b) N=mg
c) F.x=F.T-F.D
d) N=13*9.8=127.4 N
e) F=85-96=-11 N
f) Newton's second law says a=F/m=-11/13=-0.85 N. Negative acceleration means that the cart will go to the left.
Answer:
Part b)
[tex]F_{net} = N - mg = 0[/tex]
Part c)
[tex]F_t - T_d = ma[/tex]
Part d)
N = 127.4 N
Part e)
[tex]F_x = - 11\hat i[/tex]
Part f)
[tex]a = -0.85 \hat i[/tex]
Explanation:
Part a)
FBD for the given block is as following
here normal force is counter balanced by weight while in x direction it will have some net external force
Part b)
For Y direction object is not accelerating
So here the force is balanced
[tex]F_{net} = N - mg = 0[/tex]
Part c)
For X direction all the forces are due to Trent and Dyson
So here the forces are given as
[tex]F_t - F_d = F_{net}[/tex]
Part d)
Form the equation of net force along Y direction we have
[tex]N - mg = 0[/tex]
[tex]N = mg[/tex]
[tex]N = (13)(9.81) = 127.5 N[/tex]
Part e)
From the above equation of net force along x direction we will have
[tex]F_x = F_t - F_d[/tex]
[tex]F_x = 85 - 96[/tex]
[tex]F_x = -11 \hat i N[/tex]
Part f)
From net force in x direction we know
[tex]F_x = ma_x[/tex]
[tex]-11\hat i = 13 a_x[/tex]
[tex]a_x = - 0.85 \hat i[/tex]
