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प्रश्न
In the adjoining figure, AC > AB and AM is the bisector of ∠BAC. Prove that ∠AMC > ∠AMB.
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उत्तर
Given:
- In triangle ABC, AC > AB.
- AM is the internal bisector of ∠BAC, meeting BC at M.
To Prove:
- ∠AMC > ∠AMB.
Proof (Step-wise):
1. Since AM bisects ∠BAC, we have ∠BAM = ∠MAC. ...(Given)
2. Write the angle-sum relations in triangles AMB and AMC:
In ΔAMB: ∠AMB + ∠ABM + ∠BAM = 180°.
In ΔAMC: ∠AMC + ∠ACM + ∠CAM = 180°.
3. Subtract the two equalities and use ∠BAM = ∠CAM to get ∠AMC – ∠AMB = ∠ABM – ∠ACM.
So, ∠AMC > ∠AMB ⇔ ∠ABM > ∠ACM.
4. Because B, M, C are collinear with M between B and C, the rays BM and BC coincide and the rays CM and CB coincide.
Hence, ∠ABM = ∠ABC and ∠ACM = ∠ACB.
5. Therefore, ∠ABM > ∠ACM is equivalent to ∠ABC > ∠ACB.
6. In ΔABC, the larger side subtends the larger opposite angle.
Since AC > AB, the angle opposite AC (which is ∠ABC) is larger than the angle opposite AB (which is ∠ACB).
Property of triangles: Larger side ↔ Larger opposite angle.
7. Combining steps 3–6, we obtain ∠AMC > ∠AMB.
∠AMC > ∠AMB, as required.
