ΔABC is an isosceles triangle with AB = AC. Another triangle BDC is drawn with base BC = BD in such a way that BC bisects &ang;B. If the measure of &ang;BDC is 70°, find the measures of &ang;DBC and &ang;BAC.

In ΔBDC,&ang;BDC = 70°BD = BCTherefore, &ang;BDC = &ang;BCD⇒ &ang;BCD = 70°Now &ang;BCD + &ang;BDC + &ang;DBC = 180°70° + 70° + &ang;DBC = 180°&ang;DBC = 40°&ang;DBC =&ang;ABC ...(BC is the angle bisector)⇒ &ang;ABC = 40°In ΔABC,Since AB = AC, &ang;ABC = &ang;ACB ⇒ &ang;ACB = 40°&ang;ACB + &ang;ABC + &ang;BAC = 180°40° + 40° + &ang;BAC = 180°&ang;BAC = 100°Hence, &ang;BAC = 100° and &ang;DBC = 40°.

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Syllabus

ΔABC is an isosceles triangle with AB = AC. Another triangle BDC is drawn with base BC = BD in such a way that BC bisects ∠B. If the measure of ∠BDC is 70°, find the measures of ∠DBC and ∠BAC. - Mathematics

Question

ΔABC is an isosceles triangle with AB = AC. Another triangle BDC is drawn with base BC = BD in such a way that BC bisects ∠B. If the measure of ∠BDC is 70°, find the measures of ∠DBC and ∠BAC.

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Solution

In ΔBDC,
∠BDC = 70°
BD = BC
Therefore, ∠BDC = ∠BCD
⇒ ∠BCD = 70°
Now ∠BCD + ∠BDC + ∠DBC = 180°
70° + 70° + ∠DBC = 180°
∠DBC = 40°
∠DBC =∠ABC ...(BC is the angle bisector)
⇒ ∠ABC = 40°
In ΔABC,
Since AB = AC, ∠ABC = ∠ACB ⇒ ∠ACB = 40°
∠ACB + ∠ABC + ∠BAC = 180°
40° + 40° + ∠BAC = 180°
∠BAC = 100°
Hence, ∠BAC = 100° and ∠DBC = 40°.