关于不可逆转的哈密尔顿港系统的概述
Hector Ramirez1, Yann Le Gorrec2
1Departamento de Electrónica, Universidad Técnica Federico Santa María, 2390123 Valparaiso, Chile.
Entropy (Basel, Switzerland)
|July 8, 2023
概括
本研究为热力学系统提供了一个统一的不可逆转的波特-哈密尔顿系统配方. 它扩展了经典的哈密尔顿港系统,包括不可逆转的机械和热合,确保节能和编码第二定律.
科学领域:
- 热力学是一种热力学.
- 数学物理学的数学物理.
- 系统理论 系统理论
背景情况:
- 经典的哈密尔顿港式系统模拟了节能系统.
- 不可逆转的热力学过程需要扩展现有的形式主义.
- 机械和热现象的合提出了建模挑战.
研究的目的:
- 为不可逆转的港湾 - 汉密尔顿系统提供统一的配方.
- 扩展哈密尔顿港系统以处理不可逆转的热力学过程.
- 开发一个模拟合热力学系统的框架.
主要方法:
- 开发了一个不可逆转的港湾-哈密尔顿系统配方.
- 整合了一个节能和增加的热操作员.
- 利用同状态变量来定义一个依赖总能量梯度的非线性运算符.
- 证明了有限和无限维系统上的形式主义.
主要成果:
- 拟议的配方明确结合了不可逆转的机械和热现象.
- 形式主义通过一个斜对称运算符来保证节能.
- 热力学第二定律被编码为系统的结构性质.
- 可逆和保守系统作为一个特殊案例.
结论:
- 不可逆转的哈密尔顿端口系统公式为各种热力学系统提供了统一的方法.
- 这个框架有效地模拟了合的热力学现象,并包含了不可逆转性.
- 该方法为分析能量和动态提供了一个强大的数学结构.
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