量子理论只有在拉扎尔·卡诺的参与式工程热力学中才有意义,这是莱布尼茨动态学的发展
1Institute for Science, Engineering and Public Policy, Portland State University, Portland, OR 97006, USA.
概括
量子理论,尽管取得了成功,但不是经典的. 通过工程热力学更好地理解它,揭示了参与性,互补性和不确定性特征.
科学领域:
- 物理 物理学 物理
- 热力学是一种热力学.
- 科学的历史科学的历史.
背景情况:
- 量子理论是最成功的科学理论,但它的基本理解仍然难以捉摸.
- 经典力学 (牛顿粒子和马克斯韦尔波) 对量子现象是互补的,但不够的.
- 两个裂实验突出了量子现实的观察者依赖性.
研究的目的:
- 在工程热力学更广泛的背景下重新构建量子理论.
- 找出四个基本的量子特征,这些特征是古典力学无法解释的.
- 探索工程热力学的历史前体.
主要方法:
- 分析量子理论的核心特征:参与性,互补性,不确定性和非交换性几何学.
- 与热力学的两种历史公式进行比较:卡诺的工程学和克劳西乌斯-博尔茨曼的理性力学.
- 追踪工程热力学的历史发展.
主要成果:
- 量子理论的四个基本特征与工程热力学的一致.
- 经典力学的对称性和保证性假设未能包含这些量子特征.
- 工程热力学为理解量子理论提供了一个更适合的框架.
结论:
- 量子理论的独特特征是通过工程热力学比古典力学更好地解释.
- 从历史的角度来看,工程热力学的根源在于早期的动态原理.
- 这项工作通过热力学镜头将自然科学和社会科学联系起来.
相关概念视频
Statements of the Second Law of Thermodynamics
4.1K
The second law of thermodynamics can be stated in several different ways, and all of them can be shown to imply the others. The Clausius’ statement of the second law of thermodynamics is based on the irreversibility of spontaneous heat flow. It states that heat will not flow from the colder body to the hotter body unless some other process is involved. Additionally, as per the Kelvin’s statement, it is impossible to convert the heat from a single source into work without any other...
4.1K
The Carnot Cycle and the Second Law of Thermodynamics
2.7K
The Carnot engine works between two heat reservoirs of fixed temperatures. The Carnot cycle begs the following question: Is it possible to devise a heat engine that is more efficient than a Carnot engine between two fixed temperatures? The answer lies in designing a Carnot refrigerator.
Since the individual steps in a Carnot cycle can be reversed, the entire cycle is, thus, reversible. If a Carnot cycle is reversed, it becomes a Carnot refrigerator. It extracts heat Qc from a cold reservoir at...
Since the individual steps in a Carnot cycle can be reversed, the entire cycle is, thus, reversible. If a Carnot cycle is reversed, it becomes a Carnot refrigerator. It extracts heat Qc from a cold reservoir at...
2.7K
The First Law of Thermodynamics
5.9K
The first law of thermodynamics deals with the total amount of energy in the universe. It states that this total amount of energy is constant. In other words, there has always been, and always will be, exactly the same amount of energy in the universe. Energy exists in many different forms. According to the first law of thermodynamics, energy may transfer from place to place or transform into different forms, but it cannot be created or destroyed. The transfers and transformations of energy...
5.9K
Zeroth Law of Thermodynamics
5.1K
Experimentally, if object A is in equilibrium with object B, and object B is in equilibrium with object C, then object A is in equilibrium with object C. That statement of transitivity is called the "zeroth law of thermodynamics." For example, a cold metal block and a hot metal block are both placed on a metal plate at room temperature. Eventually, the cold block and the plate will be in thermal equilibrium. In addition, the hot block and the plate will be in thermal equilibrium.
5.1K
First Law of Thermodynamics
4.3K
A change in the internal energy of a system depends on the the net heat transfer into the system and the net work done by the system. The first law of thermodynamics, which is a generalized form of energy conservation, relates these three quantities mathematically. It states that the change in the internal energy equals the difference between the heat transfer and work done by the system.
The applied heat increases the internal energy of a system. Hence, conventionally heat is considered...
The applied heat increases the internal energy of a system. Hence, conventionally heat is considered...
4.3K
The Second Law of Thermodynamics
5.4K
In the quest to identify a property that may reliably predict the spontaneity of a process, a promising candidate has been identified: entropy. Scientists refer to the measure of randomness or disorder within a system as entropy. High entropy means high disorder and low energy. To better understand entropy, think of a student’s bedroom. If no energy or work were put into it, the room would quickly become messy. It would exist in a very disordered state, one of high entropy. Energy must be...
5.4K


