In any - ABC where - B -90- sin 2 A -cos 2 C -1-A- FalseB- True

The correct option is A False As per question In a ΔABC , ∠ B=90^∘ Now,∠ A+∠ C=90^∘ So,∠ C=90^∘ ∠ A sin^2A+cos^2C =sin^2A+cos^2(90^∘ A) =sin^2A+sin^2A ...

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Byju's Answer

Standard IX

Mathematics

Relation between B/W Trigonometric Ratios

In any Δ ABC ...

Question

In any $Δ$ ABC where $∠$ B=90 $^{\circ}$ , ${sin}^{2} A$ + ${cos}^{2} C$ = 1.

True

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False

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Solution

The correct option is B
False

As per question
In a $Δ$ ABC , $∠ B = 90^{\circ}$

Now, $∠ A + ∠ C = 90^{\circ}$
So, $∠ C = 90^{\circ} - ∠ A$
${sin}^{2} A + {cos}^{2} C = {sin}^{2} A + {cos}^{2} (90^{\circ} - A) = {sin}^{2} A + {sin}^{2} A (∵ c o s (90^{\circ} - θ) = s i n θ) = 2 {sin}^{2} A$
Now, ${sin}^{2} A + {cos}^{2} C = 2 {sin}^{2} A = 1 o n l y w h e n ∠ A = ∠ C = 45^{\circ}$
So it is not always true.

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Similar questions

State True/False

In any $Δ A B C$ where $∠ B = 90^{\circ}, s i n^{2} A + c o s^{2} C = 1$

State True/False

In any $Δ$ ABC where $∠$ B=90 $^{\circ}$ , ${sin}^{2} A$ + ${cos}^{2} C$ = 1.

In any $Δ A B C$ where $∠ B = 90^{\circ}$ , ${sin}^{2} A + {cos}^{2} C = 1$

In any $△ A B C$ where $∠ B = 90^{\circ},$ then ${sin}^{2} A + {cos}^{2} C = 1$

Q. In any

Δ A B C

, the least value of

(\frac{s i n^{2} A + s i n A + 1}{s i n A})

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In any ΔABC where ∠ B=90∘, sin2A + cos2C = 1.

The correct option is B False As per question In a ΔABC , ∠B=90∘ Now,∠A+∠C=90∘ So,∠C=90∘−∠A sin2A+cos2C=sin2A+cos2(90∘−A)=sin2A+sin2A (∵cos(90∘−θ)=sinθ)=2sin2A Now, sin2A+cos2C=2sin2A=1 only when ∠A=∠C=45∘ So it is not always true.

In any $Δ$ ABC where $∠$ B=90 $^{\circ}$ , ${sin}^{2} A$ + ${cos}^{2} C$ = 1.