Vector Mechanics for Engineers: Statics, 11th Edition
Vector Mechanics for Engineers: Statics, 11th Edition
11th Edition
ISBN: 9780077687304
Author: Ferdinand P. Beer, E. Russell Johnston Jr., David Mazurek
Publisher: McGraw-Hill Education
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Chapter 4.1, Problem 4.24P

4.23 and 4.24 For each of the plates and loadings shown, determine the reaction at A and B.

Chapter 4.1, Problem 4.24P, 4.23 and 4.24 For each of the plates and loadings shown, determine the reaction at A and B. Fig. , example  1

Fig. P4.23

Chapter 4.1, Problem 4.24P, 4.23 and 4.24 For each of the plates and loadings shown, determine the reaction at A and B. Fig. , example  2

Fig. P4.24

(a)

Expert Solution
Check Mark
To determine

The reaction at A and B of the plate shown in P4.24(a).

Answer to Problem 4.24P

The reaction at A is 20.0lb and reaction at B is 50.0lb and is directed along 36.9° above negative x axis in the upward direction.

Explanation of Solution

Take vectors along positive x and y axis are positive.

Let A is the reaction at the point A , B is the reaction at the point B and Bx and By are the component of the reaction B.

The free body diagram is sketched below as figure 1.

Vector Mechanics for Engineers: Statics, 11th Edition, Chapter 4.1, Problem 4.24P , additional homework tip  1

Here, Bx and By are the magnitude of x and y component of reaction B at the point A and B is the magnitude of reaction B.

Write the expression for the moment at B.

MB=F×D (I)

Here, MB is the net moment at B, F is the force, and D is the perpendicular distance between the B and the point where force is experienced.

Above equation implies that net moment at any point is the sum of product of each force acting on the system and perpendicular distance of the force and the point.

The moment at B is due to the reaction A and forces 50lb and 40lb.

Thus, the complete expression of MB is

MB=A(20in.)+(50lb)(16in.)(40lb)(10in.) (II)

Here, MB is the sum of all anticlockwise moment of force at A.

At equilibrium, the sum of the moment acting at A will be zero

MB=A(20in.)+(50lb)(16in.)(40lb)(10in.)=0 (III)

Write the expression for the net force along the x direction.

Fx=Bx+40lb (IV)

Here, Fx is the sum of all force along the x direction.

At equilibrium, the net force along the x direction will be zero.

Fx=Bx+40lb=0 (V)

Write the expression for the net force along the y direction.

Fy=By+A50lb=0 (VI)

Here, Fy is the sum of all force along the y direction.

At equilibrium, the net force along the y direction will be zero.

Fy=By+A50lb=0 (VII)

Let α be the angle that B makes with x axis.

Write the expression for the magnitude of net reaction at B.

B=Bx2+By2 (VIII)

Here, B is the magnitude of net reaction at point B.

Therefore, write the expression for the tanα.

tanα=ByBx (IX)

Calculation:

Rearrange equation (III) to get B.

A(20in.)+(50lb)(16in.)(40lb)(10in.)=0A=+20lb

From figure 1, the reaction A acts in the upward direction.

Rearrange equation (V) to get Bx .

Bx=40lb

The x component of reaction acts in the x direction.

Rearrange equation (VII) to get By.

By=50lbA

Substitute 20.0lb for A in above equation to get By.

By=50lb20.0lb=30.0lb

Substitute 40lb for Bx and 30.0lb for By in the equation (VIII) to get B.

B=(40lb)2+(30lb)2=50.0lb

Substitute 40lb for Bx and 30.0lb for By in the equation (IX) to get α.

tanα=30.0lb40.0lbα=36.9°

Therefore, the reaction at A is 20.0lb and reaction at B is 50.0lb and is directed along 36.9° above negative x axis in the upward direction.

(b)

Expert Solution
Check Mark
To determine

The reaction at A and B of the plate shown in P4.23(b).

Answer to Problem 4.24P

The reaction at A is 23.1lb and is directed 60.0° above positive x axis and reaction at B is 59.6lb and is directed 30.2° above negative x axis.

Explanation of Solution

Take vectors along positive x and y axis are positive.

Let A is the reaction at the point A , B is the reaction at the point B and Bx and By are the component of the reaction B.

