Spectre5
Nov14-04, 03:35 AM
I just want to make sure I am doing this correctly...
a 2000 cm^3 container holds 0.10 mol of heliuum gas at 300 C. How much work must be done to compress the gas to 1000 cm^3 at
a) constant pressure
b) constant temperature
So...
2000 cm^3 = .002 m^3
1000 cm^3 = .001 m^3
300 Celsius = 573 K
W=-\int_{V_1}^{v_2}{pdv}
where W is work, v is volume and p is pressure....this is the work that the environment does on the system (that is why the negative sign is in front...I know that most books present the work the gas does on the environment, but this book is a little weird I guess)
Furthermore, lets use the ideal gas law to calculate the initial pressure..
PV=nRT
P(.002)=(.1)(8.31)(573)
P=238.082 KPa
So...
a) Constant pressure
W=-\int_{V_1}^{v_2}{pdv}
W=-\int_{.002}^{.001}{238.082\times 10^3 dv}
W=238 J
b) Constant temperature
W=-\int_{V_1}^{v_2}{pdv}
W=-\int_{V_1}^{v_2}{(\frac{nRT}{V})dv}
W=-\int_{.002}^{.001}{(\frac{(.1)(8.31)(573)}{V})dv}
W=330 J
Do these seem correct?
Thanks for any input..it is much appreciated
a 2000 cm^3 container holds 0.10 mol of heliuum gas at 300 C. How much work must be done to compress the gas to 1000 cm^3 at
a) constant pressure
b) constant temperature
So...
2000 cm^3 = .002 m^3
1000 cm^3 = .001 m^3
300 Celsius = 573 K
W=-\int_{V_1}^{v_2}{pdv}
where W is work, v is volume and p is pressure....this is the work that the environment does on the system (that is why the negative sign is in front...I know that most books present the work the gas does on the environment, but this book is a little weird I guess)
Furthermore, lets use the ideal gas law to calculate the initial pressure..
PV=nRT
P(.002)=(.1)(8.31)(573)
P=238.082 KPa
So...
a) Constant pressure
W=-\int_{V_1}^{v_2}{pdv}
W=-\int_{.002}^{.001}{238.082\times 10^3 dv}
W=238 J
b) Constant temperature
W=-\int_{V_1}^{v_2}{pdv}
W=-\int_{V_1}^{v_2}{(\frac{nRT}{V})dv}
W=-\int_{.002}^{.001}{(\frac{(.1)(8.31)(573)}{V})dv}
W=330 J
Do these seem correct?
Thanks for any input..it is much appreciated