由热力驱动的系统中的负质量
Edward Bormashenko1, Artem Gilevich1, Shraga Shoval2
1Department of Chemical Engineering, Biotechnology and Materials, Faculty of Engineering, Ariel University, Ariel 407000, Israel.
Materials (Basel, Switzerland)
|September 13, 2025
概括
这项研究揭示了聚合物系统中由于力而导致的负有效质量和密度. 这些现象取决于温度,并出现在核心外机械系统中.
科学领域:
- 物理 物理学 物理
- 材料科学 材料科学 材料科学
- 聚合物科学 聚合物科学
背景情况:
- 聚合物弹性部分是源的,是由达到更可能的状态的趋势驱动的.
- 热力是温度依赖的,影响材料特性.
- 负有效质量和密度是具有潜在应用的不寻常现象.
研究的目的:
- 为了研究由热带弹性力驱动的系统中负有效质量和密度的出现.
- 分析这些现象在基于聚合物的核心外系统中的温度依赖.
- 阐明振动特性,包括光学和声学分支.
主要方法:
- 使用聚合物弹建模核心外机械系统.
- 计算取决于温度的有效质量和密度.
- 分析当外力频率接近自身频率时的共振效应.
- 研究核心外单元链中的振动模式.
主要成果:
- 负有效质量产生于具有聚合物弹的核心外系统中的共振效应.
- 有效质量和密度被证明是温度依赖的.
- 阐明了光学和声学振动分支.
- 通过改变系统温度,可以达到负质量和密度.
结论:
- 聚合物弹中的热力可以导致负有效质量和密度.
- 温度变化是实现这些负性质的关键.
- 这些发现对于理解和设计先进的机械系统具有重要意义.
相关概念视频
Entropy
34.9K
Salt particles that have dissolved in water never spontaneously come back together in solution to reform solid particles. Moreover, a gas that has expanded in a vacuum remains dispersed and never spontaneously reassembles. The unidirectional nature of these phenomena is the result of a thermodynamic state function called entropy (S). Entropy is the measure of the extent to which the energy is dispersed throughout a system, or in other words, it is proportional to the degree of disorder of a...
34.9K
Entropy
3.5K
The first law of thermodynamics is quantitatively formulated via an equation relating the internal energy of a system, the heat exchanged by it, and the work done on it. A quantitative formulation of the second law of thermodynamics leads to defining a state function, the entropy.
When an ideal gas expands isothermally, the disorder in the gas increases. From the molecular perspective, the gas molecules have more volume to move around in.
Consider an infinitesimal step in the expansion, which...
When an ideal gas expands isothermally, the disorder in the gas increases. From the molecular perspective, the gas molecules have more volume to move around in.
Consider an infinitesimal step in the expansion, which...
3.5K
Second Law of Thermodynamics
26.7K
In the quest to identify a property that may reliably predict the spontaneity of a process, a promising candidate has been identified: entropy. Processes that involve an increase in entropy of the system (ΔS > 0) are very often spontaneous; however, examples to the contrary are plentiful. By expanding consideration of entropy changes to include the surroundings, a significant conclusion regarding the relation between this property and spontaneity may be reached. In thermodynamic models, the...
26.7K
Second Law of Thermodynamics
67.7K
The Second Law of Thermodynamics states that entropy, or the amount of disorder in a system, increases each time energy is transferred or transformed. Each energy transfer results in a certain amount of energy that is lost—usually in the form of heat—that increases the disorder of the surroundings. This can also be demonstrated in a classic food web. Herbivores harvest chemical energy from plants and release heat and carbon dioxide into the environment. Carnivores harvest the...
67.7K
Entropy and the Second Law of Thermodynamics
4.8K
The second law of thermodynamics can be stated quantitatively using the concept of entropy. Entropy is the measure of disorder of the system.
The relation between entropy and disorder can be illustrated with the example of the phase change of ice to water. In ice, the molecules are located at specific sites giving a solid state, whereas, in a liquid form, these molecules are much freer to move. The molecular arrangement has therefore become more randomized. Although the change in average...
The relation between entropy and disorder can be illustrated with the example of the phase change of ice to water. In ice, the molecules are located at specific sites giving a solid state, whereas, in a liquid form, these molecules are much freer to move. The molecular arrangement has therefore become more randomized. Although the change in average...
4.8K
Third Law of Thermodynamics
21.6K
A pure, perfectly crystalline solid possessing no kinetic energy (that is, at a temperature of absolute zero, 0 K) may be described by a single microstate, as its purity, perfect crystallinity,and complete lack of motion means there is but one possible location for each identical atom or molecule comprising the crystal (W = 1). According to the Boltzmann equation, the entropy of this system is zero.
21.6K


