Molar absorption coefficientIn chemistry, the molar absorption coefficient or molar attenuation coefficient (ε) is a measurement of how strongly a chemical species absorbs, and thereby attenuates, light at a given wavelength. It is an intrinsic property of the species. The SI unit of molar absorption coefficient is the square metre per mole (), but in practice, quantities are usually expressed in terms of M−1⋅cm−1 or L⋅mol−1⋅cm−1 (the latter two units are both equal to ). In older literature, the cm2/mol is sometimes used; 1 M−1⋅cm−1 equals 1000 cm2/mol.
Thermodynamic stateIn thermodynamics, a thermodynamic state of a system is its condition at a specific time; that is, fully identified by values of a suitable set of parameters known as state variables, state parameters or thermodynamic variables. Once such a set of values of thermodynamic variables has been specified for a system, the values of all thermodynamic properties of the system are uniquely determined. Usually, by default, a thermodynamic state is taken to be one of thermodynamic equilibrium.
Transfert thermiquevignette|alt=Autour d'un feu, des mains reçoivent sa chaleur par rayonnement (sur le côté), par convection (au-dessus de ses flammes) et par conduction (à travers un ustensile en métal).|Les modes de transfert thermique ( en anglais pour « rayonnement »). Un transfert thermique, appelé plus communément chaleur, est l'un des modes d'échange d'énergie interne entre deux systèmes, l'autre étant le travail : c'est un transfert d'énergie thermique qui s'effectue hors de l'équilibre thermodynamique.
Renewable heatRenewable heat is an application of renewable energy referring to the generation of heat from renewable sources; for example, feeding radiators with water warmed by focused solar radiation rather than by a fossil fuel boiler. Renewable heat technologies include renewable biofuels, solar heating, geothermal heating, heat pumps and heat exchangers. Insulation is almost always an important factor in how renewable heating is implemented. Many colder countries consume more energy for heating than for supplying electricity.
Thermal management (electronics)All electronic devices and circuitry generate excess heat and thus require thermal management to improve reliability and prevent premature failure. The amount of heat output is equal to the power input, if there are no other energy interactions. There are several techniques for cooling including various styles of heat sinks, thermoelectric coolers, forced air systems and fans, heat pipes, and others. In cases of extreme low environmental temperatures, it may actually be necessary to heat the electronic components to achieve satisfactory operation.
Methane emissionsIncreasing methane emissions are a major contributor to the rising concentration of greenhouse gases in Earth's atmosphere, and are responsible for up to one-third of near-term global heating. During 2019, about 60% (360 million tons) of methane released globally was from human activities, while natural sources contributed about 40% (230 million tons). Reducing methane emissions by capturing and utilizing the gas can produce simultaneous environmental and economic benefits.
Thermodynamic equationsThermodynamics is expressed by a mathematical framework of thermodynamic equations which relate various thermodynamic quantities and physical properties measured in a laboratory or production process. Thermodynamics is based on a fundamental set of postulates, that became the laws of thermodynamics. One of the fundamental thermodynamic equations is the description of thermodynamic work in analogy to mechanical work, or weight lifted through an elevation against gravity, as defined in 1824 by French physicist Sadi Carnot.
Loi du rayonnement de KirchhoffLa loi du rayonnement de Kirchhoff relie l'absorption et l'émission d'un radiateur réel en équilibre thermique. Elle exprime qu'émission et absorption sont liées. Le physicien allemand Gustav Robert Kirchhoff formula cette loi en 1859 au cours de ses recherches sur la spectroscopie. Elle fut la première pierre de l'étude du rayonnement bien avant la théorie des quanta de Max Planck. La luminance monochromatique (unité : ) d'un corps de température est le flux rayonné par unité de surface par ce corps à la fréquence dans la direction d'angle polaire et d'azimut , par unité de fréquence et par unité d'angle solide.
Potentiel thermodynamiqueEn thermodynamique, un potentiel thermodynamique est une fonction d'état particulière qui permet de prédire l'évolution et l'équilibre d'un système thermodynamique, et à partir de laquelle on peut déduire toutes les propriétés (comme les capacités thermiques, le coefficient de dilatation, le coefficient de compressibilité) du système à l'équilibre. Les divers potentiels thermodynamiques correspondent aux divers jeux de variables d'état utilisés dans l'étude des processus thermodynamiques.
Cycle thermodynamiqueUn cycle thermodynamique est une suite de transformations successives qui part d'un système thermodynamique dans un état donné, le transforme et le ramène finalement à son état initial, de manière à pouvoir recommencer le cycle. Au cours du cycle, le système voit sa température, sa pression ou d'autres paramètres d'état varier, tandis qu'il échange du travail et réalise un transfert thermique avec l'extérieur. Il existe de nombreux cycles thermodynamiques, dont voici quelques-uns.
Passive daytime radiative coolingPassive daytime radiative cooling (PDRC) is a renewable cooling method proposed as a solution to global warming of enhancing terrestrial heat flow to outer space through the installation of thermally-emissive surfaces on Earth that require zero energy consumption or pollution. Because all materials in nature absorb more heat during the day than at night, PDRC surfaces are designed to be high in solar reflectance (to minimize heat gain) and strong in longwave infrared (LWIR) thermal radiation heat transfer through the atmosphere's infrared window (8–13 μm) to cool temperatures during the daytime.
Fossil fuel power stationA fossil fuel power station is a thermal power station which burns a fossil fuel, such as coal or natural gas, to produce electricity. Fossil fuel power stations have machinery to convert the heat energy of combustion into mechanical energy, which then operates an electrical generator. The prime mover may be a steam turbine, a gas turbine or, in small plants, a reciprocating gas engine. All plants use the energy extracted from the expansion of a hot gas, either steam or combustion gases.