In parallelogram `ABCD`, P is a point on BC. In `Delta DCP` and `Delta BLP`, `DP : PL` is equal to :

ABCD is a parallelogram. L is a point on BC which divides BC in the ratio 1:2 . AL intersects BD at P.M is a point on DC which divides DC in the ratio 1 : 2 and AM intersects BD in Q. PQ : DB is equal to

For a chemical reaction at constant P and V. Delta H is equal to

ABCD is a trapezium such that AB and CD are parallel and BC bot CD . If /_ADB=theta , BC=p and CD=q , then AB is equal to

In parallelogram ABCD two points P and Q are taken on diagonal BD such that DP=BQ show that DeltaAPD approx Delta CQB DeltaAQB approx Delta CPD AQ=CP APCQ is a parallelogram

In Delta ABC , C is a point on BD such that BC:CD=1:2 and △ABC is an equilateral triangle Prove that AD^(2) = 7AC^(2)

In Delta ABC , AD is the median and PQ || BC . Prove that PE = EQ

The diagonal AC of a parallelogram ABCD intersects DP at the point Q, where ‘P’ is any point on side AB. Prove that CQ xx PQ = QA xx QD .

In an equilateral triangle ABC, D is a point on side BC such that BD = 1/3 BC . Prove that 9 AD^(2) = 7 AB^(2) .

The side AB of a parallelogram ABCD is produced to any point P. A line through A and parallel to CP meets CB produced at Q and then parallelogram PBQR is completed . Show that ar (ABCD) = ar (PBQR)