Area Of A Trapezium And A Polygon

Given:

Length of parallel sides is 24cm and 20 cm

Height (h) = 15 cm

We know that area of trapezium is × (sum of parallel sides) × height

Therefore, Area of trapezium = × (24 +20) × 15 =330 cm².

Given

Length of parallel sides is 38.7cm and 22.3 cm

Height (h) = 16 cm

We know that area of trapezium is × (sum of parallel sides) × height

Therefore Area of trapezium = × (38.7 +22.3) × 16 = 488 cm².

Given

Length of parallel sides is 1m and 1.4m

Height (h) = 0.9m

We know that area of trapezium is × (sum of parallel sides) × height

Therefore Area of trapezium = × (1 +1.4) × 0.9

=1.08 m².

Given

Length of parallel sides is 55cm and 35 cm

Area of trapezium= 1080 cm²

Let Height (h) =y cm

We know that area of trapezium is × (sum of parallel sides) × height

Therefore Area of trapezium is × (55 + 35) × y =1080 cm².

× (90) × y =1080

⇒ 45 × y =1080

⇒ y == 24

.^.. Distance between the parallel lines is 24 cm.

Given

Let length of parallel sides be 84cm and y cm

Area of trapezium= 1586 cm²

Let Height (h) =26 cm

We know that area of trapezium is × (sum of parallel sides) × height

Therefore Area of trapezium is × (84 +y) × 26 =1586 cm².

× (84 +y) × 26 =1586

⇒(84 + y) × 13 =1586

⇒ 84 + y =

⇒ y =122— 84 = 38

.^.. Length of the other parallel side is 38 cm.

Given

Lengths of the parallel sides are in the ratio 4:5

Therefore let one of the side length be 4X and other side length be 5X

Area of trapezium= 405 cm²

Let Height (h) =18 cm

We know that area of trapezium is × (sum of parallel sides) × height

Therefore Area of trapezium is x (4X +5X) × 18 =405 cm².

× (4X + 5X) × 18 =405

⇒(9X) × 9 =405

⇒ 81X = 405

⇒ X = = 5

.^.. Length of the parallel sides is 4X=4 × 5 =20 cm and 5X = 5 × 5 = 25 cm.

Therefore lengths of the parallel sides are 20 cm, 25 cm.

Given

Let length of first parallel side X

Length of other parallel side is X + 6

Area of trapezium= 180 cm²

Let Height (h) =9 cm

We know that area of trapezium is × (sum of parallel sides) × height

Therefore Area of trapezium is × (X + 6 +X) × 9 =180 cm².

× (X + 6 +X) × 9 =180

⇒ × (2X + 6) × 9 =180

⇒ 2X + 6 =

⇒ 2X + 6 = 40

⇒2X = 40 – 6 =34

⇒X = 17

.^.. Length of the parallel sides is X=17 cm and X + 6 = 17 + 6 = 23 cm.

Therefore lengths of the parallel sides are 17 cm, 23 cm.

Given

Let length of first parallel side X

Length of other parallel side is 2X

Area of trapezium= 9450 m²

Let Height (h) =84 m

We know that area of trapezium is × (sum of parallel sides) × height

Therefore Area of trapezium is × (X + 2X) × 84 =9450 cm².

× (X + 2X) × 84 =9450

⇒ (3X) × 42 =9450

⇒ 126X = 9450

⇒ 2X + 6 = = 75

⇒X = 17

.^.. Length of the parallel sides is X=75 m and 2X = 150 m.

Therefore length of the longest is 150 m.

Given

Length of parallel sides

AD = 42 m

BC = 54 m

Given that total length of fence is 130 m

That is AB + BC +CD +DA = 130

AB + 54 + 19 + 42 = 130

Therefore AB = 15

Height (AB) = 15 m

We know that area of trapezium is × (sum of parallel sides) × height

Therefore Area of trapezium = × (42 + 54) × 15 = 720 m²

Given

AD = 16 cm

BC = 40 cm

AC = 41 cm

ABC = 90

Height = AB =?

Here in ABC using Pythagoras theorem

AC² = AB² + BC²

41² = AB² + 40²

AB² = 41² – 40²

AB² = 1681 – 1600 = 81

AB = 9

We know that area of trapezium is × (sum of parallel sides) × height

Therefore Area of trapezium = × (16 + 40) × 9 = 252 cm².

Let ABCD be the given trapezium in which AB|| DC,

AB = 20 cm, DC = 10 cm and AD=BC=13cm

Draw CL AB and CM || DA meeting AB at L and M, respectively.

Clearly, AMCD is a parallelogram.

