contestada

A system undergoes a two-step process. In step 1, it absorbs 50. J of heat at constant volume. In step 2, it releases 5J of heat at 1 atm. as it returned to its original internal energy. Find the change in the volume of the system during the second step and identify it as an expansion or compression.

Respuesta :

Answer:

[tex]\Delta V=0.44\ L.[/tex]

Expansion.

Explanation:

In step 1:

Since, volume is constant.

Therefore, Work Done , w=0.

q= 50\ J.

We know equation of thermodynamics,

[tex]\Delta U=q+w=0+50=50\ J[/tex]  

Step 2:

Heat is released therefore, [tex]q'=-5\ J.[/tex]

As system returned to its initial state.

Therefore, [tex]\Delta U'=-50\ J.[/tex]

So, Work Done, [tex]w'=\Delta U'-q'=-50 -(-5)\ J=-45\ J.[/tex]

Also, [tex]w'=P\times \Delta V=101325\ atm\times \Delta V.[/tex]

Therefore, [tex]\Delta V=0.44\ L.[/tex]

Since, [tex]\Delta V[/tex] is positive.

Therefore, it is expansion.

Hence, this is the required solution.

Otras preguntas

ACCESS MORE