The free body diagram is sketched below as figure 1.

Vector Mechanics for Engineers: Statics, 11th Edition, Chapter 4.1, Problem 4.24P , additional homework tip  2

Here, Bx and By are the magnitude of x and y component of reaction B at the point A and B is the magnitude of reaction B.

Write the expression for the moment at B.

MB=F×D (I)

Here, MB is the net moment at B, F is the force, and D is the perpendicular distance between the B and the point where force is experienced.

Above equation implies that net moment at any point is the sum of product of each force acting on the system and perpendicular distance of the force and the point.

The moment at B is due to the y component of reaction A and forces 50lb and 40lb.

Thus, the complete expression of MB is

MB=(Acos30°)(20in.)+(50lb)(16in.)(40lb)(10in.) (II)

Here, MB is the sum of all anticlockwise moment of force at A.

At equilibrium, the sum of the moment acting at A will be zero

MB=(Acos30°)(20in.)+(50lb)(16in.)(40lb)(10in.)=0 (III)

Write the expression for the net force along the x direction.

Fx=Asin30°+Bx+40lb (IV)

Here, Fx is the sum of all force along the x direction.

At equilibrium, the net force along the x direction will be zero.

Fx=Asin30°+Bx+40lb=0 (V)

Write the expression for the net force along the y direction.

Fy=By+Acos30°50lb (VI)

Here, Fy is the sum of all force along the y direction.

At equilibrium, the net force along the y direction will be zero.

Fy=By+Acos30°50lb=0 (VII)

Let α be the angle that B makes with x axis.

Write the expression for the magnitude of net reaction at B.

B=Bx2+By2 (VIII)

Here, B is the magnitude of net reaction at point B.

Therefore, write the expression for the tanα.

tanα=ByBx (IX)

Calculation:

Rearrange equation (III) to get B.

(Acos30°)(20in.)+(50lb)(16in.)(40lb)(10in.)=0A=23.1lb

From figure 1, the reaction A is directed at 60° above positive x axis

Rearrange equation (V) to get Bx .

Bx=40lbAsin30°

Substitute 23.09lb for A in above equation to get Bx.

Bx=40lb(23.09lb)sin30°=51.55lb

The x component of reaction B acts in the x direction.

Rearrange equation (VII) to get By.

By=50lbAcos30°

Substitute 23.09lb for A in above equation to get By.

By=50lb(23.09lb)cos30°=30lb

Substitute 51.55lb for Bx and 30lb for By in the equation (VIII) to get B.

B=(51.55lb)2+(30lb)2=59.64lb

Substitute 51.55lb for Bx and 30lb for By in the equation (IX) to get α.

tanα=30lb51.55lbα=30.2°

Therefore, the reaction at A is 23.1lb and is directed 60.0° above positive x axis and reaction at B is 59.6lb and is directed 30.2° above negative x axis.

