7.7– solve right triangles

7.7– Solve Right Triangles

Inverse Trig Ratios:

To find the measure of an angle, take the inverse of the trig function.

sin A° = 7 .

10

A° = sin-1 (7/10)

A° = 44.4°

A

BC

sin-1 BCAB

= mA°

cos-1 ACAB

= mA°

tan-1 BCAC

= mA°

Steps to solving with inverse trig:

1.

2.

Label all sides with reference angle

What two sides do you know?

1. Use a calculator to approximate the measure of A to the nearest tenth of a degree.

SOH – CAH – TOA

tan A° = 3020

A° = tan-1 (30/20)

A° = 56.3°

A H

O


SOH – CAH – TOA

sin A° = 1426

A° = sin-1 (14/26)

A° = 32.6°

A

H

O


SOH – CAH – TOA

cos A° = 1016

A° = cos-1 (10/16)

A° = 51.3°

A

H

O

PQ QRP

2. Solve the right triangle. Approximate angles to the nearest tenth of a degree and sides to two decimal places.

SOH – CAH – TOA

sin 37° = x .

22

22 sin 37° = x

13.24 = x

180 – 90 – 37

mP = 53°

cos 37° = y .

22

22 cos 37° = y

17.57 = y

A

HO

ST UTU

SOH – CAH – TOA

cos 70° = x .

15

15 cos 70° = x

5.13 = x

180 – 90 – 70

mU = 20°

sin 70° = y .

15

15 sin 70° = y

14.10 = y

AH

O


PNP

SOH – CAH – TOA

c2 = a2 + b2

c2 = 122 + 172

c2 = 144+ 289c2 = 433

20.81c

180 – 90 – 54.8

mN = 35.2°

N

tan P° = 1712

P° = tan-1(17/12)

P° = 54.8°

AH

O


UMU

SOH – CAH – TOA

180 – 90 – 56.4

mE = 33.6°

E

sin U° = 1518

U° = sin-1(15/18)

U° = 56.4°

c2 = a2 + b2

182 = a2 + 152

324 = a2 + 22599 = a2

3 11 a

A

H

O


UMS

SOH – CAH – TOA

180 – 90 – 76.1

mU = 13.9°

U

cos S° = 7.531.3

S° = cos-1(7.5/31.3)

S° = 76.1°

c2 = a2 + b2

31.32 = a2 + 7.52

979.69= a2 + 56.25923.44 = a2

30.39 a

AH

O


7.7 485-487 5-7, 11-14, 21-25

HW Problem

#14

EFD

SOH – CAH – TOA

180 – 90 – 70.5

mF = 19.5°

F

cos D° = 39

D° = cos-1(3/9)

D° = 70.5°

c2 = a2 + b2

92 = a2 + 32

81= a2 + 9 72 = a2

6 2 a

AH

O

7.7– solve right triangles

Documents