91st Edition

ISBN: 9780866099653

Author: Richard Rhoad, George Milauskas, Robert Whipple

Publisher: McDougal Littell

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Question

Polygon with three sides, three angles, and three vertices. Based on the properties of each side, the types of triangles are scalene (triangle with three three different lengths and three different angles), isosceles (angle with two equal sides and two equal angles), and equilateral (three equal sides and three angles of 60°). The types of angles are acute (less than 90°); obtuse (greater than 90°); and right (90°).

Chapter 15, Problem 2RP

(a)

To determine

To Find: The longest segment in the given figure.

(a)

Expert Solution

Answer to Problem 2RP

WZ¯

Explanation of Solution

Given:

XY=XW∠YXZ=40o∠ZXW=50o

Geometry For Enjoyment And Challenge, Chapter 15, Problem 2RP , additional homework tip 1

Formula Used:

In a triangle side opposite to greater angle is always greater and opposite to smallest angel is always smallest or vice-versa.

Angle-Sum Property: In a triangle the sum of all interior angle is equal to 180.

Calculation:

In ΔXWYXY=XW∠YXZ=40o∠ZXW=50o∵XY=XW⇒∠Y=∠W∵WZ¯ is opposite to ∠50o∴WZ¯>ZY¯

Conclusion:

Thus the required segment is WZ¯

(b)

To determine

To Find: The longest segment in the given figure.

(b)

Expert Solution

Answer to Problem 2RP

AB¯

Explanation of Solution

Given:

∠ACB=90o

Geometry For Enjoyment And Challenge, Chapter 15, Problem 2RP , additional homework tip 2

Formula Used:

In a triangle side opposite to greater angle is always greater and opposite to smallest angel is always smallest or vice-versa.

Angle-Sum Property: In a triangle the sum of all interior angle is equal to 180.

Calculation:

InΔABC∠ACB=90o∵AB¯ is opposite of ∠ACB∴AB¯>BC¯

Conclusion:

Thus the required segment is AB¯

(c)

To determine

To Find: The longest segment in the given figure.

(c)

Expert Solution

Answer to Problem 2RP

QR¯

Explanation of Solution

Given:

Geometry For Enjoyment And Challenge, Chapter 15, Problem 2RP , additional homework tip 3

Formula Used:

In a triangle side opposite to greater angle is always greater and opposite to smallest angel is always smallest or vice-versa.

Angle-Sum Property: In a triangle the sum of all interior angle is equal to 180.

Calculation:

∠PRQ=60o∠PQR=20o+30o=50o∠PQR+∠PRQ+∠RPQ=180o⇒60+50+∠RPQ=180⇒∠RPQ=180−110=70o∵QR¯ is opposite to ∠RPQ∴QR¯>PQ¯ or PR¯

Conclusion:

Thus the required segment is QR¯

Chapter 15, Problem 1RP

Chapter 15, Problem 3RP

Chapter 15 Solutions

Geometry For Enjoyment And Challenge

Ch. 15.1 - Prob. 1PSA Ch. 15.1 - Prob. 2PSA Ch. 15.1 - Prob. 3PSA Ch. 15.1 - Prob. 4PSA Ch. 15.1 - Prob. 5PSA Ch. 15.1 - Prob. 6PSA Ch. 15.1 - Prob. 7PSB Ch. 15.1 - Prob. 8PSB Ch. 15.1 - Prob. 9PSB Ch. 15.1 - Prob. 10PSB

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