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Chapter 4 Solutions

Vector Mechanics for Engineers: Statics, 11th Edition

Ch. 4.1 - 4.7 A T-shaped bracket supports the four loads...Ch. 4.1 - 4.8 For the bracket and loading of Prob. 4.7,...Ch. 4.1 - Three loads are applied as shown to a light beam...Ch. 4.1 - 4.10 Three loads are applied as shown to a light...Ch. 4.1 - 4.11 For the beam of Prob. 4.10, determine the...Ch. 4.1 - For the beam of Sample Prob. 4.2, determine the...Ch. 4.1 - The maximum allowable value of each of the...Ch. 4.1 - For the beam and loading shown, determine the...Ch. 4.1 - Prob. 4.15PCh. 4.1 - Prob. 4.16PCh. 4.1 - Prob. 4.17PCh. 4.1 - Prob. 4.18PCh. 4.1 - The bracket BCD is hinged at C and attached to a...Ch. 4.1 - The ladder AB, of length L and weight W, can be...Ch. 4.1 - 4.21 The 40-ft boom AB weighs 2 kips; the distance...Ch. 4.1 - A lever AB is hinged at C and attached to a...Ch. 4.1 - 4.23 and 4.24 For each of the plates and loadings...Ch. 4.1 - 4.23 and 4.24 For each of the plates and loadings...Ch. 4.1 - A rod AB, hinged at A and attached at B to cable...Ch. 4.1 - Fig. P4.25 and P4.26 4.26 A rod AB, hinged at A...Ch. 4.1 - Prob. 4.27PCh. 4.1 - Determine the reactions at A and C when (a) = 0,...Ch. 4.1 - Prob. 4.29PCh. 4.1 - Prob. 4.30PCh. 4.1 - Neglecting friction, determine the tension in...Ch. 4.1 - Fig. P4.31 and P4.32 4.32 Neglecting friction,...Ch. 4.1 - PROBLEM 4.33 A force P of magnitude 90 lb is...Ch. 4.1 - PROBLEM 4.34 Solve Problem 4,33 for a = 6 in,...Ch. 4.1 - Bar AC supports two 400-N loads as shown. 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The...Ch. 4.1 - Fig. P4.48 and P4.49 4.49 For the beam and loading...Ch. 4.1 - Prob. 4.50PCh. 4.1 - A uniform rod AB with a length of l and weight of...Ch. 4.1 - Rod AD is acted upon by a vertical force P at end...Ch. 4.1 - A slender rod AB with a weigh of W is attached to...Ch. 4.1 - 4.54 and 4.55 A vertical load P is applied at end...Ch. 4.1 - 4.54 and 4.55 A vertical load P is applied at end...Ch. 4.1 - A collar B with a weight of W can move freely...Ch. 4.1 - A 400-lb weight is attached at A to the lever...Ch. 4.1 - Prob. 4.58PCh. 4.1 - Eight identical 500 750-mm rectangular plates,...Ch. 4.1 - Prob. 4.60PCh. 4.2 - A 500-lb cylindrical tank, 8 ft in diameter, is to...Ch. 4.2 - 4.62.Determine the reactions at A and B when a =...Ch. 4.2 - Prob. 4.63PCh. 4.2 - Prob. 4.64PCh. 4.2 - Determine the reactions at B and C when a = 30 mm.Ch. 4.2 - Prob. 4.66PCh. 4.2 - Determine the reactions at B and D when b = 60 mm....Ch. 4.2 - For the frame and loading shown, determine the...Ch. 4.2 - A 50-kg crate is attached to the trolley-beam...Ch. 4.2 - One end of rod AB rests in the corner A and the...Ch. 4.2 - For the boom and loading shown, determine (a) the...Ch. 4.2 - Prob. 4.72PCh. 4.2 - Prob. 4.73PCh. 4.2 - Prob. 4.74PCh. 4.2 - Rod AB is supported by a pin and bracket at A and...Ch. 4.2 - Solve Prob. 4.75, assuming that the 170-N force...Ch. 4.2 - Prob. 4.77PCh. 4.2 - Using the method of Sec. 4.2B, solve Prob. 4.22....Ch. 4.2 - Knowing that = 30, determine the reaction (a) at...Ch. 4.2 - Prob. 4.80PCh. 4.2 - Determine the reactions at A and B when = 50....Ch. 4.2 - Determine the reactions at A and B when = 80.Ch. 4.2 - Rod AB is bent into the shape of an arc of circle...Ch. 4.2 - A slender rod of length L is attached to collars...Ch. 4.2 - Prob. 4.85PCh. 4.2 - Prob. 4.86PCh. 4.2 - A slender rod BC with a length of L and weight W...Ch. 4.2 - A thin ring with a mass of 2 kg and radius r = 140...Ch. 4.2 - Prob. 4.89PCh. 4.2 - Prob. 4.90PCh. 4.3 - Two tape spools are attached to an axle supported...Ch. 4.3 - A 12-m pole supports a horizontal cable CD and is...Ch. 4.3 - A 20-kg cover for a roof opening is hinged at...Ch. 4.3 - END-OF-SECTION PROBLEMS 4.91 Two transmission...Ch. 4.3 - Solve Prob. 4.91, assuming that the pulley rotates...Ch. 4.3 - A small winch is used to raise a 120-lb load. Find...Ch. 4.3 - 4.94 A 4 × 8-ft sheet of plywood weighing 34 lb...Ch. 4.3 - A 250 400-mm plate of mass 12 kg and a...Ch. 4.3 - Solve Prob. 4.95 for = 60. 