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Why Linear Thermodynamics Does Describe Change of Entropy Production in Living Systems?

机译:为什么线性热力学描述了生命系统中熵产生的变化?

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We propose a hypothesis according to which there is a hierarchy of included steady states in living systems. Each steady state is not stable and exists only in a certain frame of time, named characteristic time. Evolution of system to any steady state leads to a change of boundary conditions for all steady states having lesser characteristic time. It should not be very rapid. In the opposite case, the level of entropy production could change so much that the system achieves a critical unstable point of any included steady state. Passing through the critical point leads to reorganization of the entire hierarchy of the steady states or to the complete collapse of the system as a dissipative structure. Also one should take into account that living systems are the result of long-term biological evolution. The species that are able to maintain their integrity for the longest time interval have evolutionary advantage. Therefore, it is quite likely that difference between current value of the entropy production and value of the entropy production in nearest steady state is small enough to satisfy the laws of linear thermodynamics. Experimental data confirm the hypothesis. Limits of applicability of linear thermodynamics to biological systems are discussed.
机译:我们提出了一个假设,根据该假设,生命系统中存在包含稳态的层次结构。每个稳定状态都是不稳定的,仅存在于称为特征时间的特定时间范围内。系统向任何稳态的演变导致具有较短特征时间的所有稳态的边界条件发生变化。它不应该很快。在相反的情况下,熵产生的水平可能会变化很大,以至于系统达到任何包含的稳态的临界不稳定点。通过临界点将导致整个稳态层次结构的重组,或者导致系统作为耗散结构的完全崩溃。还应考虑到生命系统是长期生物进化的结果。能够在最长的时间间隔内保持其完整性的物种具有进化优势。因此,很可能熵产生的电流值与最接近稳态的熵产生的值之间的差足够小以满足线性热力学定律。实验数据证实了这一假设。讨论了线性热力学对生物系统适用性的限制。

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