Engage NY Eureka Math Geometry Module 5 Lesson 13 Answer Key
Eureka Math Geometry Module 5 Lesson 13 Exploratory Challenge Answer Key
Exploratory Challenge
Examine the diagrams shown. Develop a conjecture about the relationship between a and b.
a = \(\frac{1}{2}\) b
Test your conjecture by using a protractor to measure a and b.
Answer:
Do your measurements confirm the relationship you found in your homework?
If needed, revise your conjecture about the relationship between a and b:
Now, test your conjecture further using the circle below.
Now, we will prove your conjecture, which is stated below as a theorem.
THE TANGENT – SECANT THEOREM: Let A be a point on a circle, let \(\overleftrightarrow{A B}\) be a tangent ray to the circle, and let C be a point on the circle such that \(\overleftrightarrow{A C}\) is a secant to the circle. If a = m∠BAC and b is the angle measure of the arc intercepted by ∠BAC, then a = \(\frac{1}{2}\) b.
Given circle O with tangent \(\overleftrightarrow{A B}\), prove what we have just discovered using what you know about the properties of a circle and tangent and secant lines.
a. Draw triangle AOC. What is the measure of ∠AOC? Explain.
Answer:
b°. The central angle is equal to the degree measure of the arc it intercepts.
b. What is the measure of ∠OAB? Explain.
Answer:
90°. The radius is perpendicular to the tangent line at the point of tangency.
c. Express the measure of the remaining two angles of triangle AOC in terms of a and explain.
Answer:
The angles are congruent because the triangle is isosceles. Each angle has a measure of (90 – a)° since m∠OAC + m∠CAB = 90°.
d. What is the measure of ∠AOC in terms of a? Show how you got the answer.
Answer:
The sum of the angles of a triangle is 180°, so 90 – a + 90 – a + b = 180. Therefore, b = 2a or a = 1/2 b.
e. Explain to your neighbor what we have just proven.
Answer:
An inscribed angle formed by a secant and tangent line is half of the angle measure of the arc it intercepts.
Eureka Math Geometry Module 5 Lesson 13 Exercise Answer Key
Opening Exercise
In circle A, \(m \widehat{B D}\) = 56°, and (BC) ̅ is a diameter. Find the listed measure, and explain your answer.
a. m∠BDC
Answer:
90°, angles inscribed in a diameter
b. m∠BCD
Answer:
28°, inscribed angle is half measure of intercepted arc
c. m∠DBC
Answer:
62°, sum of angles of a triangle is 180°
d. m∠BFG
Answer:
28°, inscribed angle is half measure of intercepted arc
e. \(m \widehat{B C}\)
Answer:
180°, semicircle
f. \(m \widehat{D C}\)
Answer:
124°, intercepted arc is double inscribed angle
g. Does ∠BGD measure 56°? Explain.
Answer:
No, the central angle of \( would be 56°. ∠BGD is not a central angle because its vertex is not the center of the circle.
h. How do you think we could determine the measure of ∠BGD?
Answer:
Answers will vary. This leads to today’s lesson.
Exercises
Exercise 1.
Find x, y, a, b, and/or c.
Answer:
a = 34°, b = 56°, c = 52°
Exercise 2.
Answer:
a = 16°, b = 148°
Exercise 3.
Answer:
a = 86°, b = 43°
Exercise 4.
Answer:
2(3x + 4y) = 7x + 6y
65 + 65 + (7x + 6y) = 180
x = 5, y = 2.5
Exercise 5.
Answer:
a = 60°
Eureka Math Geometry Module 5 Lesson 13 Problem Set Answer Key
In Problems 1–9, solve for a, b, and/or c.
Question 1.
Answer:
a = 67°
Question 2.
Answer:
a = 67°
Question 3.
Answer:
a = 67°
Question 4.
Answer:
a = 116°
Question 5.
Answer:
a = 116°
Question 6.
Answer:
a = 116°, b = 64°, c = 26°
Question 7.
Answer:
a = 45°, b = 45°
Question 8.
Answer:
a = 47°, b = 47°
Question 9.
Answer:
a = 57°
Question 10.
is tangent to circle A. [latex]\overline{D F}\) is a diameter. Find the angle measurements.
a. m∠BCD
Answer:
50°
b. m∠BAF
Answer:
80°
c. m∠BDA
Answer:
40°
d. m∠FBH
Answer:
40°
e. m∠BGF
Answer:
98°
Question 11.
\(\overline{B G}\) is tangent to circle A. \(\overline{B E}\) is a diameter. Prove: (i) f = a and (ii) d = c.
Answer:
(i) m∠EBG = 90° Tangent perpendicular to radius
f = 90 – e Sum of angles
m∠ECB = 90° Angle inscribed in semicircle
In △ECB,
b + 90 + e = 180 Sum of angles of a triangle
b = 90 – e
a = b Angles inscribed in same arc are congruent
a = f Substitution
(ii) a + c = 180 Inscribed in opposite arcs
a = f Inscribed in same arc
f + d = 180 Linear pairs form supplementary angles
c + f = f + d Substitution
c = d
Eureka Math Geometry Module 5 Lesson 13 Exit Ticket Answer Key
Question 1.
Find a, b, and c.
Answer:
a = 56, b = 63, c = 61