Loose Leaf for Vector Mechanics for Engineers: Statics and Dynamics
Loose Leaf for Vector Mechanics for Engineers: Statics and Dynamics
12th Edition
ISBN: 9781259977206
Author: BEER, Ferdinand P., Johnston Jr., E. Russell, Mazurek, David, Cornwell, Phillip J., SELF, Brian
Publisher: McGraw-Hill Education
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Textbook Question
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Chapter 3.1, Problem 3.17P

A plane contains the vectors A and B. Determine the unit vector normal to the plane when A and B are equal to, respectively, (a) 7i + 8j – 2k and 9i – 4j – 5k, (b) 6i – 3j + 9k and –5i + 4j – 3k.

(a)

Expert Solution
Check Mark
To determine

The unit vector perpendicular to the plane.

Answer to Problem 3.17P

The unit vector perpendicular to the plane is (0.428)i+(0.1515)j+(0.891)k.

Explanation of Solution

Write an expression to calculate the unit vector perpendicular to the plane.

λ=A×B|A×B| (I)

Here, λ is the unit vector normal to the plane A and B are two vectors in the plane.

Write an expression to represent first vector.

A=Axi+Ayj+Azk (II)

Here, Ax is the x component of the vector, Ay is the y component of the vector and Az is the z component of the vector.

Write an expression to represent first vector.

B=Bxi+Byj+Bzk (III)

Here, Bx is the x component of the vector, By is the y component of the vector and Bz is the z component of the vector.

Write an expression to calculate the cross product of the vectors.

A×B=|ijkAxAyAzBxByBz| (IV)

Write an expression to calculate the magnitude of the cross product of the vectors.

|A×B|=(A×B)x2+(A×B)y2+(A×B)z2 (V)

Here, (A×B)x is the x component of  A×B, (A×B)y is the y component of (A×B)z and A×B is the z component of A×B.

Conclusion:

Substitute 7i+8j2k for A and 9i4j5k for B in equation (IV) to find A×B.

A×B=(7i+8j2k)×(9i4j5k)=|ijk782945|=(408)i+(18+35)j+(2872)k=(48)i+(17)j+(100)k

Substitute 48 for (A×B)x, 17 for (A×B)y, and 100 for (A×B)z in equation (V) to find |A×B|.

|A×B|=(48)2+(17)2+(100)2=12593

Substitute (48)i+(17)j+(100)k for A×B, and 12593 for |A×B| in equation (I) to find λ.

λ=(48)i+(17)j+(100)k12593=(0.428)i+(0.1515)j+(0.891)k

Thus, the unit vector perpendicular to the plane is (0.428)i+(0.1515)j+(0.891)k.

(b)

Expert Solution
Check Mark
To determine

The unit vector perpendicular to the plane.

Answer to Problem 3.17P

The unit vector perpendicular to the plane is (3)i+(3)j+(1)k19.

Explanation of Solution

Write an expression to calculate the unit vector perpendicular to the plane.

λ=A×B|A×B| (VI)

Write an expression to calculate the cross product of the vectors.

A×B=|ijkAxAyAzBxByBz| (VII)

Write an expression to calculate the magnitude of the cross product of the vectors.

|A×B|=(A×B)x2+(A×B)y2+(A×B)z2 (VIII)

Conclusion:

Substitute 6i3j+9k for A and 5i+4j3k for B in equation (VII) to find A×B.

A×B=(7i+8j2k)×(9i4j5k)=|ijk639543|=(936)i+(45+18)j+(2415)k=(27)i+(27)j+(9)k

Substitute 27 for (A×B)x, 27 for (A×B)y, and 9 for (A×B)z in equation (VIII) to find |A×B|.

|A×B|=(27)2+(27)2+(9)2=919

Substitute (27)i+(27)j+(9)k for A×B, and 919 for |A×B| in equation (VI) to find λ.

λ=(27)i+(27)j+(9)k919=(3)i+(3)j+(1)k19

Thus, the unit vector perpendicular to the plane is (3)i+(3)j+(1)k19.

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Chapter 3 Solutions

Loose Leaf for Vector Mechanics for Engineers: Statics and Dynamics

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