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Trigonometry for Calculus: Self Assessment 1. Find the exact value of the expression or say why it is undefined. (a) sin !! (b) cos β = π/π ! (e) sec 0 = π !" (f) tan ! ! !" (g) cos = β π ! ! (c) tan =π ! = π (d) sin β π (h) csc β = β ! π !" ! ! ! =β π π = β 2 2. Find the exact value of the expression or say why it is undefined. ! ! (a) sin π₯2 π , π₯ = (b) π’cos ! π’, π’ = ! π = sin = 4 ! π π (c) cot πsinπ , π = ! ! (d) ! cos! = cot πsin ! = cot π = sin! , ! = cos !! ! ! cos ! ! sin! ! ! = + = ! ! ! ! = π π , π₯ = 20 cos ! ! ! sin! ! ! which is undefined, because sinπ = π. ! ! = ! ! = π ππ . 3. Find all solutions of the given equation on the indicated interval. ! (a) 2cosπ₯ = 1, 0 β€ π₯ β€ 2π (b) sin 3π ! = , 0 β€ π β€ 2π ! ! β cosπ₯ = ! (c) π’cos ππ π π . β no solutions, since sinπ₯ β€ 1 for all π₯. (c) 4sin2 π‘ = 1, β + π’ = 0, β4π β€ π’ β€ β2π ! β π’ cos π β π = or π = ! ! ! + 1 = 0 β π’ = 0 or cos ! ! β sin2 π‘ = = β1. π ! the second, observe that β4π β€ π’ β€ β2π β βπ β€ ! ! = β1 β ! ! sin! = sinπ₯ = cos! + cos! = π cosπ (b) ! + cos ! π₯ cos! sin! ! cos ! ! = secπ ! ! ! ! π ! π ! sin!! β cotπ₯sinπ₯ sin! 2sin!cos! sin! β cos! sin! sinπ₯ = 2cosπ₯ β cosπ₯ = cosπ. ! ! < π < π. Find cosπ, tanπ, and secπ. Since sin π + cos π = 1, cos π = 1 β 0.6! = 0.64. ! Therefore, cosπ = ±0.8. Since cosine is negative for < π < π, cosπ½ = βπ. π. Then tanπ½ = π.π !π.π ! β€π‘β€ β sinπ‘ = ± , so π ! β€β . = cos! 5. (a) Suppose that sinπ = 0.6 and ! ! = βπ, or π = βππ . 4. Simplify the given expression. (a) sinπ₯tanπ₯ + cos ! π₯secπ₯ ! ! π = β or π = . The first solution is not in the given interval. For Then cos ! ! = βπ. ππ and secπ½ = (b) Suppose that tanπ₯ = β 3 and Since tanπ₯ = β 3 = β ! ! Since cosine is positive for and cscπ = π sinπ =β π π. ! ! !! ! = sin! cos! !! ! π !π.π ! = βπ. ππ. < π₯ < 2π. Find sinπ₯, cosπ₯, and cscπ₯. , then sinπ₯ = ± ! ! and cosπ₯ = β < π₯ < 2π, it must be that sinπ = β π π ! ! (the signs are opposite.) , cosπ = π π Trigonometry for Calculus: Self Assessment Notes on the Unit Circle Diagram * The circle has radius 1 and points π₯, π¦ on the circle satisfy the equation ππ + ππ = π. * Angles are displayed inside the circle (in degrees and radians). They are measured counter-clockwise starting from the positive x-axis (βupwardsβ.) Negative angles (not displayed) are measured clockwise starting from the positive x-axis (βdownwardsβ.) * For any point π₯, π¦ on the circle: π = cosπ½ and π = sinπ½ (displayed outside the circle). For example, β 1 2π 3 2π = cos , and = sin . 2 3 2 3 * The most important quadrant is in the upper right of the circle (1st quadrant of the x-y plane). If you know the information given in this part of the circle (angles and their sine and cosine values) then by symmetry you can determine the information given for the rest of the circle. Trigonometry for Calculus: Self Assessment 6. Match each formula to one of the given graphs, below. (a) π¦ = sinπ₯ + 1 (b) π¦ = sin2π₯ (c) π¦ = 2sin2π₯ (e) π¦ = cos2π₯ (f) π¦ = 2cosπ₯ (g) π¦ = 2cos (I) (b) π = sinππ ! (d) π¦ = sin ! (h) π¦ = ! ! cos!!! ! (II) (e) π = cosππ π (III) (g) π = πcos (V) (a) π = sinπ + π (VII) (d) π = sin π π π (IV) (f) π = πcosπ (VI) (c) π = πsinππ (VIII) (h) π = cosπ!π π Trigonometry for Calculus: Self Assessment 7. Let π π₯ = cosπ₯, π π₯ = π₯ ! + 2, and β π₯ = (a) π(π π₯ ) ! (b) π(π π₯ ) (a) π π π₯ = cos(π± π + π) (b) π π π₯ = cos π π± + π (c) β 2 β π ! π₯ =π (e) π π β π₯ =π ! cos! ! ! ! . Find and simplify the given expression. (c) β(2 β π π₯ ) = π cosπ± (d) π(β π π₯ ) (e) π(π β π₯ ) π = β 2 β cos ! π₯ = (d) π β π π₯ ! 2 ! cos π π± +π + 2 = ππ¨π¬ π π± +π 8. A ladder 10 feet long leans against a vertical wall. Let π be the angle between the top of the ladder and the wall, and let π₯ be the distance from the bottom of the ladder to the wall. (Assume that π₯ > 0.) (a) Make a diagram that incorporates the given information. (b) Express sinπ in terms of π₯. (c) If the ladder slides down the wall, how does π₯ change: does it increase, decrease, or stay the same? How does sinπ change? How does π change? (d) Express cosπ in terms of π₯. (e) If the ladder slides down the wall, how does cosπ change? (a) π 10 x π opp (b) In a right triangle, sinπ½ = hyp. For the triangle in the diagram we thus have sinπ½ = ππ. (c) If the ladder slides down the wall (see figures) π x increases, so sinπ½ = ππ increases and π½ increases. (d) Using the identity cos ! π + sin! π = 1, cos ! π = 1 β !! !"" , so cosπ½ = πβ ππ πππ = adj πππ!ππ ππ π . (Alternate method: let y be the side of the triangle along the wall. Then cosπ½ = hyp = ππ. Now use the Pythagorean Theorem.) (e) If the ladder slides down the wall, then π increases which means adj π cosπ½ decreases. This is because cosπ½ = = , and as π increases, y decreases. hyp ππ
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