A trapezium of area 55 cm2 can be divided into a rectangle and two equ

1.	A trapezium of area 55 cm2 can be divided into a rectangle and two equal triangles. If the parallel sides of the trapezium are of 15 cm and 7 cm, find the area of the triangle.1). 10 cm22). 20 cm23). 25 cm24). 35 cm2
Answer» Area of trapezium = (height of trapezium × sum of parallel sides)/2 ⇒ Height of trapezium = (55 × 2)/(15 + 7) = 110/22 = 5 cm Now, Area of the TRIANGLES = area of trapezium – area of RECTANGLE = 55 – (5 × 7) = 55 – 35 = 20 cm² As the two triangles are equal, area of one triangle = 20/2 = 10 cm²

A trapezium of area 55 cm2 can be divided into a rectangle and two equal triangles. If the parallel sides of the trapezium are of 15 cm and 7 cm, find the area of the triangle.1). 10 cm22). 20 cm23). 25 cm24). 35 cm2

Answer»

Area of trapezium = (height of trapezium × sum of parallel sides)/2

⇒ Height of trapezium = (55 × 2)/(15 + 7) = 110/22 = 5 cm

Now,

Area of the TRIANGLES = area of trapezium – area of RECTANGLE = 55 – (5 × 7) = 55 – 35 = 20 cm²

As the two triangles are equal, area of one triangle = 20/2 = 10 cm²

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A trapezium of area 55 cm2 can be divided into a rectangle and two equal triangles. If the parallel sides of the trapezium are of 15 cm and 7 cm, find the area of the triangle.1). 10 cm22). 20 cm23). 25 cm24). 35 cm2

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