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Grade 10 Essentials Math Trigonometry Unit 5: Trigonometry Introduction: This unit deal with similar triangles, Pythagorean Theorem, and the trigonometric ratios of sine, cosine, and tangent. You will be using these to solve word problems as well. Trigonometry is based on the relationship between the measure of the angles and the lengths of the sides of a right angle triangle. These skills are necessary in occupations such as carpentry, aviation and astronomy. Assessment: o o Learning Activity 5.1: Similar Triangles Learning Activity 5.2: Similar Triangles Word Problems o o o o o Lesson 2 Assignment: Problem Solving using Pythagorean Theorem Learning Activity 5.3: SINE Ratio Learning Activity 5.4: COSINE Ratio Learning Activity 5.5: TANGENT Ratio o o o Lesson 1 Assignment: Similar Triangles Lesson 3 Assignment: SOH CAH TOA Lesson 4 Assignment: Word Problems using Trigonometric Ratios Lesson 5 Assignment: Angle of Elevation and Depression Unit 5 Test: Trigonometry 1 Grade 10 Essentials Math Trigonometry LESSON 1: SIMILAR TRIANGLES: Similarity: Similar triangles have the same shape, but they may be different in size (the lengths of the sides are different). By definition, shapes are similar if they have the same angles and the sides are proportional. To solve similar triangles we need to use proportions. It is important to label the corresponding Definitions: 1. Corresponding: sides have two angles that are the same size. 2. Proportional: means that it is a scaled up or a scaled down version of the other and all sides of the triangle are scaled down (or up) by the same multiple. x a 2 cm 6 cm 6 cm b y 2 cm 18 cm 6 cm c z These triangles are similar because their corresponding angles are the same and the sides are proportional, to get the size of the smaller triangle sides we must divide the larger triangle sides by 3. 2 Grade 10 Essentials Math Trigonometry Example: Find the values for m and t. A X 6 mm Z m Y 8mm t 15mm C 12mm B Solution: Step 1: locate the corresponding sides on each triangle; to do this we match two pairs of angles that are the same size. Angles that are the same size are indicated using the same symbols. β π = β π΄ β π = β π΅ ππ π‘βπ ππππππ πππππππ π ππππ πππ π πππ π πππ‘πβππ π€ππ‘β π πππ 15ππ β π = β π΄ β π = β πΆ ππ π‘βπ ππππππ πππππππ π ππππ πππ π πππ 6ππ πππ‘πβππ π€ππ‘β π πππ π‘ ππ π‘βπ ππππππ πππππππ π ππππ πππ π πππ 8ππ πππ‘πβππ π€ππ‘β π πππ 12ππ Step 2: Solve for the missing sides using proportions: π 8 = 15 12 8 π = ( ) (15) = 10ππ 12 π‘ 12 = 6 8 π‘=( 12 ) (6) = 9ππ 8 3 Grade 10 Essentials Math Trigonometry Example: Sovle for a A 18 D 10 5 C a E B Solution: Step 1: find the corresponding sides: Remember, you must use the angles that are the same size (same symbol) to find the corresponding sides. β π΄ = β πΈ β π΅ = β π· ππ π‘βπ ππππππ πππππππ π ππππ πππ π πππ 10 πππ‘πβππ π€ππ‘β π πππ 5 β π΄ = β πΆ β πΆ = β π· ππ π‘βπ ππππππ πππππππ π ππππ πππ π πππ 18 πππ‘πβππ π€ππ‘β π πππ π Step 2: Solve for the missing sides using proportions: π 5 = 18 10 π=( 5 ) (18) = 9 10 4 Grade 10 Essentials Math Trigonometry Learning Activity 5.1: Similar Triangles The triangles in each pair are similar. Find the unknown side lengths. A a) E 35 15 5 β C B F x β D E b) C β£ x A 18 B β 48 z β 24 36 β£ D c) A X m Y 35 C Z 10 B 20 5 Grade 10 Essentials Math Trigonometry LESSON 2: WORD PROBLEMS WITH SIMILAR TRIANGLES: Example: One of the 7 natural wonders of the world is the Grand Canyon. From points along the canyon a surveyor was able to take measurements and sketched the following diagram. What is the width