多材料元材料:定制针对性的热变形模式,以响应时间和空间变量温度刺激
Kaiyu Wang1, Zhonggang Wang2, Kai Wei1
1State Key Laboratory of Advanced Design and Manufacturing Technology for Vehicle, Hunan University, Changsha 410082, PR China.
ACS applied materials & interfaces
|July 17, 2024
概括
研究人员开发了新的多材料元材料,可以根据特定的热变形进行定制. 这些材料对时间变异和空间变异的温度变化都有反应,使得先进的形状变形和维度稳定性应用成为可能.
科学领域:
- 材料科学 材料科学 材料科学
- 机械工程 机械工程
- 超材料研究研究 超材料研究
背景情况:
- 目前的超材料仅限于同质的设计,仅对时间变量温度 (TVT) 刺激做出反应.
- 这种同质性限制了它们在需要复杂形状控制的实际工程场景中的应用.
- 现有的设计缺乏解决空间变量温度 (SVT) 变化的能力.
研究的目的:
- 提出并通过实验验证一种用于设计均和不均的多材料元材料的新策略.
- 为了使定制的热变形模式能够超越同位素反应.
- 解决当前超材料在响应TVT和SVT刺激时的局限性.
主要方法:
- 为多材料元材料制定新的设计策略.
- 对拟议的元材料设计进行实验验证.
- 调查对时间变量和空间变量温度刺激的反应.
主要成果:
- 设计的超材料表现出独特的热变形模式,包括正负正极形膨胀/收缩.
- 超材料成功地响应TVT和SVT刺激,允许定制的均热变形.
- 不均,数学化的线性和非线性热变形被精心定制,扩大了可定制性.
结论:
- 开发的多材料元材料为热变形提供了前所未有的控制.
- 这些材料为在复杂的温度变化下设计有针对性的热变形提供了新的途径.
- 这些发现为维度稳定性和形状变形的先进应用开辟了新的途径.
相关概念视频
Temperature Dependent Deformation
146
In a nonhomogeneous rod made up of steel and brass, restrained at both ends and subjected to a temperature change, several steps are involved in calculating the stress and compressive load. Due to the problem's static indeterminacy, one end support is disconnected, allowing the rod to experience the temperature change freely. Next, an unknown force is applied at the free end, triggering deformations in the rod's steel and brass portions. These deformations are then calculated and added...
146
Thermal expansion and Thermal stress: Problem Solving
1.2K
San Francisco's Golden Gate Bridge is exposed to temperatures ranging from -15 °C to 40 °C. At its coldest, the main span of the bridge is 1275 m long. Assuming that the bridge is made entirely of steel, what is the change in its length between these temperatures?
To solve the problem, first, identify the known and unknown quantities. The initial length (L) of the bridge is 1275 m, the coefficient of linear expansion (α) for steel is 12 x 10-6/°C, and the change in...
To solve the problem, first, identify the known and unknown quantities. The initial length (L) of the bridge is 1275 m, the coefficient of linear expansion (α) for steel is 12 x 10-6/°C, and the change in...
1.2K
Thermal Sigmatropic Reactions: Overview
2.1K
Sigmatropic rearrangements are a class of pericyclic reactions in which a σ bond migrates from one part of a π system to another. These are intramolecular rearrangements where the total number of σ and π bonds remain unchanged.
Sigmatropic shifts are classified based on an order term [i, j ], where i and j indicate the number of atoms across which each end of the σ bond migrates. Below are examples of a [3,3] sigmatropic shift in...
Sigmatropic shifts are classified based on an order term [i, j ], where i and j indicate the number of atoms across which each end of the σ bond migrates. Below are examples of a [3,3] sigmatropic shift in...
2.1K
Thermal Strain
903
Thermal strain is a concept that arises when we consider how temperature changes affect structures. Unlike the conventional assumption that structures remain constant under load, real-world scenarios often involve temperature fluctuations that can significantly impact these structures. Consider a homogeneous rod with a uniform cross-section resting freely on a flat horizontal surface. If the rod's temperature increases, the rod elongates. This elongation is proportional to the temperature...
903
Thermal Stress
2.4K
If the temperature of an object is changed while it is prevented from expanding or contracting, the object is subjected to stress. The stress is compressive if the object expands in the absence of constraint and tensile if it contracts. This stress resulting from temperature change is known as thermal stress. It can be quite large and can cause damage. To avoid this stress, engineers may design components so they can expand and contract freely. For instance, on highways, gaps are deliberately...
2.4K
Responses to Heat and Cold Stress
13.4K
Every organism has an optimum temperature range within which healthy growth and physiological functioning can occur. At the ends of this range, there will be a minimum and maximum temperature that interrupt biological processes.
13.4K


