Crear
Descargar
Obtener Plan Académico
Compartir juego
Intégralo en tu plataforma

Puedes integrar el juego en un LMS compatible con LTI 1.1 o LTI 1.3 como Canvas, Moodle, o Blackboard. De esta manera podrás guardar las puntuaciones automáticamente en el libro de calificaciones de esa plataforma.
Descargar
Has superado el número máximo de juegos que puedes integrar en Google Classroom con tu Plan actual.

Para integrar tantos juegos como quieras en Google Classroom, necesitas un Plan Académico o un Plan Comercial.

Has superado el número máximo de juegos que puedes integrar en Microsoft Teams con tu Plan actual.

Para integrar tantos juegos como quieras en Microsoft Teams, necesitas un Plan Académico o un Plan Comercial.

La descarga de juegos es una característica exclusiva para usuarios con un Plan Académico o un Plan Comercial.

Obtén ahora tu Plan Académico o Comercial y comienza a integrar tus juegos en tu LMS, web o blog.

Si lo deseas, puedes descargar un juego de prueba aquí y probar su integración:

%
Anónimo
Anónimo
%
%
%
Has superado el número máximo de juegos que puedes imprimir con tu Plan actual.

Para imprimir tantos juegos como quieras, necesitas un Plan Académico o un Plan Comercial.

Imprime tu juego
Basic Thermodynamics III Lowersixth Science Physics
 

Basic Thermodynamics III Lowersixth Science PhysicsVersión en línea

Test your knowledge on heat engines and entropy.

por YAKILI LMS
1

In Carnot's theorem, all reversible engines operating between the same two temperatures have the same efficiency.

2

The second law says heat flows from cold to hot spontaneously.

3

The coefficient of performance depends on the temperatures of reservoirs.

4

Entropy increase is associated with greater disorder.

5

W = Qh - Qc for a heat engine.

6

The efficiency of a heat engine can be boosted by adding more friction.

7

An ideal gas in a Carnot cycle adheres to the ideal gas law PV = nRT.

8

The first law forbids creation of energy.

9

Entropy decreases in natural spontaneous processes.

10

Carnot efficiency is 1 minus Tc/Th.

11

The total energy is conserved in a cyclic heat engine (first law).

12

An isochoric process involves heat transfer without work.

13

A heat pump delivers work without any heat transfer.

14

The environmental crisis is best understood without reference to thermodynamics.

15

A reversible engine has zero work output.

16

In a heat engine, Qh equals Qc.

17

The entropy of the universe decreases in spontaneous processes.

18

If Th increases with Tc fixed, Carnot efficiency increases.

19

W = Qc - Qh for a heat engine.

20

Heat engines require a hot reservoir and a cold reservoir.

21

COP for cooling is Th/(Th-Tc).

22

The second law allows perpetual motion machines of the second kind.

23

A heat engine can convert all the heat input into work in practice.

24

A Carnot engine is the most efficient possible heat engine between two temperatures.

25

A reversible cycle has ΔS_total = 0.

26

The unit of entropy is joules per kelvin.

27

For a reversible isothermal process, ΔS = Qrev/T.

28

Entropy is not related to disorder in any way.

29

The second law states that no process is 100% efficient in converting heat to work.

30

COP for heating in a heat pump is Th/(Th-Tc).

31

Real engines have efficiencies lower than Carnot due to irreversibilities.

32

The second law implies that entropy of the universe tends to increase.

33

COP for heating is Tc/(Th-Tc).

34

Entropy can remain constant in a reversible process.

35

The working substance in a heat engine undergoes a cyclic process.

36

All processes in nature are reversible.

37

The environmental crisis can be described as an entropy crisis at large scales.

38

Carnot engines are more efficient than any real engine under all conditions.

39

Carnot's theorem applies to any energy conversion device including electrical generators.

40

The efficiency of a Carnot engine depends only on the hot and cold reservoir temperatures.

41

The entropy of an ideal gas is independent of its state variables.

42

An ideal regenerative engine would not beat Carnot efficiency between the same two temperatures.

43

Entropy is a measure of temperature itself.

44

The environmental crisis has nothing to do with entropy principles.

45

The Carnot efficiency can exceed 1 when Th is very high.

46

COP for heating is undefined if Th equals Tc.

47

The entropy of an isolated system never decreases.

48

COP for cooling is Tc/(Th-Tc).

49

A Carnot engine's efficiency equals 1 minus the ratio of the cold reservoir temperature to the hot reservoir temperature (η = 1 - Tc/Th).

50

The coefficient of performance (COP) for a refrigerator is always less than 1.

¿Estás seguro que quieres abandonar la página?

Al abandonar la página perderás el progreso del juego.