A belt drive was designed to transmit the power of P=7.5 kW with the velocity v=10m/s. The tensile load of the tight side is twice of that of loose side, F1= 2F2. Please calculate the F1, Fe, and Fo.

Question

contestada

Respuesta :

ACCESS MORE

AbsorbingMan AbsorbingMan · Answer 1 · 2019-07-29T10:13:45+02:00

Answer:

F₁ = 1500 N

F₂ = 750 N

[tex]F_{e}[/tex] = 500 N

Explanation:

Given :

Power transmission, P = 7.5 kW

= 7.5 x 1000 W

= 7500 W

Belt velocity, V = 10 m/s

F₁ = 2 F₂

Now we know from power transmission equation

P = ( F₁ - F₂ ) x V

7500 = ( F₁ - F₂ ) x 10

750 = F₁ - F₂

750 = 2 F₂ - F₂ ( ∵F₁ = 2 F₂ )

∴F₂ = 750 N

Now F₁ = 2 F₂

F₁ = 2 x F₂

F₁ = 2 x 750

F₁ = 1500 N , this is the maximum force.

Therefore we know,

[tex]F_{max}[/tex] = 3 x [tex]F_{e}[/tex]

where [tex]F_{e}[/tex] is centrifugal force

[tex]F_{e}[/tex] = [tex]F_{max}[/tex] / 3

= 1500 / 3

= 500 N