Here is the complete question
The internal shear force V at a certain section of a steel beam is 80 kN, and the moment of inertia is 64,900,000 . Determine the horizontal shear stress at point H, which is located L = 20 mm below the centriod
The missing image which is the remaining part of this question is attached in the image below.
Answer:
The horizontal shear stress at point H is [tex]\mathbf{\tau_H \approx 42.604 \ N/mm^2}[/tex]
Explanation:
Given that :
The internal shear force V = 80 kN = 80 × 10³ N
The moment of inertia = 64,900,000
The length = 20 mm below the centriod
The horizontal shear stress [tex]\tau[/tex] can be calculated by using the equation:
[tex]\tau = \dfrac{VQ}{Ib}[/tex]
where;
Q = moment of area above or below the point H
b = thickness of the beam = 10 mm
From the centroid ;
Q = [tex]Q_1 + Q_{2}[/tex]
Q = [tex]A_1y_1 + A_{2}y_{2}[/tex]
Q = ( ( 70 × 10) × (55) + ( 210 × 15) (90 + 15/2) ) mm³
Q = ( ( 700) × (55) + ( 3150 ) ( 97.5) ) mm³
Q = ( 38500 + 307125 ) mm³
Q = 345625 mm³
[tex]\tau_H = \dfrac{VQ}{Ib}[/tex]
[tex]\tau_H = \dfrac{80*10^3 * 345625}{64900000*10 }[/tex]
[tex]\tau_H = \dfrac{2.765*10^{10}}{649000000 }[/tex]
[tex]\tau_H = 42.60400616 \ N/mm^2[/tex]
[tex]\mathbf{\tau_H \approx 42.604 \ N/mm^2}[/tex]
The horizontal shear stress at point H is [tex]\mathbf{\tau_H \approx 42.604 \ N/mm^2}[/tex]
