Determine the normal reaction on both wheels and the force

Your videos have been a great help, but this one is pretty convoluted. I approached this problem as a Three-Force Member. The lines of action from the weight and normal force at A intersect at a point. Therefore, the line of action of force B must also intersect at this point. We make some triangles to find the x and y distances to determine the angle of the force then use the weight calculation and the angle we found to determine the rest.

Langustaaa

I want to know why there is not vertical component at the wheel

父愛如山黎明卿

With all due respect to the video creator, this explanation is incorrect. Part of your answer is finding the angle of the forces at B, so you cannot assume it is 60. I am not sure if his processes are incorrect other than that though. The way you find the force at A is by using the moment equation at point B. The moment will be 0 and you use the x and y components of the weight and A force to set up an equation which allows you to find A.

allison

can you give me an explanation of why did let the force exerted on the grip as parallel to length of the box

Mohamedezzeldin-kh

why didnt we use the (summation) Fx=0 equation to get the x component of the unknown force P or use the y component of the same force to determine P when we know the angle it makes with the vertical, i.e. 30 degrees ?

distilledleemupaani

U are legend but some hints
Take 60 degree horizontal line straight up where .2m is now .2m is 90 degree with line adjacent to 60 degree mean right triangle soo infront of 60 deg is opposite side other is adjacent
Find adjacent
Subtract from .4
.4 is straight line without bend given on other top corner
Soo .2 & subtracted lenth are x and y components of force
Find angle opp/adj about 54.46
Now you have force components
Bxcos & bysin
Now come down Don't forget add .1 when determine vertically distance to wieght this side angle is 60 other side it will become 30 soo .4cose30
Is lenth from out side the tyre to vertically w add .1 which is inside tyre lenth from centre
Now
Force bx is .4+.5.+.4 far away
By is .2 minus .1÷cos30

ImranKhan-tuix

I don’t get where you got that the force is 60 degrees off the X axis

brown_note

This guy just reads answers off Chegg.

LtKamarov

A free body diagram would've helped

mahmoudreda