across the canyon? D 40 km 20 km E A ° C ° 200m Width of canyon x 8 km B Solution: Step 1: find the corresponding sides: Remember, you must use the angles that are the same size (same symbol) to find the corresponding sides. β π· = β π΅ β πΈ = β πΆ ππ π‘βπ ππππππ πππππππ π ππππ πππ π πππ 20ππ πππ‘πβππ π€ππ‘β π πππ 8ππ β π· = β π΅ β π΄ = β π΄ ππ π‘βπ ππππππ πππππππ π ππππ πππ π πππ 40ππ πππ‘πβππ π€ππ‘β π πππ π₯ Step 2: Solve for the missing sides using proportions: π₯ 8 = 40 20 π=( 8 ) (40) = 16ππ 20 6 Grade 10 Essentials Math Trigonometry Example: Two ladders are leaning against a wall such that they make the same angle with the ground. The 10 foot ladder reaches 8 feet up the wall, how high up the wall does the 18 foot ladder reach? Solution: x ft 18 ft 10 ft 8 ft π₯ 18 = 8 10 18 π = ( ) (8) = 14.4 ππ‘ 10 Example: At a certain time of the day, the shadow of a 5 foot tall boy is 8 feet long. The shadow of a tree at the same time is 28 feet long. How tall is the tree? Solution: x ft 5 ft 8 ft 28 ft π₯ 28 = 5 8 28 π = ( ) (5) = 17.5 ππ‘ 8 7 Grade 10 Essentials Math Trigonometry Learning Activity 5.2: Similar Triangles Word Problems 1. To find the distance PQ across the farm pond, Marty marks out points R and S. By measuring, she finds that RS = 5.7 m, OP = 19.5 m, and OS = 4.2 m. What is the distance PQ? P Q O R S 2. Two trees cast shadows as shown, how tall is the evergreen? (diagram is not to scale) x 14m 5m 8m 3. How far is it across the river? 7m 32m 12m x 8 Grade 10 Essentials Math Trigonometry Curriculum Outcomes: 10E2.TG.2.Demonstrate an understanding of trigonometric by: applying similarity to right triangles, generalizing patterns from similar right triangles, solving problems Lesson 1 Assignment: Similar Triangles See your teacher for Assignment 9 Grade 10 Essentials Math Trigonometry LESSON 3: PYTHAGOREAN THEOREM The Pythagorean Theorem is for right angle triangle only. Pythagorean Theorem: c a Hypotenuse π2 + π 2 = π 2 b The hypotenuse is the side that is always opposite (across from) the 90° angle. This is always side C in the Pythagorean Theorem. Example: Determine the length of the missing for the following triangle. Solution: x 3 π₯ 2 = 32 + 42 π₯ 2 = 9 + 16 π₯ 2 = 25 π₯ = β25 = 5 4 Example: Determine the length of the missing side for each of the following triangle. Solution: 102 = π₯ 2 + 82 100 = π₯ 2 + 64 100 β 64 = π₯ 2 36 = π₯ 2 π₯ = β36 = 6 Example: Determine the length of the missing side for each of the following triangle. Solution: 152 = π₯ 2 + 72 225 = π₯ 2 + 49 225 β 49 = π₯ 2 176 = π₯ 2 π₯ = β176 = 13.2 10 x 8 15 x 7 10 Grade 10 Essentials Math Trigonometry Word Problems using the Pythagorean Theorem Example: Scott wants to swim across a river that is 400m wide. He plans to swim directly across the river but ends up 100m downstream because of the current. How far did he actually swim? Solution: Step 1: Draw a diagram for the right angle triangle: 400 m x 100 m Step 2: Label the sides of the triangle. Pay attention to where the hypotenuse is!!! 400 m x HYP 100 m π₯ 2 = 4002 + 1002 π₯ 2 = 160000 + 10000 π₯ 2 = 170000 π₯ = β170000 = 412.3π 11 Grade 10 Essentials Math Trigonometry Example: To get from point A to point B you must avoid walking through a building. To avoid the building, you walk 14m south and 25m east. How many metres would you have saved had the building not been there? Solution: Must walk 14 + 25 = 39π x 14 m 142 + 252 = π₯ 2 196 + 625 = π₯ 2 821 = π₯ 2 π₯ = β821 = 28.65π 25 m If was able to walk through the building would only have to walk 28.65 m. So would save 39 β 28.65 = 10.35π Example: The foot of a 6m ladder