相关实验视频
Updated: Jan 29, 2026

08:43
Fused Filament Fabrication FFF of Metal-Ceramic Components
Published on: January 11, 2019
18.0K
用于陶激光微加工制造的热催化气体传感器的微热板
Nikolay Samotaev1, Gennady Zebrev1, Konstantin Oblov1
1Micro- and Nanoelectronics Department, National Research Nuclear University MEPhI (Moscow Engineering Physics Institute), 115409 Moscow, Russia.
Micromachines
|January 28, 2026
概括
一个新的基于陶的热催化传感器为测量碳化合物气体下级爆炸性极限 (LEL) 提供了低功耗的解决方案. 这种设计克服了传统传感器的局限性,改善了大规模生产和抗毒性.
科学领域:
- 材料科学 材料科学 材料科学
- 化学工程是化学工程的重要组成部分.
- 传感器技术 传感器技术
背景情况:
- 热催化传感器对于测量碳化合物气体混合物的下级爆炸性极限 (LEL) 是至关重要的.
- 传统的 pellistor 类型传感器在批量生产中面临挑战,并且容易中毒.
- 尽量减少电力消耗和提高传感器寿命是关键的发展目标.
研究的目的:
- 为了开发一种新的低功耗热催化传感器.
- 克服现有的传感器设计对LEL测量的局限性.
- 为了提高传感器的耐用性和对常见毒素的抗性.
主要方法:
- 开发一种利用先进陶技术的热催化传感器.
- 为低功耗消耗而优化设计的实施.
- 在高达900°C的操作温度下测试传感器功能.
主要成果:
- 成功开发了一种新的低功耗热催化传感器设计.
- 这种基于陶的传感器适合使用微电子处理进行大规模生产.
- 传感器表现出高工作温度能力和耐毒性.
结论:
- 开发的陶热催化传感器为通用爆炸计提供了一个可行的替代方案.
- 这项创新解决了传感器设计的关键挑战,包括功耗和耐毒性.
- 传感器技术有望提高碳化合物气体混合物的环境中的安全性.
相关概念视频
Gas Exchange and Transport
76.8K
Gas exchange, the intake of molecular oxygen (O2) from the environment and the outflow of carbon dioxide (CO2) into the environment, is necessary for cellular function. Gas exchange during respiration occurs largely via the movement of gas molecules along pressure gradients. Gas travels from areas of higher partial pressure to areas of lower partial pressure. In mammals, gas exchange occurs in the alveoli of the lungs, which are adjacent to capillaries and share a membrane with them.
76.8K
Kinetic Molecular Theory and Gas Laws Explain Properties of Gas Molecules
37.4K
The test of the kinetic molecular theory (KMT) and its postulates is its ability to explain and describe the behavior of a gas. The various gas laws (Boyle’s, Charles’s, Gay-Lussac’s, Avogadro’s, and Dalton’s laws) can be derived from the assumptions of the KMT, which have led chemists to believe that the assumptions of the theory accurately represent the properties of gas molecules.
37.4K
Gas Laws: Boyle's, Gay-Lussac, Charles', Avogadro's, and Ideal Gas Law
76.9K
Through experiments, scientists established the mathematical relationships between pairs of variables, such as pressure and temperature, pressure and volume, volume and temperature, and volume and moles, that hold for an ideal gas.
76.9K
Ideal Gas Equation
8.5K
The ideal gas equation is an equation of state that relates the state variables pressure, volume, temperature, and the number of moles of a hypothetical gas. This equation is a combination of four empirical laws, namely Boyle’s Law, Charles’s Law, Avogadro’s Law, and Gay-Lussac’s Law. When the proportionalities of the above four empirical laws are combined, it results in a single proportionality constant known as the universal gas constant.
8.5K
Gas Chromatography: Introduction
3.9K
Gas chromatography (GC) is a technique for separating and analyzing volatile compounds in a sample. Its primary purpose is to identify and quantify components in complex mixtures, making it essential in fields such as environmental analysis, pharmaceuticals, and petrochemicals. GC is also called vapor-phase chromatography (VPC) or gas-liquid partition chromatography (GLPC).
In GC, a sample is vaporized and mixed with an inert carrier gas (the mobile phase), which transports it through a...
In GC, a sample is vaporized and mixed with an inert carrier gas (the mobile phase), which transports it through a...
3.9K
Behavior of Gas Molecules: Molecular Diffusion, Mean Free Path, and Effusion
31.3K
Although gaseous molecules travel at tremendous speeds (hundreds of meters per second), they collide with other gaseous molecules and travel in many different directions before reaching the desired target. At room temperature, a gaseous molecule will experience billions of collisions per second. The mean free path is the average distance a molecule travels between collisions. The mean free path increases with decreasing pressure; in general, the mean free path for a gaseous molecule will be...
31.3K

