Physics For Scientists And Engineers With Modern Physics, 9th Edition, The Ohio State University
Physics For Scientists And Engineers With Modern Physics, 9th Edition, The Ohio State University
9th Edition
ISBN: 9781305372337
Author: Raymond A. Serway | John W. Jewett
Publisher: Cengage Learning
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Chapter 11, Problem 3P

(a)

To determine

The product of vectors A and B.

(a)

Expert Solution
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Answer to Problem 3P

The product of vectors A and B is 7.00k^_.

Explanation of Solution

Write the expression for cross product of two vectors A and B as.

  A×B=|i^j^k^AxAyAzBxByBz|=|AyAzByBz|i^+|AzAxBzBx|j^+|AxAyBxBy|k^

Simplify the above obtained expression as.

  A×B=(AyBzAzBy)i^+(AzBxAxBz)j^+(AxByAyBx)k^                        (I)

Here, Ax is x-component of A, Ay is y-component of A, Az is z-component of A, Bx is x-component of B, By is y-component of B, Bz is z-component of B.

Conclusion:

Substitute 1 for Ax, 2 for Ay, 0 for Az, 2 for Bx, 3 for By, 0 for Bz in equation (I).

  A×B=((2)(0)(0)(3))i^+((1)(0)(2)(0))j^+((1)(3)(2)(3))k^=7.00k^

Thus, the product of vectors A and B is 7.00k^_.

(b)

To determine

The angle between vectors A and B.

(b)

Expert Solution
Check Mark

Answer to Problem 3P

The angle between vectors A and B is 60.3°_.

Explanation of Solution

Write the expression for angle between two vectors as.

  θ=sin1(|A×B|AB)                                                                                        (II)

Here, |A×B| is magnitude of A×B vector, A is magnitude of vector A and B is magnitude of vector B.

Write the expression for magnitude of A×B vector as.

  |A×B|=((AB)x)2+((AB)y)2+((AB)z)2                                              (III)

Here, (AB)x is x-component of (A×B), (AB)y is y-component of (A×B), (AB)z is z-component of (A×B).

Write the expression for magnitude of A vector as.

  A=(Ax)2+(Ay)2+(Az)2                                                                        (IV)

Here, Ax is x-component of A, Ay is y-component of A, Az is z-component of A and A is magnitude of A.

Write the expression for magnitude of B vector as.

  B=(Bx)2+(By)2+(Bz)2                                                                         (V)

Here, Bx is x-component of B, By is y-component of B, Bz is z-component of B and B is magnitude of B.

Substitute the value of A, B and |A×B| from equation (IV),(V) and (III) in equation (II) as.

  θ=sin1(((AB)x)2+((AB)y)2+((AB)z)2((Ax)2+(Ay)2+(Az)2)((Ax)2+(Ay)2+(Az)2))               (VI)

Conclusion:

Substitute 0 for (AB)x, 0 for (AB)y, 7 for (AB)z, 1 for Ax, 2 for Ay, 0 for Az, 2 for Bx, 3 for By, 0 for Bz in equation (VI).

  θ=sin1((0)2+(0)2+(7)2((1)2+(2)2+(0)2)((2)2+(3)2+(0)2))=60.3°

Thus, the angle between vectors A and B is 60.3°_.

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Chapter 11 Solutions

Physics For Scientists And Engineers With Modern Physics, 9th Edition, The Ohio State University

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