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Question
Find sec x + tan x
Sum
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Solution
Given:
Triangle △PQS
PS = 16 cm (hypotenuse)
QS = 12 cm (base)
PQ = ?
Step 1: Use Pythagoras Theorem in △PQS
`PS^2 = PQ^2 + QS^2`
`16^2 = PQ^2 + 12^2`
256 = PQ2 + 144
PQ2 = 256 − 144 = 112
PQ = `sqrt112`
`sqrt 112 = sqrt(16 xx7) = 4sqrt7`
PQ = `4 sqrt 7`
Step 2: Use formulas
`sec x = "hypotenuse"/"adjacent" = (PS)/(QS) = 16/12 = 4/3`
`tan x = "Opposite"/"adjacent" = (PQ)/(QS) = 4sqrt7/12 = sqrt7/3`
`sec x + tan x = 4/3 + sqrt7/3 = (4 + sqrt7)/3`
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Chapter 19: Trigonometry - EXERCISE 19A [Page 231]
