/*! This file is auto-generated */ .wp-block-button__link{color:#fff;background-color:#32373c;border-radius:9999px;box-shadow:none;text-decoration:none;padding:calc(.667em + 2px) calc(1.333em + 2px);font-size:1.125em}.wp-block-file__button{background:#32373c;color:#fff;text-decoration:none} Q34P In Figure 5-40, a crate of mass ... [FREE SOLUTION] | 91Ó°ÊÓ

91Ó°ÊÓ

In Figure 5-40, a crate of mass m=100kgis pushed at constant speed up a frictionless ramp(θ=30.0°)by a horizontal forceF→. (a) What are the magnitudes ofand (b) What are the magnitudes of the force on the crate from the ramp?

Short Answer

Expert verified
  1. The magnitude of F→=566N
  2. The force on the crate from the ramp as normal forceN=1.13×103N

Step by step solution

01

Given information

  • The mass of the crate ism=100kg
  • The angle of inclination by the crate is θ=30°
02

Understanding the concept of force and free body diagram

Newton’s second law states that the product of mass and acceleration is equal to the force acting on the body. All the forces acting on the body can be shown by the free body diagram.

The free-body diagram of a crate on a ramp has to be drawn. By using Newton’s second law, the magnitude of Fand the force on the crate from the ramp which is normal force Ncan be calculated. The crate is moving upward at a constant speed hence the acceleration of the crate is zero. Also, use the concept of components resolution.

Formula:

F→net=ma→ (1)

03

Draw the free body diagram

04

a) Calculate the magnitude of  F→

The crate is moving with constant velocity; hence it has zero acceleration. We can use sign convention according to the motion of the crate as shown in the free body diagram.

Use Newton’s second law along the x-axis as follows:

F³¦´Ç²õθ-mg²õ¾±²Ôθ=0F³¦´Ç²õθ-mg²õ¾±²ÔθF=mg²õ¾±²Ô賦´Ç²õθF=³¾²µ³Ù²¹²Ôθ

Substitute the values of mass, gravitational acceleration, and angle in the above equation to calculate the force.

F=100kg×9.8m/s2tan30°=566N

Hence, the magnitude of the force is 566N.
.

05

b) Calculate the force on the crate from the ramp

Use Newton’s second law along the y axis as,

N-F²õ¾±²Ôθ-mg³¦´Ç²õθ=0N=F²õ¾±²Ôθ+mg³¦´Ç²õθSubstitutethevaluestocalculatethenormalreaction.N=566N×sin30°+100kg×9.8m/s2×cos30°=1.13×103NHence,themagnitudeofthenormalforceis1.13×103N

Unlock Step-by-Step Solutions & Ace Your Exams!

  • Full Textbook Solutions

    Get detailed explanations and key concepts

  • Unlimited Al creation

    Al flashcards, explanations, exams and more...

  • Ads-free access

    To over 500 millions flashcards

  • Money-back guarantee

    We refund you if you fail your exam.

Over 30 million students worldwide already upgrade their learning with 91Ó°ÊÓ!

One App. One Place for Learning.

All the tools & learning materials you need for study success - in one app.

Get started for free

Most popular questions from this chapter

Three astronauts, propelledby jet backpacks, push and guide a 120 kg asteroid toward a processing dock, exerting the forces shown inFig. 5-29, with F1=32N,F2=55N,F3=41N,θ1=30°,and .What is the asteroid’s acceleration(a) in unit-vector notation and as (b) a magnitude and (c) a direction relative to the positive direction of the x axis?

Figure 5-39 shows an overhead view of a 0.0250kglemon half and two of the three horizontal forces that act on it as it is on a frictionless table. Force has a magnitude of 6.00 Nand is at . Force F1has a magnitude of 7.00 N and is at θ1=30.00 . In unit-vector notation, (a) what is the third force if the lemon half is stationary, (b) what is the third force if the lemon half has the constant velocity v =(13.0i^-14.0iÁåœ)m/sand(c) what is the third force if the lemon half has the varying velocity v¯=(13.0iÁåœ-14.0iÁåœ)m/s where tis time?

Two horizontal forces F1→and F2→act on a 4.0kgdisk that slides over frictionless ice, on which an x-ycoordinate system is laid out. Force F1→is in the positive direction of the xaxis and has a magnitude of 7.0N. Force F2→has a magnitude of9.0N. Figure gives the xcomponent Vxof the velocity of the disk as a function of time tduring the sliding. What is the angle between the constant directions of forces F1→and F2→?

(a) An 11.0 kgSalami is supported by a cord that runs to a spring scale, which is supported by a cord hung from the ceiling (Figure-a). What is the reading on the scale, which is marked in weight units? (b) In Figure-bthe salami is supported by a cord that runs around a pulley and to a scale. The opposite end of the scale is attached by a cord to a wall. What is the reading on the scale? (c) In Figure-c the wall has been replaced with second11.0 kg salami, and the assembly is stationary. What is the reading on the scale?

Figure 5-49 shows four penguins that are being playfully pulled along very slippery (frictionless) ice by a curator. The masses of three penguins and the tension in two of the cords are m1=12kg,m3=15kg ,m4=20kg ,role="math" localid="1661176245206" T2=111N , and T4=222N. Find the penguin mass m2that is not given.

See all solutions

Recommended explanations on Physics Textbooks

View all explanations

What do you think about this solution?

We value your feedback to improve our textbook solutions.

Study anywhere. Anytime. Across all devices.