Exam 6: Trigonometric Functions: Right Triangle Approach

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Find the reference angle for θ=227\theta = \frac { 22 } { 7 } .

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θˉ=227π0.00126\bar { \theta } = \frac { 22 } { 7 } - \pi \approx 0.00126

Find an angle between 00 and 360360 ^ { \circ } that is coterminal with each angle given. a. 362362 ^ { \circ } b. 870- 870 ^ { \circ } c. 11701170 ^ { \circ }

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2,210,902 ^ { \circ } , 210 ^ { \circ } , 90 ^ { \circ }

Solve the triangle. a=72.5,B=60,C=82a = 72.5 , \quad \angle B = 60 ^ { \circ } , \quad \angle C = 82 ^ { \circ }

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A=38,b102,c116.6\angle A = 38 ^ { \circ } , \quad b \approx 102 , \quad c \approx 116.6

Use the Law of Sines to find xx .  Use the Law of Sines to find  x  .

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Find the area of the triangle. Find the area of the triangle.

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Rewrite the expression as an algebraic expression in x. sin(cos1x)\sin \left( \cos ^ { - 1 } x \right)

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The time in seconds that it takes for a sled to slide down a hillside inclined at an angle θ\theta is t=d16sinθt = \sqrt { \frac { d } { 16 \sin \theta } } where d is the length of the slope in feet. Find the time it takes to slide down a 5000-ft slope inclined at 3030 ^ { \circ }

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Find the exact value of each expression, if it is defined. (a) cos1(2/2)\cos ^ { - 1 } ( - \sqrt { 2 } / 2 ) (b) sin1(2/2)\sin ^ { - 1 } ( - \sqrt { 2 } / 2 ) (c) tan1(3)\tan ^ { - 1 } ( - \sqrt { 3 } )

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A 18-ft ladder leans against a building so that the angle between the ground and the ladder is 7272 ^ { \circ } . How high does the ladder reach on the building?

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Rewrite the expression as an algebraic expression in x. tan(sin1x)\tan \left( \sin ^ { - 1 } x \right)

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Find the reference angle for θ=39\theta = - 39 ^ { \circ }

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Find the quadrant in which θ\theta lies given that cotθ>0\cot \theta > 0 and sinθ<0\sin \theta < 0 .

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Find the length of an arc of a circle of radius 1212 ft if the arc subtends a central angle of 135135 ^ { \circ } .

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Use Heron's formula to find the area of the triangle with sides of length 12, 18, and 24.

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Find the reference angle for θ=19π6\theta = \frac { 19 \pi } { 6 } .

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Use the Law of Sines to solve for all possible triangles that satisfy a=9a = 9 , b=13b = 13 , B=67\angle B = 67 ^ { \circ } .

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Use the Law of Cosines to find xx .  Use the Law of Cosines to find  x  .

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A plane leaves the airport at 4:00 p.m. and heads in the direction N 1010 ^ { \circ } E at a constant speed of 250250 mi/h. Forty-five minutes later, a jet leaves the same airport and flies N 6060 ^ { \circ } W at a constant speed of 450450 mi/h. Find the distance between the plane and the jet at 5:30 p.m.

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Solve the triangle using the Law of Sines. Solve the triangle using the Law of Sines.

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Find the exact value of csc(23π/4)\csc ( - 23 \pi / 4 ) .

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