is placed 2m from the base of a building. How far up the building does that ladder reach? Solution: 6m x π₯ 2 + 22 = 62 π₯ 2 + 4 = 36 π₯ 2 = 36 β 4 π₯ 2 = 32 π₯ = β32 = 5.7π 2m 12 Grade 10 Essentials Math Trigonometry Example: The diagram below shows a baseball diamond. How far must the catcher throw the ball from home plate for the ball to reach second base Solution: 902 + 902 = π₯ 2 8100 + 8100 = π₯ 2 16 200 = π₯ 2 π₯ = β16200 = 127.3 ππ‘ The catcher must make a throw of 127.3 feet for a ball to travel from home plate to second base 13 Grade 10 Essentials Math Trigonometry Curriculum Outcomes: 10E2.TG.1. Solve problems involving right triangles using the Pythagorean Theorem 10E2.TG.3. Solve problems that require the manipulation & application of the Pythagorean Theorem Lesson 2 Assignment: Problem Solving using Pythagorean Theorem See your teacher for Assignment 14 Grade 10 Essentials Math Trigonometry LESSON 4: TRIGONOMETRY Lesson Introduction: We will now move on to the trigonometric functions. The three trig functions are SIN, COS, and TAN SOH CAH TOA Stands for: π ππ ο = πππ βπ¦π πππ ο = πππ βπ¦π π‘ππ ο = πππ πππ When we are using the trigonometric functions, we need to label the sides of the given right angle triangle so that we know what number goes where in our formulas. The three sides are: 1. Hypotenuse: is the side of the triangle that is always opposite the 90° angle 2. Opposite: is the side that is opposite (across from) the given angle, we never use the 90° angle to find the opposite side 3. Adjacent: is the side that is adjacent (next to) the given angle we never use the 90° angle to find the adjacent side 15 Grade 10 Essentials Math Trigonometry SINE RATIO πππ The sine ratio π πππ = βπ¦π requires three values, the acute angle, the opposite side and the hypotenuse. We label the opposite side by locating the angle and going to the side directly opposite from it. The hypotenuse is located by finding the 90ο° angle and going to the side across from it. You would need to know any two of the values and then you can substitute these two known values into the formula to find the unknown value. When you have or are looking for values for the opposite side and the hypotenuse, you use the sine ratio. Notice that the x-side is opposite the given angle and the side with a value of 16 is on the hypotenuse, the side across from the right angle. Example: Solve for the missing side in the following triangle. Solution: Before solving for an unknown, it is helpful to mark the diagram and to list the values as follows: the side opposite the designated angle is x cm and is OPP and the hypotenuse across from the 90ο° angle and is 16 cm πππ βπ¦π π₯ π ππ50ο° = 16 π₯ 0.766 = 16 π πππ = (0.766)(16) = π₯ 12.3 = π₯ 16 Grade 10 Essentials Math Trigonometry Example: Solve for x. Solution: πππ πππ 10 π ππ35ο° = π₯ π¬π’π§ ο = 10 0.574 = π₯ 10 π₯= 0.574 π₯ = 17.43 Example: Solve for x. Solution: πππ βπ¦π 16 π ππ30ο° = π₯ sin ο = 16 0.5 = π₯ 16 π₯= 0.5 π₯ = 32 17 Grade 10 Essentials Math Trigonometry Example: Find the missing angle. Solution: πππ βπ¦π 12 π ππο = 18 sin ο = sin ο = 0.67 ο = sinβ1(0.67) ο = ππ. πο° Example: Find the missing angle. Solution: πππ βπ¦π 22 π ππο = 40 sin ο = sin ο = 0.55 ο = sinβ1(0.55) ο = ππ. πο° 18 Grade 10 Essentials Math Trigonometry Learning Activity 5.3: SINE Ratio 1. Use the SINE ratio to solve for the missing sides in the following triangles. a. b. x 5 x 15 420 340 c. d. x x 170 430 14 8 e. x f. 25 32 x 250 100 g. h. 6 x 16 x 540 0 22 19 Grade 10 Essentials Math Trigonometry 2. For the following triangles, determine the size of the angle