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Economic and environmental impacts of a non-traditional combined heat and power system for a discrete manufacturing facility

机译:离散制造设施非传统综合热电系统的经济和环境影响

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摘要

Combined heat and power (CHP) is an electricity generation strategy that benefits all sides with a vested interest in the nations' energy future. The technology allows for the efficient production of electricity and heat, which in turn reduces the carbon footprint and energy costs of a facility with significant heat and electricity loads. This paper investigates, through a detailed dynamic simulation, how a highly non-traditional CHP facility can leverage those forces to economically and environmentally benefit. Four system configurations of a composites manufacturing facility, one existing and three proposed systems, including two CHP configurations and one combined cooling, heating, and power (CCHP) configuration are evaluated from both economic and environmental views. The three proposed configurations are based on a 600 kW microturbine as the primary mover. The dynamic model showed great potential to capture the dynamics of the system configurations including the dynamics of temperature, oven exhaust fraction, electrical efficiency, and overall efficiency of the system configurations. All 3 CHP systems have a payback period between 8.03 and 8.33 years. The proposed system configurations reduce up to 22.7% of the CO2 emission compared to the existing facility, supplying the demands in a cleaner manner. (c) 2020 Elsevier Ltd. All rights reserved.
机译:综合热量和电力(CHP)是一项发电策略,使各方面受到对国家的既得利益的能源未来。该技术允许有效地生产电力和热量,这反过来又降低了具有显着的热电负荷的设施的碳足迹和能量成本。本文通过详细的动态模拟调查了高度非传统的CHP设施,可以利用这些力量在经济和环境中利益。复合材料制造设施的四种系统配置,一个现有的和三个提出的系统,包括两个CHP配置和一个组合的冷却,加热和功率(CCHP)配置,从而来,都是从经济和环境视图中进行的。三种建议的配置基于600 kW的Microturbine作为主要移动器。动态模型显示出捕获系统配置的动态的巨大潜力,包括温度,烤箱排气分数,电效率和系统配置的整体效率的动态。所有3个CHP系统的投资回收期在8.03和8.33年之间。与现有设施相比,建议的系统配置减少了22.7%的二氧化碳排放,以清洁的方式提供需求。 (c)2020 elestvier有限公司保留所有权利。

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