In the given figure- - ABC - 65- - BCE - 30- - DCE - 35- and - CEF - 145- Prove that AB - EF- -4 MARKS-

Concept:1 Mark Application: 3 Marks ∠ ABC =65^∘ ∠ BCD = ∠ BCE+ ∠ ECD =30^∘ + 35^∘ = 65^∘ ∠ ABC = ∠ BCD (Altemate Angles) → AB ∥ CD ...(1) ∠ FEC + ∠ ECD = l ...

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Standard VII

Mathematics

Corresponding Angles Axiom

In the given ...

Question

In the given figure, $∠ A B C = 65^{\circ}, ∠ B C E = 30^{\circ}, ∠ D C E = 35^{\circ}$ and $∠ C E F = 145^{\circ}$ . Prove that $A B ∥ E F$ . [4 MARKS]

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Solution

Concept:1 Mark
Application: 3 Marks

$∠ A B C = 65^{\circ}$

$∠ B C D = ∠ B C E + ∠ E C D = 30^{\circ} + 35^{\circ} = 65^{\circ}$

$∠ A B C = ∠ B C D$ (Altemate Angles)

$\to A B ∥ C D$ ...(1)

$∠ F E C + ∠ E C D = l 45^{\circ} + 35^{\circ} = 180^{\circ}$

But these angles are consecutive interior angles formed on the same side of the transversal.

$\to C D ∥ E F$ ...(2)

From (1) and (2),

$A B ∥ E F$

Hence, proved.

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In the given figure, $∠ A B C = 65^{\circ}, ∠ B C E = 30^{\circ}, ∠ D C E = 35^{\circ}$ and $∠ C E F = 145^{\circ}$ . Prove that $A B ∥ E F$ . [4 MARKS]