首页> 外文会议>Energy and Environment >AN ENVIRONOMIC APPROACH FOR THE LIFE CYCLE MODELING AND OPTIMIZATION OF A DISTRICT HEATING NETWORK BASED ON CENTRALIZED AND DECENTRALIZED HEAT PUMPS (PART Ⅰ: METHODOLOGY)
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AN ENVIRONOMIC APPROACH FOR THE LIFE CYCLE MODELING AND OPTIMIZATION OF A DISTRICT HEATING NETWORK BASED ON CENTRALIZED AND DECENTRALIZED HEAT PUMPS (PART Ⅰ: METHODOLOGY)

机译:基于集中式和分散式热泵的区域供热网络生命周期建模和优化的环境方法(部分Ⅰ:方法论)

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Although heat pump based district heating is often an obvious solution, adapting the delivery temperature to the most exigent users is detrimental to overall system performance. This pitfall can be avoided with a centralized plant of heat pumps, cogeneration and an auxiliary furnace, supplemented by decentralized heat pumps. However, the problem of mixed energy production and delivery which this poses is complex and presents for the engineer the daunting if not impossible task of adequately, much less optimally, determining the best system for the job. An environomic methodology for aiding in this task is proposed. It is used to model the thermodynamic, economic, and environmental characteristics of such a system in order that its final configuration and corresponding component designs can be optimized. Our approach is an attempt to respond at the synthesis, design and operational level of an energy system to the concept of sustainability. The optimization of the model developed results in a highly nonlinear, non-contiguous solution space effectively searched using a genetic algorithm. The system's environmental characteristics are introduced into the model through pollution damage cost terms and pollution penalty functions adapted to the system's changing emissions and to local and global pollutant conditions. Results are shown for various district heating user distributions and fuel and electricity prices. In this first of a series of two articles, our methodology is described and the details of the environomic model for a district heating network based on centralized and decentralized heat pumps presented. In the accompanying article, a complete set of results for the optimal synthesis, design and operation of the network is given and discussed.
机译:尽管基于热泵的区域供暖通常是一个显而易见的解决方案,但使输送温度适应最紧急的用户不利于整个系统的性能。使用集中式热泵,热电联产和辅助炉,并辅以分散式热泵,可以避免这种陷阱。然而,由此带来的混合能量生产和输送的问题是复杂的,并且对于工程师而言,即使不是不可能的事情,也存在着艰巨的任务,即充分,最不理想地确定最佳工作系统。提出了一种用于协助该任务的环境方法学。它用于对此类系统的热力学,经济和环境特征进行建模,以便可以优化其最终配置和相应的组件设计。我们的方法是尝试在能源系统的综合,设计和运行级别上响应可持续性概念。开发模型的优化结果是使用遗传算法有效搜索高度非线性,不连续的解决方案空间。通过适应系统不断变化的排放以及本地和全球污染物状况的污染损害成本条款和污染惩罚函数,将系统的环境特征引入模型中。显示了各种区域供热用户分布以及燃料和电价的结果。在两篇系列文章的第一篇中,我们介绍了我们的方法,并详细介绍了基于集中式和分散式热泵的区域供热网络的环境模型。在随附的文章中,给出并讨论了网络的最佳综合,设计和操作的完整结果。

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