Math, asked by kalaiselvir0105, 9 days ago

sides AB and AC and median AD of a triangle ABC are respectively on proportional to sides PQ and PR and median PM of another triangle PQR show that ∆ABC~∆PQR.

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Answers

Answered by babitasahoo00584
0

Step-by-step explanation:

Sides AB and AC and median AD of a triangle ABC are respectively proportional to sides PQ and PR and median PM of another triangle PQR. Hence proved that ΔABC~ ΔPQR.

Answered by SamiyaKK
0

Answer:

Given: △ABC & △PQR

AD is the median of △ABC

PM is the median of △PQR

PQ

AB

=

PR

AC

=

PM

AD

→1

To prove: △ABC∼△PQR

Proof:Let us extend AD to point D such that that AD=DE and PM upto point L such that PM=ML

Join B to E, C to E, & Q to L and R to L

(Image 2)

We know that medians is the bisector of opposite side

Hence BD=DC & AD=DE *By construction)

Hence in quadrilateral ABEC, diagonals AE and BC bisect each other at point D

∴ABEC is a parallelogram

∴AC=BE & AB=EC (opposite sides of a parallelogram are equal) →2

Similarly we can prove that

PQLR is a parallelogram.

PR=QL,PQ=LR (opposite sides of a parallelogram are equal) →3

Given that

PQ

AB

=

PR

AC

=

PM

AD

 (frim 1)

PQ

AB

=

QL

BE

=

PM

AD

  (from 2 and 3)

PQ

AB

=

QL

BE

=

2PM

2AD

PQ

AB

=

QL

BE

=

PL

AE

 (As AD=DE,AE=AD+DE=AD+AD=2AD & PM=ML,PL=PM+ML=PM+PM=2PM)

∴△ABE∼△PQL (By SSS similarity criteria)

We know that corresponding angles of similar triangles are equal

∴∠BAE=∠QPL→4

Similarly we can prove that

△AEC∼△PLR

We know that corresponding angles of similar triangles are equal

∠CAE=∠RPL→5

Adding 4 and 5, we get

∠BAE+∠CAE=∠QPL+∠RPL

⇒∠CAB=∠RPQ→6

In △ABC and △PQR

PQ

AB

=

PR

AC

 (from 1)

∠CAB=∠RPQ (from 6)

∴△ABC∼△PQR (By SAS similarity criteria)

Hence, proved

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