Respuesta :
Answer:
a). Vapour pressure = 2333.141 Pa
b). Percentage of atmospheric pressure = 99 %
c). Percentage of water vapour = 1.4 %
Explanation:
a). From water saturation pressure table,
Vapour pressure of water at 20°C is 17.5 torr
We know, 1 torr = 133.322 Pa
Therefore, 17.5 torr = 2333.141 Pa
Therefore, vapour pressure at 20°C is 2333.141 Pa
b). At 20°C, the pressure at atmospheric unit = 0.0231 atm
= 0.0231 x [tex]10^{5}[/tex] Pa
= 2310 Pa
Therefore, [tex]\frac{2310}{2333.141}[/tex]
= 0.99
Therefore percentage of atmospheric pressure = 0.99 x 100
= 99 %
c). We Know
Relative Humidity (Rh)= [tex]\frac{P_{v}}{P_{saturation}}[/tex]
where [tex]P_{v}[/tex] is vapour pressure
Rh is given as 100% = 1
∴ 1 = [tex]\frac{P_{v}}{P_{saturation}}[/tex]
[tex]P_{v}=P_{saturation}[/tex] = 2333.141 Pa
Now humidity ratio is
[tex]w = \frac{m_{v}}{m_{a}}[/tex] , where [tex]m_{v}[/tex] is mass of vapour
[tex]m_{a}[/tex] is mass of air
[tex]w = 0.622\times \frac{P_{v}}{P_{total}-P_{v}}[/tex]
Let the total pressure be [tex]10^{5}[/tex] Pa
[tex]w = 0.622\times \frac{2333.141}{10^{5}-2333.141}[/tex]
[tex]w = 0.01485[/tex]
Therefore, percentage of water vapour is 0.01485 x 100
= 1.4 %
