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生态学中的热力学——综述引言

Thermodynamics in Ecology-An Introductory Review.

作者信息

Nielsen Søren Nors, Müller Felix, Marques Joao Carlos, Bastianoni Simone, Jørgensen Sven Erik

机构信息

Department of Chemistry and Bioscience, Section for Sustainable Biotechnology, Aalborg University, A.C. Meyers Vænge 15, DK-2450 Copenhagen SV, Denmark.

Department of Ecosystem Management, Institute for Natural Resource Conservation, Christian-Albrechts-Universität zu Kiel, Olshausenstrasse 75, D-24118 Kiel, Germany.

出版信息

Entropy (Basel). 2020 Jul 27;22(8):820. doi: 10.3390/e22080820.

Abstract

How to predict the evolution of ecosystems is one of the numerous questions asked of ecologists by managers and politicians. To answer this we will need to give a scientific definition to concepts like sustainability, integrity, resilience and ecosystem health. This is not an easy task, as modern ecosystem theory exemplifies. Ecosystems show a high degree of complexity, based upon a high number of compartments, interactions and regulations. The last two decades have offered proposals for interpretation of ecosystems within a framework of thermodynamics. The entrance point of such an understanding of ecosystems was delivered more than 50 years ago through Schrödinger's and Prigogine's interpretations of living systems as "negentropy feeders" and "dissipative structures", respectively. Combining these views from the far from equilibrium thermodynamics to traditional classical thermodynamics, and ecology is obviously not going to happen without problems. There seems little reason to doubt that far from equilibrium systems, such as organisms or ecosystems, also have to obey fundamental physical principles such as mass conservation, first and second law of thermodynamics. Both have been applied in ecology since the 1950s and lately the concepts of exergy and entropy have been introduced. Exergy has recently been proposed, from several directions, as a useful indicator of the state, structure and function of the ecosystem. The proposals take two main directions, one concerned with the exergy stored in the ecosystem, the other with the exergy degraded and entropy formation. The implementation of exergy in ecology has often been explained as a translation of the Darwinian principle of "survival of the fittest" into thermodynamics. The fittest ecosystem, being the one able to use and store fluxes of energy and materials in the most efficient manner. The major problem in the transfer to ecology is that thermodynamic properties can only be calculated and not measured. Most of the supportive evidence comes from aquatic ecosystems. Results show that natural and culturally induced changes in the ecosystems, are accompanied by a variations in exergy. In brief, ecological succession is followed by an increase of exergy. This paper aims to describe the state-of-the-art in implementation of thermodynamics into ecology. This includes a brief outline of the history and the derivation of the thermodynamic functions used today. Examples of applications and results achieved up to now are given, and the importance to management laid out. Some suggestions for essential future research agendas of issues that needs resolution are given.

摘要

如何预测生态系统的演变是管理者和政治家向生态学家提出的众多问题之一。为了回答这个问题,我们需要对可持续性、完整性、恢复力和生态系统健康等概念给出科学定义。正如现代生态系统理论所例证的那样,这并非易事。生态系统基于大量的组成部分、相互作用和调节机制,呈现出高度的复杂性。在过去二十年里,人们提出了在热力学框架内解释生态系统的建议。这种对生态系统的理解的切入点是五十多年前分别由薛定谔和普里戈金将生命系统解释为“负熵馈入者”和“耗散结构”时给出的。将远离平衡态热力学的这些观点与传统经典热力学相结合,显然并非毫无问题。几乎没有理由怀疑,远离平衡态的系统,如生物体或生态系统,也必须遵循诸如质量守恒、热力学第一和第二定律等基本物理原理。自20世纪50年代以来,这两者都已应用于生态学领域,最近又引入了能值和熵的概念。最近,从几个方向来看,能值被提议作为生态系统状态、结构和功能的一个有用指标。这些提议主要有两个方向,一个涉及生态系统中储存的能值,另一个涉及耗散的能值和熵的形成。能值在生态学中的应用常常被解释为将达尔文的“适者生存”原则转化为热力学。最适宜的生态系统是能够以最有效方式利用和储存能量及物质流的系统。向生态学转移过程中的主要问题是热力学性质只能计算而无法测量。大多数支持性证据来自水生生态系统。结果表明,生态系统中自然和人为引起的变化伴随着能值的变化。简而言之,生态演替伴随着能值的增加。本文旨在描述将热力学应用于生态学的最新进展。这包括对当今所用热力学函数的历史和推导的简要概述。给出了目前已有的应用实例和取得的结果,并阐述了其对管理的重要性。针对未来需要解决的一些关键研究议程问题提出了一些建议。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0770/7517404/f315fa03a11d/entropy-22-00820-g001.jpg

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