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如图已知△ABC中,∠B和∠C外角平分线相交于点P.(1)若∠ABC=30°,∠ACB=70°,求∠BPC度数.(2)若∠ABC=α,∠BPC=β,求∠ACB度数.
题目内容:
如图已知△ABC中,∠B和∠C外角平分线相交于点P.
(1)若∠ABC=30°,∠ACB=70°,求∠BPC度数.
(2)若∠ABC=α,∠BPC=β,求∠ACB度数.优质解答
(1)∠BPC
=180°-(1 2
∠EBC+1 2
∠BCF)
=180°-1 2
(∠EBC+∠BCF)
=180°-1 2
(180°-∠ABC+180°-∠ACB)
=180°-1 2
(180°-30°+180°-70°)
=50°;
(2)∠BPC=180°-1 2
(180°-∠ABC+180°-∠ACB)
=1 2
(∠ABC+∠ACB),
∵∠BPC=β,∠ABC=α,
∴β=1 2
(α+∠ACB).
故∠ACB=2β-α.
(1)若∠ABC=30°,∠ACB=70°,求∠BPC度数.
(2)若∠ABC=α,∠BPC=β,求∠ACB度数.
优质解答
=180°-(
| 1 |
| 2 |
| 1 |
| 2 |
=180°-
| 1 |
| 2 |
=180°-
| 1 |
| 2 |
=180°-
| 1 |
| 2 |
=50°;
(2)∠BPC=180°-
| 1 |
| 2 |
=
| 1 |
| 2 |
∵∠BPC=β,∠ABC=α,
∴β=
| 1 |
| 2 |
故∠ACB=2β-α.
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