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课程主页: https://www.udemy.com/course/dielectric-material/
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课程名称:介电材料 课程概述: 本课程讲解了介电材料的基本概念和特性。介电材料是一种导电能力差但能有效支持静电场的物质,具有存储电荷的能力、高特定电阻和负温度系数等特点。课程内容包括介电材料的电介质极化现象、介电损耗、介电常数等重要概念。介电材料在电场中能产生极化,正负电荷表现出相反的位移,从而在材料内部形成强内电场,降低整体电场。 重要注意事项: 对于介电材料,重要的考虑因素包括其支持静电场的能力以及能量损耗的最小化(即介电损耗)。同时,介电常数反映了物质集中电场线的能力。低介电常数的例子有真空和干空气,而陶瓷、蒸馏水和纸张等则具有中等介电常数。 介电材料的性质: 1. 电气敏感性:衡量材料在电场作用下容易极化的程度。 2. 介电极化:在施加电压时,电场中存储的电能量。 3. 电偶极矩:正负电荷在系统中分离的程度。 4. 电子极化:发生在中性粒子组成的介电分子中。 5. 弛豫时间:去除电场后,介电材料原子恢复原状所需的延迟时间。 6. 介电击穿:当电压过高导致材料导电的现象。 介电材料的种类: 1. 极性介电材料:分子形状不对称,存在电偶极矩,例如水和盐酸。 2. 非极性介电材料:分子形状对称,无电偶极矩,例如氢气、氧气和氮气。 应用: 介电材料广泛应用于诸多领域。由于其存储电荷的能力,它们常用于电容器和无线电频率传输线的能量存储。高介电常数的材料用于改善半导体性能,此外在变压器、液晶显示器、可调微波设备中也发挥着重要作用。 总结: 本课程深入探讨了介电材料的特性、类型及其应用,旨在帮助学习者理解这一重要领域的基础知识和实际应用。
What is a dielectric material?A dielectric material is a poor conductor of electricity but an efficient supporter of electrostatic fields. It can store electrical charges, have a high specific resistance and a negative temperature coefficient of resistance.More about dielectric materialsDielectric materials are poor conductors of electricity because they do not have any loosely bound or free electrons that may drift through the material. Electrons are required to support the flow of an electric current. The current flows from the positive to the negative terminal and, in the opposite direction, as free electrons that flow from the negative to the positive terminal.Dielectric materials support dielectric polarization, which enables them to act as dielectrics rather than conductors. This phenomenon occurs when a dielectric is placed in an electric field and positive charges are displaced in the direction of the electric field, while the negative charges are displaced in the opposite direction. Such polarization creates a strong internal field, which reduces the overall electric field within the material.Important considerations for dielectric materialsAn important consideration for a dielectric material is its ability to support an electrostatic field, while dissipating minimal energy in the form of heat. This dissipated heat or energy loss is known as dielectric loss. The lower the dielectric loss, the more effective the substance is as a dielectric material.Another consideration is the dielectric constant, which is the extent to which a substance concentrates the electrostatic lines of flux. Substances with a low dielectric constant include a perfect vacuum, dry air and most pure, dry gases, such as helium and nitrogen. Materials with moderate dielectric constants include ceramics, distilled water, paper, mica, polyethylene and glass. Metal oxides, in general, have high dielectric constants.Properties of dielectric materialsThese are the most important properties of dielectric materials.Electric susceptibilityThis refers to a relative measure of how easily a dielectric material can be polarized when subjected to an electric field. It also refers to the material's electrical permeability.Dielectric polarizationThis is the amount of electrical energy stored in the electric field when voltage is applied to it. Since it causes positive charges and negative charges to flow in opposite directions, it can nullify the overall electric field.Electric dipole momentThe extent to which the negative and positive charges are separated within the system refers to the electric dipole moment. Atoms contain both positively and negatively charged particles and are arranged as dipoles in the material. Applying an electric charge creates a dipole moment. The relationship between the dipole moment and the electric field gives a material its dielectric properties.Electronic polarizationElectronic polarization happens when the dielectric molecules forming the dipole moment are composed of neutral particles.Relaxation timeUpon removing an applied electric field, the atoms in the dielectric material return to their original state after some delay. That delay time is referred to as the relaxation time.Dielectric breakdownIf the voltage across a dielectric material becomes too great and the electrostatic field becomes too intense, the material begins to conduct current. This phenomenon is called dielectric breakdown.In components that use gases or liquids as the dielectric medium, this condition reverses itself if the voltage decreases below the critical point. But, in components containing solid dielectrics, dielectric breakdown usually results in permanent damage.Dielectric dispersionThis term refers to the maximum polarization attained by the dielectric material. It is affected by the relaxation time.Types of dielectric materialsDielectric materials are based on the type of molecules present in the material.Polar dielectricIn a polar dielectric, the center of mass of positive and negative particles do not coincide. Molecules are asymmetrically shaped, and a dipole moment exists in the material. When an electric field is applied to the material, the molecules align themselves with the electric field. When the field is removed, the net dipole moment in the molecules becomes zero.Examples: water and hydrochloric acidNonpolar dielectricIn nonpolar dielectric materials, the center of mass of positive and negative particles coincides. The molecules are symmetrical in shape, and the dielectric material does not have a dipole moment.Examples: hydrogen, oxygen and nitrogenMost dielectric materials are solid. Examples are the following:porcelain (ceramic)micaglassplasticmany metal oxidesSome liquids and gases are also good dielectric materials. Dry air is an excellent dielectric and is used in variable capacitors and some types of transmission lines. Nitrogen and helium are good dielectric gases. Distilled water is a fair dielectric. A vacuum is an exceptionally efficient dielectric.Differences between dielectrics and insulatorsDielectrics are often confused with insulators, although there are differences between these types of materials. For example, all dielectrics are insulators, but not all insulators are dielectrics. Some differences are highlighted in this graphic.Applications of dielectric materialsDielectric materials are used in numerous applications. Because of their ability to store charges, they are most commonly used for energy storage in capacitors and to construct radio frequency transmission lines.High-permittivity dielectric materials are often used to improve the performance of semiconductors. In transformers, rheostats, shunt reactors and earth reactors, dielectric materials, such as mineral oils, act as cooling agents and as insulators.Dielectrics are also used in liquid-crystal displays, resonator oscillators and tunable microwave devices. In some applications, specially treated dielectrics serve as the electrostatic equivalent of magnets. More recently, submerging data center hardware into a dielectric liquid cooling agent has been used to draw heat away from processing infrastructure to maintain a desirable ambient temperature.