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Analytic Trigonometry Copyright © Cengage Learning. All rights reserved. 5 Moreβ¦ Find all solutions of the equations in the interval [0,2π) 1. cos(π₯ β π ) 2 + sin2 π₯ = 0 2. tan(π₯ + π) + 2 sin(π₯ + π) = 0 Write the trigonometric expression as an algebraic expression: sin(arctan 2π₯ β arccos π₯) 2 5.5 MULTIPLE-ANGLE AND PRODUCT-TO-SUM FORMULAS Copyright © Cengage Learning. All rights reserved. Multiple-Angle Formulas 4 Example 1 β Solving a Multiple-Angle Equation Solve 2 cos x + sin 2x = 0. Solution: 2 cos x + sin 2x = 0 2 cos x + 2 sin x cos x = 0 2 cos x(1 + sin x) = 0 2 cos x = 0 and 1 + sin x = 0 5 Example 3: Evaluating Functions Involving Double Angles Use the cos π = 5 3π , 13 2 < π < 2π to find sin 2π , cos 2π , tan 2π Solution: 5 3π 5 cos π = , < π < 2π β sin π = β 1 β 13 2 13 2 5 120 sin 2π = 2 sin π cos π = 2 β =β 13 13 169 5 cos 2π = β1=2 13 sin 2π 120 tan 2π = = cos 2π 119 2 cos 2 π 2 2 2 =β 13 119 β1=β 169 6 Power-Reducing Formulas cos 2π’ = 2 cos2 π’ β 1 = 1 β 2 sin2 2π’ = cos2 2π’ β sin2 2π’ 7 Example 5 β Reducing a Power Rewrite sin4 x as a sum of first powers of the cosines of multiple angles. Solution: 8 Half-Angle Formulas 9 Example 6 β Using a Half-Angle Formula Find the exact value of sin 105ο°. Solution: 10 Product-to-Sum Formulas 11 Product-to-Sum Formulas 12 Example 8 β Writing Products as Sums Rewrite the product cos 5x sin 4x as a sum or difference. Solution: cos 5x sin 4x = (½) [sin(5x + 4x) β sin(5x β 4x)] = (½ ) (sin 9x β sin x) 13 Product-to-Sum Formulas 14 Example 9 Find the exact value of cos 195° + cos 105° Solution: cos 195° + cos 105° 195° + 105° 195° β 105° = 2 cos cos 2 2 = 2 cos 150° cos 45° 3 =2 β 2 2 6 =β 2 2 15 Example 11 Verify the identity sin 3π₯βsin π₯ cos π₯+cos 3π₯ = tan π₯ Proof : 3π₯ + π₯ 3π₯ β π₯ 2 cos sin sin 3π₯ β sin π₯ 2 2 = cos π₯ + cos 3π₯ 2 cos π₯ + 3π₯ cos π₯ β 3π₯ 2 2 2 cos 2π₯ sin π₯ = 2 cos 2π₯ cos(βπ₯) = sin π₯ cos π₯ = tan π₯ 16 Application 17 Example 12 β Projectile Motion Ignoring air resistance, the range of a projectile fired at an angle ο± with the horizontal and with an initial velocity of v0 feet per second is given by where r is the horizontal distance (in feet) that the projectile will travel. 18 Example 12 β Projectile Motion contβd A place kicker for a football team can kick a football from ground level with an initial velocity of 80 feet per second (see Figure 5.18). Figure 5.18 a. Write the projectile motion model in a simpler form. b. At what angle must the player kick the football so that the football travels 200 feet? c. For what angle is the horizontal distance the football travels a maximum? 19 Example 12 β Solution a. You can use a double-angle formula to rewrite the projectile motion model as r= = b. r= 200 = v02 (2 sin ο± cos ο± ) Rewrite original projectile motion model. v02 sin 2ο±. Rewrite model using a double-angle formula. v02 sin 2ο± Write projectile motion model. (80)2 sin 2ο± Substitute 200 for r and 80 for v0. 20 Example 12 β Solution 200 = 200 sin 2ο± 1 = sin 2ο± contβd Simplify. Divide each side by 200. You know that 2ο± = ο° / 2, so dividing this result by 2 produces ο± = ο° / 4. Because ο° / 4 = 45ο°, you can conclude that the player must kick the football at an angle of 45ο° so that the football will travel 200 feet. 21 Example 12 β Solution contβd c. From the model r = 200 sin 2ο± you can see that the amplitude is 200. So the maximum range is r = 200 feet. From part (b), you know that this corresponds to an angle of 45ο°. Therefore, kicking the football at an angle of 45ο° will produce a maximum horizontal distance of 200 feet. 22 Introduction Oblique trianglesβtriangles that have no right angles. Law of Sine 1. Two angles and any side (AAS or ASA) 2. Two sides and an angle opposite one of them (SSA) Law of Cosine 3. Three sides (SSS) 4. Two sides and their included angle (SAS) 23 Introduction 24 Example 1 β Given Two Angles and One SideβAAS For the triangle in figure, C = 120ο°, B = 29ο°, andb = 28 feet. Find the remaining angle and sides. Solution: The third angle of the triangle is A = 180ο° β B β C = 180ο° β 29ο° β 102ο° = 49ο°. . 25 Example 1 β Solution The third angle of the triangle is A = 180ο° β B β C = 180ο° β 29ο° β 102ο° = 49ο°. By the Law of Sines, you have . 26
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