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Theorem 6.1

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theorem 6.1: If line is drawn parallel to 
one side of a triangle to intersect the other two sides in distinct points, the other two sides are divided in the same ratio

Solution : - 

Given : In triangle ABC, BC||DE

To prove : AD/BD=AE/CE

Construction : Join BE and CD and
perpendicular of AB to E and AC to D

Proof : 

area of triangle ADE = 1/2 Base × height
ar(ADE) = 1/2×AD×EF ...(1)

area of triangle BDE = 1/2 Base × height
ar(BDE) = 1/2×BD×EF ...(2)

Now, From (1)/(2) we get
ar(ADE)= 1/2×AD×EF
ar(BDE)= 1/2×BD×EF

i.e.,
= AD/BD ...(3)

Similarly,
=AE/CE ...(4)

then, we know that two triangle between same base and same parallel DE and BC are equal in area

i.e., ar(BDE) = ar(CED) ...(5)

therefore, from (3),(4)&(5) we have
AD/BD = AE/CE

Hence, proved

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Theorem 6.2

Dwnload pdf of this sollution from here                      DOWNLOAD PDF                 Theorem 6.2 : If a line divides any two sides of a triangle in a same ratio then and it is parallel to the third side. Sollution : - Given =》In triangle ABC, AB/BD=AE/CE To prove =》DE || BC Construction =》Draw DE' || BC Proof, Since DE' || BC  (by const.) by theorem 6.1, AD/BD = AE'/CE'  ...(1) But, given that AD/BD = AE/CE ...(2) From (1) & (2) we have, AE'/CE' = AE/CE   ...(3) Now, AE' + CE' = AC  ...(a) AE + EC = AC   ...(b) Then, add 1 to eq(3) we get --> AE'/CE' + 1 = AE/CE + 1 -->AE'+CE'/CE' = AE+CE/CE From eq(a) & (b) we have, AC/CE' = AC/CE 1/CE'    = 1/CE or,   CE' = CE From above we can say that point A and E' are  consideing therefore,  DE' || BC i.e.,              DE || BC Hence, proved
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