Prove the following identity: 1 + 3cosec2θ cot2θ + cot6θ = cosec6θ

L.H.S. = 1 + 3cosec2θ cot2θ + cot6θ = 1 + 3 cosec2θ cot2θ + (cot2θ)3 = 1 + 3 cosec2θ (cosec2θ – 1) + (cosec2θ – 1)3 ...`[(1 + cot^2theta = cosec^2theta),(cot^2theta = cosec^2 theta - 1)]` = 1 + 3 cosec4θ – 3 cosec2θ + cosec6θ – 3 cosec4θ + 3cosec2θ – 1 ...[(a - b)3 = a3 - 3a2b + 3ab2 - b3] = `cancel(1) + cancel(3 cosec^4θ) - cancel(3 cosec^2θ) + cosec^6θ - cancel(3 cosec^4 θ) + cancel(3cosec^2 θ) cancel(- 1)` = cosec6θ = R.H.S.

Prove the following identities: 1 + 3cosec2θ cot2θ + cot6θ = cosec6θ - Mathematics and Statistics

प्रश्न

Prove the following identity:

1 + 3cosec²θ cot²θ + cot⁶θ = cosec⁶θ

योग

उत्तर

L.H.S. = 1 + 3cosec²θ cot²θ + cot⁶θ

= 1 + 3 cosec²θ cot²θ + (cot²θ)³

= 1 + 3 cosec²θ (cosec²θ – 1) + (cosec²θ – 1)³ ...`[(1 + cot^2theta = cosec^2theta),(cot^2theta = cosec^2 theta - 1)]`

= 1 + 3 cosec⁴θ – 3 cosec²θ + cosec⁶θ – 3 cosec⁴θ + 3cosec²θ – 1 ...[(a - b)³ = a³ - 3a²b + 3ab² - b³]

= `cancel(1) + cancel(3 cosec^4θ) - cancel(3 cosec^2θ) + cosec^6θ - cancel(3 cosec^4 θ) + cancel(3cosec^2 θ) cancel(- 1)`

= cosec⁶θ

= R.H.S.

shaalaa.com

Fundamental Identities

क्या इस प्रश्न या उत्तर में कोई त्रुटि है?

Q 15) xi)Q 15) x)Q 15) xii)

अध्याय 2: Trigonometry - 1 - EXERCISE 2.2 [पृष्ठ ३१]

APPEARS IN

बालभारती Mathematics and Statistics 1 (Arts and Science) [English] Standard 11 Maharashtra State Board

अध्याय 2 Trigonometry - 1
EXERCISE 2.2 | Q 15) xi) | पृष्ठ ३१

संबंधित प्रश्न

Evaluate the following:

sin 30° + cos 45° + tan 180°

Evaluate the following :

cosec 45° + cot 45° + tan 0°

Evaluate the following :

sin 30° × cos 45° × tan 360°

Eliminate θ from the following:

x = 3secθ , y = 4tanθ

Eliminate θ from the following :

x = 4cosθ − 5sinθ, y = 4sinθ + 5cosθ

Eliminate θ from the following :

x = 5 + 6cosecθ, y = 3 + 8cotθ

Find the acute angle θ such that 2 cos²θ = 3 sin θ.

Find the acute angle θ such that 5tan²θ + 3 = 9secθ.

If cosecθ + cotθ = 5, then evaluate secθ.