Answer:
The pressure difference is 25.8kPa while the force exerted on the window by air pressure is 3.02 kN
Explanation:
Using the Bernoulli's equation
[tex]P_{in}+\frac{1}{2}\rho v_{in}^2=P_{out}+\frac{1}{2}\rho v_{out}^2[/tex]
Here
Substituting values in the above equation yields
[tex]\Delta P=P_{in}-P_{out}\\\Delta P=\frac{1}{2}\rho (v_{in}^2-v_{out}^2)\\\Delta P=\frac{1}{2}\times 1.29 ( 200^2-0)\\\Delta P=25.8 kPa[/tex]
So the pressure difference is 25.8kPa.
As force is given by
[tex]F=PA\\F=\Delta P A\\[/tex]
Here
[tex]A=L \times W\\A=0.26 \times 0.45\\A=0.117 m^2[/tex]
Now force is
[tex]F=\Delta P A\\F=25.8 \tiems 10^3 \times 0.117\\F=3.02 kN[/tex]
So the force exerted on the window by air pressure is 3.02 kN
