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Notes: Law of Sines Ambiguous Cases

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1 Notes: Law of Sines Ambiguous Cases
LT 1B I can prove the Law of Sines and Law of Cosines, explain when to apply the laws for oblique triangles, and use them to solve problems.

2 Law of Sines Ambiguous Cases

3 Investigate Given ∆𝐴𝐵𝐶, show that sin 𝐴 𝑎 = sin 𝐵 𝑏 = sin 𝐶 𝑐

4 The Ambiguous Case (SSA)
Situation I: Angle A is obtuse If angle A is obtuse there are TWO possibilities If a ≤ b, then a is too short to reach side c - a triangle with these dimensions is impossible. If a > b, then there is ONE triangle with these dimensions. A B ? a b C = ? c = ? A B ? a b C = ? c = ?

5 The Ambiguous Case (SSA)
Situation II: Angle A is acute First, use SOH-CAH-TOA to find h: A B ? b C = ? c = ? a h Then, compare ‘h’ to sides a and b . . .

6 The Ambiguous Case (SSA)
Situation II: Angle A is acute If a < h, then NO triangle exists with these dimensions. A B ? b C = ? c = ? a h

7 The Ambiguous Case (SSA)
Situation II: Angle A is acute If h < a < b, then TWO triangles exist with these dimensions. A B b C c a h A B b C c a h If we open side ‘a’ to the outside of h, angle B is acute. If we open side ‘a’ to the inside of h, angle B is obtuse.

8 The Ambiguous Case (SSA)
Situation II: Angle A is acute If h < b < a, then ONE triangle exists with these dimensions. Since side a is greater than side b, side a cannot open to the inside of h, it can only open to the outside, so there is only 1 triangle possible! A B b C c a h

9 The Ambiguous Case (SSA)
Situation II: Angle A is acute If h = a, then ONE triangle exists with these dimensions. A B b C c a = h If a = h, then angle B must be a right angle and there is only one possible triangle with these dimensions.

10 The Ambiguous Case - Summary
if angle A is acute find the height, h = b*sinA if angle A is obtuse if a < b  no solution if a > b  one solution if a < h  no solution if h < a < b  2 solutions one with angle B acute, one with angle B obtuse if a > b > h  1 solution If a = h  1 solution angle B is right

11 The Ambiguous Case (SSA)
FIRST SOLUTION: Angle B is acute - this is the solution you get when you use the Law of Sines! A B 15 = b C c a = 12 h 40°

12 The Ambiguous Case (SSA)
Situation II: Angle A is acute - EXAMPLE 1 SECOND SOLUTION: Angle B is obtuse a = 12 A B 15 = b C c 40° 126.5°

13 The Ambiguous Case (SSA)
Situation II: Angle A is acute - EXAMPLE 1 SECOND SOLUTION: Angle B is obtuse - use the first solution to find this solution. In the second set of possible dimensions, angle B is obtuse, because side ‘a’ is the same in both solutions, the acute solution for angle B & the obtuse solution for angle B are supplementary. Angle B = ° = 126.5° a = 12 A B 15 = b C c 40° 1st ‘a’ 1st ‘B’

14 The Ambiguous Case (SSA)
Situation II: Angle A is acute - EXAMPLE 1 SECOND SOLUTION: Angle B is obtuse Angle B = 126.5° Angle C = 180°- 40° ° = 13.5° a = 12 A B 15 = b C c 40° 126.5°

15 The Ambiguous Case (SSA)
Situation II: Angle A is acute - EX. 1 (Summary) Angle B = 53.5° Angle C = 86.5° Side c = 18.6 Angle B = 126.5° Angle C = 13.5° Side c = 4.4 a = 12 A B 15 = b C c = 4.4 40° 126.5° 13.5° A B 15 = b C c = 18.6 a = 12 40° 53.5° 86.5°

16 The Ambiguous Case (SSA)
Situation II: Angle A is acute - EXAMPLE 2 Given a triangle with angle A = 40°, side a = 12 cm and side b = 10 cm, find the other dimensions. A B ? 10 = b C = ? c = ? a = 12 h 40° Since a > b, and h is less than a, we know this triangle has just ONE possible solution - side ‘a’opens to the outside of h.

17 The Ambiguous Case (SSA)
Using the Law of Sines will give us the ONE possible solution: A B 10 = b C c a = 12 40°

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