FE Exam Review - FE Exam - Static Friction

Good question.
Since we are doing the analysis for the finding the Force needed to keep the box from sliding down, we can conclude the direction of motion is "sliding down". So the friction force would point upward.

I was thinking the same

Would it be? I think I made it a habit to always translate the axes along the incline for x and perpendicular to the incline for y. I may have overdone it for this question.

Yes not always. In this case, the normal force would have to counter act the weight component in the y’ direction (wcos(thetha)) and the applied force component along y’ (Fy’). So the normal force N = wcos(thetha) + Fy’

I underestimated the question earlier🙂, I solved it without considering the effect of the 'F' on the reaction force. Thank you for this. Also, we could have resolved the forces onto the regular X and Y axis.

Hello Ahmad, thank you for attempting the question. When solving for the force required to move the box up the incline, I got a value F = 474.27 N and N = 661.93 N. I am not 100% sure this is correct though.

@@directhubfeexam I got the same answer, but Farooq mentioned that the friction force is upward. In that case, the answer will be different.