indicated using the sine ratio (round to the nearest degree). a. b. 12 17 22 8 c. d. 9 7 17 29 8 e. 15 20 Grade 10 Essentials Math Trigonometry COSINE RATIO πππ The cosine ratio πππ π = βπ¦π requires three values, the acute angle, the adjacent side and the hypotenuse. We label the adjacent side by locating the angle and going to the side directly next (beside it) from it. The hypotenuse is located by finding the 90ο° angle and going to the side across from it. You would need to know any two of the values and then you can substitute these two known values into the formula to find the unknown value. When you have or are looking for values for the adjacent side and the hypotenuse, you use the cosine ratio. Notice that the x-side is adjacent (beside) the given angle and the side with the value of 18 is across from the 90ο° angle so it is the hypotenuse. We have the adjacent and hypotenuse sides therefore we will use the cosine ratio. Example: Solve for x. Solution: πππ βπ¦π π₯ cos 50 ο° = 18 πππ π = 0.643 = π₯ 18 (0.643)(18) = π₯ 11.57 = π₯ 21 Grade 10 Essentials Math Trigonometry Example: Solve for x. Solution: πππ βπ¦π π₯ cos 55 ο° = 16 πππ π = 0.574 = π₯ 16 (0.574)(16) = π₯ π₯ = 9.18 Example: Solve for x. Solution: πππ βπ¦π 14 cos 62ο° = π₯ πππ π = 14 0.469 = π₯ 14 π₯= 0.469 π₯ = 29.85 22 Grade 10 Essentials Math Trigonometry Example: Solve for the missing angle. Solution: πππ π = πππ ο = 12 18 πππ βπ¦π πππ ο = 0.67 ο = πππ β1 (0.67) ο = ππ. πο° Example: Solve for the missing angle. Solution: πππ βπ¦π 25 πππ ο = 40 πππ π = πππ ο = 0.625 ο = πππ β1 (0.625) ο = ππ. πο° 23 Grade 10 Essentials Math Trigonometry Learning Activity 5.4: COSINE Ratio Show all of your work. 1. Use the COSINE ratio to solve for the missing sides in the following triangles. a. b. 15 300 x 21 170 x c. d. x x 240 450 18 12 e. 9 f. 420 x x 330 7 g. 10 h. 100 x 8 x 140 24 Grade 10 Essentials Math Trigonometry 2. Use the cosine ratio to solve for the missing angle in each of the following triangles (round to the nearest degree). a. b. 9 15 30 8 c. d. 17 15 27 10 25 Grade 10 Essentials Math Trigonometry TANGENT RATIO When you use the ratio π‘πππ = πππ πππ there are three values, ο, opposite and adjacent that need to be considered. You would need to know any two of the values and then you can substitute these two known values into the formula to find the unknown value. π‘πππ = πππ πππ Example: Solve for the length of the side opposite the given angle. Solution: π‘πππ = πππ πππ tan 50ο° = 1.19 = π₯ 8 π₯ 8 π₯ = (1.19)(8) = 9.5 ππ 26 Grade 10 Essentials Math Trigonometry Example: Find the side adjacent to the given angle. Solution: π‘πππ = πππ πππ tan 35ο° = 0.700 = π₯= 10 π₯ 10 π₯ 10 = 14.3 0.700 Example: Find the measure of ο. Solution: πππ πππ 12 π‘ππ ο = 8 π‘πππ = π‘ππ ο = 1.5 ο = π‘ππβ1 (1.5) ο = ππ. πο° 27 Grade 10 Essentials Math Trigonometry Learning Activity: TANGENT Ratio Show all of your work. 1. Use the TANGENT ratio to solve for the missing sides in the following triangles. a. b. x 21 300 15 150 x c. d. x 16 220 170 19 x x e. f. 400 11 8 x 320 x g. h. x 140 34 15 510 28 Grade 10 Essentials Math Trigonometry 2. For each of the following triangles use the tangent ratio to determine the angle (round to the nearest degree). a. b. 15 10 20 14 c. d. 15 17 12 8 29 Grade 10 Essentials Math Trigonometry Curriculum Outcomes: 10E2.TG.3. Solve problems that require the manipulation and application of primary trigonometric ratios 10E2.TG.2.Demonstrate an understanding of primary trigonometric ratios (sine, cosine, tangent) Lesson 3 Assignment: SOH CAH TOA See your teacher for Assignment 30 Grade 