4.95 A 250 400-mm...Ch. 4.3 - 4.97 The 20 × 20-in. square plate shown weighs 56...Ch. 4.3 - 4.98 The 20 × 20-in. square plate shows weighs 56...Ch. 4.3 - An opening in a floor is covered by a 1 1.2-m...Ch. 4.3 - PROBLEM 4.100 Solve Problem 4.99, assuming that...Ch. 4.3 - PROBLEM 4.101 Two steel pipes AB and BC, each...Ch. 4.3 - PROBLEM 4.102 For the pipe assembly of Problem...Ch. 4.3 - PROBLEM 4.103 The 24-lb square plate shown is...Ch. 4.3 - PROBLEM 4.104 The table shown weighs 30 lb and has...Ch. 4.3 - PROBLEM 4.105 A 10-ft boom is acted upon by the...Ch. 4.3 - PROBLEM 4.106 The 6-m pole ABC is acted upon by a...Ch. 4.3 - PROBLEM 4.107 Solve Problem 4.106 for a = 1.5 m....Ch. 4.3 - Prob. 4.108PCh. 4.3 - Prob. 4.109PCh. 4.3 - Prob. 4.110PCh. 4.3 - PROBLEM 4.111 A 48-in. boom is held by a...Ch. 4.3 - PROBLEM 4.112 Solve Problem 4.111, assuming that...Ch. 4.3 - PROBLEM 4.114 The bent rod ABEF is supported by...Ch. 4.3 - Prob. 4.114PCh. 4.3 - The horizontal platform ABCD weighs 60 lb and...Ch. 4.3 - PROBLEM 4.116 The lid of a roof scuttle weighs 75...Ch. 4.3 - PROBLEM 4.117 A 100-kg uniform rectangular plate...Ch. 4.3 - Solve Prob. 4.117, assuming that cable DCE is...Ch. 4.3 - PROBLEM 4.119 Solve Prob. 4.113, assuming that the...Ch. 4.3 - PROBLEM 4.120 Solve Prob. 4.115, assuming that the...Ch. 4.3 - PROBLEM 4.121 The assembly shown is used to...Ch. 4.3 - PROBLEM 4.122 The assembly shown is welded to...Ch. 4.3 - 4.123 The rigid L-shaped member ABC is supported...Ch. 4.3 - Prob. 4.124PCh. 4.3 - The rigid L-shaped member ABF is supported by a...Ch. 4.3 - Solve Prob. 4.125, assuming that the load at C has...Ch. 4.3 - Three rods are welded together to form a corner...Ch. 4.3 - Prob. 4.128PCh. 4.3 - Frame ABCD is supported by a ball-and-socket joint...Ch. 4.3 - Prob. 4.130PCh. 4.3 - Prob. 4.131PCh. 4.3 - PROBLEM 4.132 The uniform 10kg rod AB is supported...Ch. 4.3 - The frame ACD is supported by ball-and-socket...Ch. 4.3 - Solve Prob. 4.133, assuming that cable GBH is...Ch. 4.3 - Prob. 4.135PCh. 4.3 - Prob. 4.136PCh. 4.3 - Prob. 4.137PCh. 4.3 - The pipe ACDE is supported by ball-and-socket...Ch. 4.3 - Solve Prob. 4.138, assuming that wire DF is...Ch. 4.3 - Two 2 4-ft plywood panels, each with a weight of...Ch. 4.3 - Solve Prob. 4.140, subject to the restriction that...Ch. 4 - A 3200-lb forklift truck is used to lift a 1700-lb...Ch. 4 - The lever BCD is hinged at C and attached to a...Ch. 4 - Determine the reactions at A and B when (a) h =0,...Ch. 4 - Neglecting friction and the radius of the pulley,...Ch. 4 - PROBLEM 4.146 Bar AD is attached at A and C to...Ch. 4 - PROBLEM 4.147 A slender rod AB, of weight W, is...Ch. 4 - PROBLEM 4.148 Determine the reactions at A and B...Ch. 4 - For the frame and loading shown, determine the...Ch. 4 - PROBLEM 4.150 A 200-mm lever and a 240-mm-diameter...Ch. 4 - The 45-lb square plate shown is supported by three...Ch. 4 - The rectangular plate shown weighs 75 lb and is...Ch. 4 - A force P is applied to a bent rod ABC, which may...
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