21.2
热机是一种用于从热源提取热量,然后将其转化为用于各种应用的机械功的装置。 例如,老式火车上的蒸汽机可以产生驱动火车所需的功。
每当我们考虑热机(以及相关设备,例如冰箱和热泵)时,我们都不使用热和功的标准符号约定。 为了方便起见,我们假设符号 Qh、Qc和W 仅代表传递的热量和传递的功,无论给予体或接…
热机是一种用于从热源中提取热量,并将其部分转化为机械能形式的功的装置。
热机的组成部分包括作为热源的高温储热器、在循环运行过程中进行热量传递的工作物质,以及作为热汇的低温储热器。
当工作物质从热源吸收热量时,只有一部分热量被用来做有用功,其余热量则传递给冷源。
在理想的可逆热机中,系统的内能变化为零。
利用热力学第一定律, 获得了一个从热机中提取功的表达式。
热机的热效率定义为该功与从热源吸收的热量之比。
在实际的热机中,这种 效率总是小于1,因为不可能将所有的热量完全转化为功;总会存在一定的热量损失。
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Q1: What are the main components of a heat engine?
A heat engine consists of three essential components: a hot reservoir that serves as the heat source, a working substance that transfers heat during cyclic operation, and a cold reservoir acting as the heat sink. The working substance absorbs heat from the hot reservoir, converts part of it into useful mechanical work, and rejects the remaining heat to the cold reservoir.
Q2: How is thermal efficiency calculated in a heat engine?
Thermal efficiency is defined as the ratio of useful work output to the total heat absorbed from the hot reservoir during each cycle. It represents what we get out divided by what we put in. In practical heat engines, efficiency is always less than unity because it is impossible to convert all absorbed heat into work; some heat is always lost to the cold reservoir.
Q3: Why can't a heat engine convert all heat into work?
According to the first law of thermodynamics, in an ideal reversible heat engine, the change in internal energy is zero. This means the heat absorbed must equal the work done plus the heat rejected. Therefore, some heat must always be transferred to the cold reservoir, making it thermodynamically impossible to achieve 100% efficiency or convert all heat into mechanical work.
Q4: What is the difference between ideal and practical heat engines?
An ideal reversible heat engine operates with zero change in internal energy and represents the theoretical maximum efficiency. Practical heat engines always have efficiency less than this ideal value due to irreversibilities such as friction, heat losses through engine walls, and incomplete combustion. Real engines like power plants and internal combustion engines cannot achieve the theoretical efficiency of reversible engines.
Q5: How do power plants and internal combustion engines function as heat engines?
Power plants use steam generated at high temperatures to drive electric generators, then release waste heat to the atmosphere or water bodies as the cold reservoir. Internal combustion engines use a hot gas-air mixture to push pistons and produce mechanical work, similarly rejecting heat to the surrounding atmosphere. Both extract heat from a high-temperature source and convert part of it into useful work.
Q6: What role do the hot and cold reservoirs play in heat engine operation?
The hot reservoir at temperature Th provides the heat energy Qh that drives the engine, while the cold reservoir at temperature Tc receives the rejected heat Qc. The temperature difference between these reservoirs enables the engine to perform work W. Without both reservoirs at different temperatures, no net work can be extracted from the system.
Q7: What does the first law of thermodynamics tell us about heat engine operation?
The first law of thermodynamics states that energy is conserved: the heat absorbed from the source equals the work output plus the heat rejected to the sink. For an ideal reversible heat engine, the internal energy change is zero, confirming this energy balance. This fundamental principle explains why efficiency must always be less than unity in any real heat engine.