cracking cycle efficiency - перевод на русский
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cracking cycle efficiency - перевод на русский

THEORETICAL THERMODYNAMIC CYCLE PROPOSED BY NICOLAS LÉONARD SADI CARNOT IN 1824 AND EXPANDED UPON BY OTHERS IN THE 1830S AND 1840S
Carnot Cycle; Carnot efficiency; Carnot-cycle; Carnot refrigeration; Carnot rule; Engine cycle
  • Figure 5}}: A visualization of a Carnot cycle
  • Figure 4}}: A Carnot cycle taking place between a hot reservoir at temperature ''T''<sub>H</sub> and a cold reservoir at temperature ''T''<sub>C</sub>.
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  • Figure 2}}: A Carnot cycle as an idealized thermodynamic cycle performed by a heat engine (Carnot heat engine), illustrated on a TS (temperature T–entropy S) diagram. The cycle takes place between a hot reservoir at temperature ''T''<sub>H</sub> and a cold reservoir at temperature ''T''<sub>C</sub>. The vertical axis is the system temperature, the horizontal axis is the system entropy.

A-to-B (isothermal expansion), B-to-C (isentropic expansion), C-to-D (isothermal compression), D-to-A (isentropic compression).
  • Figure 1}}: A Carnot cycle illustrated on a [[PV diagram]] to illustrate the work done.

1-to-2 (isothermal expansion), 2-to-3 (isentropic expansion), 3-to-4 (isothermal compression), 4-to-1 (isentropic compression).
  • ''Q''<sub>C</sub>}}, is the amount of energy exchanged between the system and the cold reservoir. The area in white, ''W'', is the amount of work energy exchanged by the system with its surroundings. The amount of heat exchanged with the hot reservoir is the sum of the two. If the system is behaving as an engine, the process moves clockwise around the loop, and moves counter-clockwise if it is behaving as a refrigerator. The efficiency to the cycle is the ratio of the white area (work) divided by the sum of the white and red areas (heat absorbed from the hot reservoir).<br>
Q <sub>C</sub> (energy lost to the cold reservoir) can be seen as a direct subtraction, or expressed as the sum of a negative quantity, which can lead to different conventions.
  • Figure 6}}: A real engine (left) compared to the Carnot cycle (right). The entropy of a real material changes with temperature. This change is indicated by the curve on a ''T''–''S'' diagram. For this figure, the curve indicates a vapor-liquid equilibrium (''See [[Rankine cycle]]''). Irreversible systems and losses of energy (for example, work due to friction and heat losses) prevent the ideal from taking place at every step.

cracking cycle efficiency      

нефтегазовая промышленность

продолжительность непрерывного рабочего цикла крекинг-установки

thermal cracking         
  • Schematic flow diagram of a fluid catalytic cracker
THERMAL OR CATALYTIC DECOMPOSITION OF A COMPOUND SUCH AS A HYDROCARBON INTO CHEMICAL SPECIES OF SMALLER MOLECULAR WEIGHT
Hydrocracking; Hydrocracker; Thermal cracking; Catalytic hydrocracking; FCCU; Cracking of petroleum; Petroleum cracking; Hydrogen catalytic cracking; Unicracking; Steam Cracking; Chemical cracking; Pyrolytic Cracking; Crack (chemistry); Hydrocarbon cracking; Cracking of hydrocarbons

общая лексика

термический крекинг

нефтегазовая промышленность

термическое растрескивание

hydrocracking         
  • Schematic flow diagram of a fluid catalytic cracker
THERMAL OR CATALYTIC DECOMPOSITION OF A COMPOUND SUCH AS A HYDROCARBON INTO CHEMICAL SPECIES OF SMALLER MOLECULAR WEIGHT
Hydrocracking; Hydrocracker; Thermal cracking; Catalytic hydrocracking; FCCU; Cracking of petroleum; Petroleum cracking; Hydrogen catalytic cracking; Unicracking; Steam Cracking; Chemical cracking; Pyrolytic Cracking; Crack (chemistry); Hydrocarbon cracking; Cracking of hydrocarbons

['haidrə(u)krækiŋ]

общая лексика

гидрогенолиз

гидрокрекинг

деструктивная гидрогенизация

существительное

специальный термин

гидрокрекинг

крекинг в водородной среде

Определение

thermal efficiency
¦ noun the efficiency of a heat engine measured by the ratio of the work done by it to the heat supplied to it.

Википедия

Carnot cycle

A Carnot cycle is an ideal thermodynamic cycle proposed by French physicist Sadi Carnot in 1824 and expanded upon by others in the 1830s and 1840s. By Carnot's theorem, it provides an upper limit on the efficiency of any classical thermodynamic engine during the conversion of heat into work, or conversely, the efficiency of a refrigeration system in creating a temperature difference through the application of work to the system.

In a Carnot cycle, a system or engine transfers energy in the form of heat between two thermal reservoirs at temperatures T H {\displaystyle T_{H}} and T C {\displaystyle T_{C}} (referred to as the hot and cold reservoirs, respectively), and a part of this transferred energy is converted to the work done by the system. The cycle is reversible, and there is no generation of entropy. (In other words, entropy is conserved; entropy is only transferred between the thermal reservoirs and the system without gain or loss of it.) When work is applied to the system, heat moves from the cold to hot reservoir (heat pump or refrigeration). When heat moves from the hot to the cold reservoir, the system applies work to the environment. The work W {\displaystyle W} done by the system or engine to the environment per Carnot cycle depends on the temperatures of the thermal reservoirs and the entropy transferred from the hot reservoir to the system Δ S {\displaystyle \Delta S} per cycle such as W = ( T H T C ) Δ S = ( T H T C ) Q H T H {\displaystyle W=(T_{H}-T_{C})\Delta S=(T_{H}-T_{C}){\frac {Q_{H}}{T_{H}}}} , where Q H {\displaystyle Q_{H}} is heat transferred from the hot reservoir to the system per cycle.

Как переводится cracking cycle efficiency на Русский язык