10 Essentials Math Trigonometry LESSON 4: WORD PROBLEMS USING TRIG RATIOS Lesson Introduction In this lesson, you apply your understanding of trigonometric ratios to solve problems. Example: Skiers ski down a slope that is inclined at a 35ο° angle to the horizontal at ground level. If the skiers reach the ground level after travelling a distance of 325.6 m, how high is the ski slope where they began their run? Solution: π ππ 35ο° = 0.574 = β 325.6 β 325.6 β = (0.574)(325.6) = 18.9π 31 Grade 10 Essentials Math Trigonometry Example: A ship is nearing the rocks. The captain can see the top of the cliff at an angle of 28° with the horizon. His charts tell him that the cliff is 175 m above sea level. How far is the ship from hitting the rocks? Solution: π‘ππ 28ο° = 175 π₯ 175 π₯ 175 π₯= 0.532 0.532 = π₯ = 328.9 π 32 Grade 10 Essentials Math Trigonometry Example: A tree is 15.6 rn tall and has fallen against your cottage, which is 7 m tall. Find the angle at which the tree meets the cottage. Solution: πππ ο = 7 15.6 cos ο = 0.449 ο = cos β1(0.449) = 63.3ο° 33 Grade 10 Essentials Math Trigonometry Curriculum Outcomes: 10E2.TG.3. Solve problems that require the manipulation and application of primary trigonometric ratios 10E2.TG.2.Demonstrate an understanding of primary trigonometric ratios (sine, cosine, tangent) Lesson 4 Assignment: Word Problems using Trigonometric Ratios See your teacher for Assignment 34 Grade 10 Essentials Math Trigonometry LESSON 5: ANGLE OF ELEVATION AND DEPRESSION Angle of Elevation: is the angle formed up from the horizontal Angle of Depression: is the angle formed down from the horizontal Example: From a point 8m from the base of a tree, you measure the angle up to the top of the tree from eye level and find that it is 50°. If you are 1.2m tall, how tall is the tree? Solution: tan 50ο° = x 1.19 = y 50ο° π₯ 8 π₯ 8 (1.19)(8) = π₯ 8m 1.2m π₯ = 9.5π ππ π‘βπ βπππβπ‘ ππ π‘βπ π‘πππ ππ 9.5 + 1.2 = 10.7 π π‘πππ 35 Grade 10 Essentials Math Trigonometry Example: The highest point on a cliff is 90m above the shore. From the top of the cliff, a surveyor measures the angle of depression to a boat in the lake to be 42°. How far away from shore is the boat? Solution: x tan 42ο° = 42ο° 90m 0.9 = π₯= x 90 π₯ 90 π₯ 90 0.9 π₯ = 100π Example: From a point 5m from the base of a tree, you measure the angle of elevation using a 1.5m tall instrument to be 39°. How tall is the tree? Solution: tan 39ο° = 0.81 = y X π¦ 5 π¦ 5 π¦ = (5)(0.81) = 4.05π 39ο° 1.5m 5m ππ π‘βπ βπππβπ‘ ππ π‘βπ π‘πππ ππ π = 4.05 + 1.5 = 5.55π π‘πππ. 36 Grade 10 Essentials Math Trigonometry Example: A 5m tall lighthouse sits at the top of a 30m cliff above sea level. The angle of depression from the top of the lighthouse to a fishing boat is 24°. The angle of depression to a second boat is 16°. How far apart are the two boats? y Solution: z 24ο° 16ο° 35m 35m 35m x π‘π ππππ βππ€ πππ πππππ‘ π‘βπ ππππ‘π πππ ππππ πππβππ‘βππ π€π ππππ π‘π πππππ’πππ‘π: π = π β π πΉπππ π‘ π€π ππππ π‘π ππππ€ βππ€ πππ ππ€ππ¦ ππππ‘ 1 ππ ππππ π‘βπ πππππ 35 tan 24ο° = π§ 0.445 = π§= 35 π§ 35 = 78.7π 0.445 π΅πππ, ππ πππππππππ πππ π πππππππ ππππ π ππ ππππ πππ πππππ π= πππ§ ππο° = ππ π π. πππ = ππ π ππ = πππ. ππ π. πππ πΏ = πππ. π β ππ. π = ππ. ππ ππ πππ πππππ πππ ππ. ππ πππππ 37 Grade 10 Essentials Math Trigonometry Curriculum Outcomes: 10E2.TG.3. Solve problems that require the manipulation and application of primary trigonometric ratios 10E2.TG.2.Demonstrate an understanding of primary trigonometric ratios (sine, cosine, tangent) Lesson 5 Assignment: Angles of Elevation and Depression See your teacher for Assignment 38
