over 62.5% methane potential. Highly user friendly and interactive software modules could be developed on this concept in future that would revolutionise the 'waste to energy' technology making it simple and hassle free for implementation across all scales.
机译:在此提出了一个Mamdani模糊推理系统,以作为决策支持模型来评估“废物转化为能源”厌氧消化池原料的适宜性。甲烷产量取决于原料的性质和蒸煮器内的pH环境。目前,“废物转化为能源”工业和堆肥设施利用多年的经验和实践,以批准的C:N比率制备原料,这挑战了该技术的广泛接受性。缺乏经验丰富的人员导致废物利用不足,系统笨重以及堆肥产生质量参差不齐。已经设计了六种语言模糊规则,以对24-30.5 C:N范围内具有超过62.5%甲烷潜力的最佳原料进行分类。将来可以在此概念上开发高度用户友好和交互式的软件模块,这将彻底改变“废物转化为能源”技术,从而使其在所有规模的实施过程中都变得简单,省事。

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