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扩展(火用)分析以考虑生态系统产品和服务。

Expanding exergy analysis to account for ecosystem products and services.

作者信息

Hau Jorge L, Bakshi Bhavik R

机构信息

Department of Chemical Engineering, The Ohio State University, 140 West 19th Avenue, Columbus, Ohio 43210, USA.

出版信息

Environ Sci Technol. 2004 Jul 1;38(13):3768-77. doi: 10.1021/es034513s.

Abstract

Exergy analysis is a thermodynamic approach used for analyzing and improving the efficiency of chemical and thermal processes. It has also been extended for life cycle assessment and sustainability evaluation of industrial products and processes. Although these extensions recognize the importance of capital and labor inputs and environmental impact, most of them ignore the crucial role that ecosystems play in sustaining all industrial activity. Decisions based on approaches that take nature for granted continue to cause significant deterioration in the ability of ecosystems to provide goods and services that are essential for every human activity. Accounting for nature's contribution is also important for determining the impact and sustainablility of industrial activity. In contrast, emergy analysis, a thermodynamic method from systems ecology, does account for ecosystems, but has encountered a lot of resistance and criticism, particularly from economists, physicists, and engineers. This paper expands the engineering concept of Cumulative Exergy Consumption (CEC) analysis to include the contribution of ecosystems, which leads to the concept of Ecological Cumulative Exergy Consumption (ECEC). Practical challenges in computing ECEC for industrial processes are identified and a formal algorithm based on network algebra is proposed. ECEC is shown to be closely related to emergy, and both concepts become equivalent if the analysis boundary, allocation method, and approach for combining global energy inputs are identical. This insight permits combination of the best features of emergy and exergy analysis, and shows that most of the controversial aspects of emergy analysis need not hinder its use for including the exergetic contribution of ecosystems. Examples illustrate the approach and highlight the potential benefits of accounting for nature's contribution to industrial activity.

摘要

㶲分析是一种用于分析和提高化学与热过程效率的热力学方法。它也已扩展到工业产品和过程的生命周期评估与可持续性评价。尽管这些扩展认识到资本和劳动力投入以及环境影响的重要性,但其中大多数都忽略了生态系统在维持所有工业活动中所起的关键作用。基于视自然为理所当然的方法所做的决策,继续导致生态系统提供对每项人类活动都至关重要的商品和服务的能力大幅下降。考虑自然的贡献对于确定工业活动的影响和可持续性也很重要。相比之下,能值分析是系统生态学中的一种热力学方法,它确实考虑了生态系统,但却遭到了很多抵制和批评,尤其是来自经济学家、物理学家和工程师的。本文将累积㶲消耗(CEC)分析的工程概念扩展到包括生态系统的贡献,从而引出了生态累积㶲消耗(ECEC)的概念。识别了计算工业过程ECEC的实际挑战,并提出了一种基于网络代数的形式算法。结果表明ECEC与能值密切相关,如果分析边界、分配方法以及组合全球能源输入的方法相同,那么这两个概念就会变得等效。这一见解允许结合能值分析和㶲分析的最佳特性,并表明能值分析中大多数有争议的方面并不妨碍其用于纳入生态系统的㶲贡献。实例说明了该方法,并突出了考虑自然对工业活动贡献的潜在益处。

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