Calculating Friction Force on a Resting Ladder: A Physics Problem

  • Thread starter Thread starter TyErd
  • Start date Start date
  • Tags Tags
    Friction Physics
AI Thread Summary
The discussion revolves around calculating the horizontal force (P) required to move a 30kg ladder resting on a rough floor with a static friction coefficient of 0.9. Participants are attempting to solve the problem using equilibrium equations for horizontal and vertical components, as well as moments about point B. There is confusion regarding the calculations, with initial answers ranging from 310 N to 11.25 N, and later adjustments suggesting a final answer of 157.5 N after considering the angle of the ladder. The importance of correctly applying trigonometric functions for the components of force is emphasized, and participants are encouraged to share their work for verification. The conversation highlights the complexity of the problem and the need for careful analysis in physics calculations.
TyErd
Messages
297
Reaction score
0

Homework Statement


The uniform 30kg ladder rests on the rough floor for which the coefficient of static friction is 0.9 and against the smooth wall at B.

Determine the horizontal force P the man must exert on the ladder in order to cause it to move.


Homework Equations


F= friction coefficient* Normal force

equilibrium equations for horizontal and vertical components and moments (torque).


The Attempt at a Solution



I have attempted the solution but I have no answer to compare with so I am not sure if I am correct or not.
 

Attachments

  • lpo.jpg
    lpo.jpg
    7.9 KB · Views: 485
Physics news on Phys.org


anyone...
 
Last edited:


i got an answer of 310 is that right?
 


is the question too difficult to answer or...
 


If no going wrong, my answer is 11.25 N .:smile:

But next time better post your solution because no guys will calculate for you.:redface:

Thanks!
 


i think that's wrong, has to be higher because the weight force alone is 300N.
 


what i did was made horizontal components equal zero vertical components equal zero and then moment about B equal zero. but i still don't get an appropriate answer.
 


:smile:emh...because you just want to to find out the the force horizontal acting on the point B and that is the force for P,so the answer what i get is 112.5 N before is wrong.

I am also no sure for it, i just think about like that and get the answer.:shy:
 


But if you know the answer why don't try to show up the work and let the people to check about it because normally no people want to to calculate for you...:redface:
 
  • #10


y components: N_a - 300 = 0, thus N_a = 300N
x components: N_b + p - F_a = 0
N_b + p - (0.9*300) = 0

moment at B: 300(1.8) - 300(0.9) - 270 (2.4) + p(1.2) = 0, which gives an answer of 315 for P. which i don't think is right considering the weight force and friction.
 
  • #11


"
TyErd said:
y components: N_a - 300 = 0, thus N_a = 300N
x components: N_b + p - F_a = 0
N_b + p - (0.9*300) = 0

moment at B: 300(1.8) - 300(0.9) - 270 (2.4) + p(1.2) = 0, which gives an answer of 315 for P. which i don't think is right considering the weight force and friction.
"

Can you tell me have you considered the delta,θ ? And when you want find up the force of x,y components, you should apply cosine and sine. :shy:
 
  • #12


umm do you have to? is there a vertical component of P?
 
  • #13


xiaoB said:
I have to notice that what i have done doesn't mean right,just want to tell how i sum of moment of B in direction x .

After my solution you better check it by yourself because i am not sure what i applied at component x mean cos and sin. :smile:

The angle is 53.13o

(1)The force of P is plus the force acting on the point B equal to the Friction force.

(2)Therefore,to find up the force acting lie on the wall applied sum of moment of B of direction x = 0:

-3xsin53.13xFB+1.5x300xcos53.13o=0

FB=112.5N

(3)Fp=Ff-FB

ans: Fp=270-112.5=157.5 N

:frown: Sorry ! i have changed it so much times because i have checked it again and again.Actually, you are right but just not think above the angle.

Very sorry for you! :redface:
 
  • #14


tyerd, are you doing eng1040 too :P
 

Similar threads

Normal force at the base of a ladder
Replies
20
Views
2K
Force of the wall against the ladder is from static friction?
Replies
6
Views
3K
Angle of Inclination Homework: Find θ at Ladder's Verge of Slipping
Replies
9
Views
2K
Force of the Ladder on a Wall Torque
Replies
5
Views
3K
Static equilibrium | Uniform sphere on incline | Determining friction
Replies
43
Views
2K
Direction of the normal force when acting on a tilted object
Replies
9
Views
3K
Ladder Leaning against wall -- find the coefficient of friction
Replies
5
Views
3K
Verification of a ladder aginst a wall force
Replies
12
Views
1K
Static Friction -- A ladder leaning against a wall starts to slip
Replies
13
Views
6K
Friction problem of a block sandwiched between 2 surfaces
Replies
6
Views
1K

Hot Threads

Recent Insights

Back
Top