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HeatIn physics, the relationship between heat and energy is similar to that between work and energy. Heat is said to flow from areas of high temperature to areas of low temperature. All objects have a certain amount of energy within them that is related to the random motion of their atoms. This internal energy is directly proportional to the temperature of the object. When two bodies of different temperature come in to thermal contact, they will exchange internal energy until the temperature is equalized. The amount of energy transferred is the amount of heat exchanged. It is a common misconception to confuse heat with internal energy, but there is a difference, and understanding the difference is a necessary part of understanding the first law of thermodynamics.
Changes of TemperatureThe amount of heat required to change the temperature of a material from an initial temperature, T0, to a final temperature, Tf depends on the the heat capacity of that material according to the relationship:
The heat capacity is dependent on both the amount of material that is exchanging heat and its properties. The heat capacity can be broken up in several different ways. First of all, it can be represented as a product of mass and specific heat capacity (more commonly called specific heat):
or the number of moles and the molar heat capacity:
Both the molar and specific heat capacities only depend upon the physical properties of the substance being heated, not on any specific properties of the sample. The above definitions of heat capacity only work approximately for solids and liquids, but for gases they don't work at all most of the time. The molar heat capacity can be "patched up" if the changes of temperature occur at either a constant volume or constant pressure. Otherwise, it's generally easiest to use the first law of thermodynamics in combination with an equation relating the internal energy of the gas to its temperature.
Changes of StateA boiling pot of water, at atmospheric pressure, will always be at 100oC no matter how much heat is added. The heat in circumstances such as this is said to be "hidden", and thus it is called latent heat (from a Latin word for hidden). Latent heat is the rate of heat per unit mass necessary to change the state of a given substance. Thus:
and:
where Mo is the amount of mass initially in the new phase, and M is the amount of mass that ends up in the new phase. L generally doesn't depend on the amount of mass that changes phase, so the equation can normally be written:
Sometimes L can be time-dependent if pressure and volume are time-varying, so that the integral can be handled:
someone check the above, please, to see if the latent heat really depends on where on the (P, V, T) curve the transition is taking place.
How Heat MovesAs mentioned previously, heat tends to move from a high temperature region to a low temperature region. This heat transfer may occur by any of three mechanisms, conduction, convection, and radiation. Conduction is the most common means of heat transfer in a solid. On a microscopic scale, conduction occurs as hot, rapidly moving or vibrating atoms and molecules interact with neighboring atoms and molecules, transferring some of their energy (heat) to these neighboring atoms. Convection is usually the dominant form of heat transfer in liquids and gases. In convection, heat transfer occurs by the movement of hot or cold portions of the fluid. For example, when water is heated on a stove, hot water from the bottom of the pan rises, heating the water at the top of the pan. Two types of convection are commonly distinguished, free convection, in which gravity and buoyancy forces drive the fluid movement, and forced convection, where a fan, stirrer, or other means is used to move the fluid. Radiation is the final means of heat transfer. Radiative heat transfer is the only form of heat transfer that can occur in the absence of any form of medium and as such is the only means of heat transfer through a vacuum. Thermal radiation is a direct result of the movements of atoms and molecules in a material. Since these atoms and molecules are composed of charged particles (protons and electrons), their movements result in the emission of electromagnetic radiation, which carries energy away from the surface. At the same time, the surface is constantly bombarded by radiation from the surroundings, resulting in the transfer of energy to the surface. Since the amount of emitted radiation increases with increasing temperature, a net transfer of energy from higher temperatures to lower temperatures results.
See also: Heat death of the Universe[?] moon.html">moon.html">moon.html">moon to the earth.html">earth.html">earth.html">earth, and there is not one volcano which has not a
and cost nothing. And how we shall be able to laugh at the
projectile, and we could have exchanged telegrams with the earth?"
"The deuce!" answered Nicholl. "Do you consider the weight of
they could have quadrupled or quintupled it!" exclaimed Michel,
replied Barbicane, "which is that, during the rotary motion of
chain on a capstan, and that it would inevitably have brought us
nothing but impracticable ideas.html">ideas to-day; ideas worthy of J.
earth, J. T. Maston will be able to come to us."
"Yes, he'll come," replied Barbicane; "he is a worthy and a
Columbiad still buried in the soil of Florida? Is cotton and
Will not the moon pass the zenith of Florida? In eighteen
our friends Elphinstone, Blomsberry, all the members of the Gun
run trains of projectiles between the earth and the moon!
hurrahs uttered in his honor, his ears at least tingled. What was
station of Long's Peak, he was trying to find the invisible
companions, we must allow that they were not far behind him; and
devoting to him their best thoughts.
But whence this excitement, which was evidently growing upon the
This strange irritation of the brain, must it be attributed to
their proximity to the orb of night, from which only a few hours
their nervous system? Their faces were as rosy as if they had
resounded in loud accents; their words escaped like a champagne
they wanted so much room to perform them; and, strange to say,
whether we shall ever return from the moon, I want to know what
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