Now,

AM = DC =10cm

MB = (AB-Am)

= (20-10) = 10 cm

Also,

CM = DA = 13cm

Therefore, CMB is an isosceles triangle and CL MB.

And L is midpoint of B.

⇒ML = LB = = = 5 cm

From right CLM, we have:

CL² = (CM2 – ML²)

CL² = (132 – 5²)

CL² = (169 – 25)

CL² = 144

CL = 12

Therefore length of CL is 12 cm that is height of trapezium is 12 cm

There fore

We know that area of trapezium is × (sum of parallel sides) × height

Therefore Area of trapezium = × (20 + 10) × 12 = 180 cm².

Let ABCD be the given trapezium in which AB|| DC,

AB = 25 cm, CD = 11 cm and AD= 13 cm, BC=15cm

Draw CL AB and CM || DA meeting AB at L and M, respectively.

Clearly, AMCD is a parallelogram.

Now,

MC = AD = 13cm

AM = DC =11cm

MB = (AB—Am)

= (25—11) = 14 cm

Thus, in CMB, we have:

CM = 13 cm

MB = 14 cm

BC = 15 cm

Here let ML = X, hence LB = 14 – X and let CL = Y cm

Now in CML, using Pythagoras theorem

CL² = (CM2 – ML²)

Y² = (132 – X²) eq – 1

Again in CLB, using Pythagoras theorem

CL² = (CB2 – LB²)

Y² = (152 – (14—X) ²) eq – 2

Sub eq 1 in 2, we get

(132 – X²) = (152 – (14—X) ²)

169 – X² = 225 – (196 + X² – 28 X)

169 – X² = 225 – 196 – X² + 28 X

28X = 169 + 196 – 225 + X² – X²

28X = 140

X = 5 cm

Now substitute X value in eq –1

That is Y² = (132 – X²)

Y² = (132 – 5²)

Y² = (169 – 25)

Y² = 144

Y = 12 cm

Therefore CL = 12 cm that is height of the trapezium = 12 cm

Therefore

We know that area of trapezium is × (sum of parallel sides) × height

Therefore Area of trapezium = × (25 + 11) × 12 = 216 cm².

Given: A quadrilateral ABCD

and

AC = 24 cm

BL = 8 cm

DM = 7 cm

Here,

Area (quad. ABCD) = area (ABC) + area (ADC)

Area of triangle = × (base) × (height).

Therefore

Area of quad ABCD = × (AC) × (BL) + × (AC) × (DM)

= × (24) × (8) + × (24) × (7) = 96 + 84 = 180 cm²

Therefore area of the quadrilateral ABCD is 180 cm²

Given: A quadrilateral ABCD

and

AL = 19 cm

BD = 36 cm

CM = 11 cm

Here,

Area (quad. ABCD) = area (ABD) + area (ACD)

Area of triangle = × (base) × (height).

Therefore

Area of quad ABCD = × (BD) × (AL) + × (BD) × (CM)

= × (36) × (19) + × (36) × (11) = 342 + 198 = 540 cm²

Therefore area of the quadrilateral ABCD is 540 cm².

Given: A pentagon ABCDE

and

cm

cm

cm

cm

cm

cm

MC = AC – AM = 18 – 14 = 4 cm

MN = AM – AN = 14 – 6 = 8 cm

Here,

Area (Pent. ABCDE) = area (AEN) + area (DMC) + area (ABC) + area (Trap. DMNE)

Area of triangle = × (base) × (height).

Area of trapezium is × (sum of parallel sides) × height

Here,

Area (AEN) = × (AN) × (EN) = × (6) × (9) = 27 cm².

Area (DMC) = × (MC) × (DM) = × (4) × (12) = 24 cm².

Area (ABC) = × (AC) × (BL) = × (18) × (4) = 36 cm².

Area (Trap. DMNE) = × (DM + EN) × MN = × (12 + 9) × 8 = 84 cm².

Area (Pent. ABCDE) = area (AEN) + area (DMC) + area (ABC) + area (Trap. DMNE)

= 27 + 24 + 36 + 84 = 171 cm².

Area (Pent. ABCDE) = 171 cm^2.

Given: A Hexagon ABCDE

and

cm

cm

cm

cm

cm

cm

cm

cm

cm

AL = AP + PL = 6 + 2 = 8 cm

PN = PL + LN = 2 + 8 = 10 cm

LM = LN + NM = 8 + 2 = 10 cm

ND = NM + MD =2 + 3 = 5 cm

Here,

Area (Hex. ABCDEF) = area (APF) + area (DEN) + area (ABL) + area (CMD)

+ area (Trap. PNEF) + area (Trap. LMCB)

Area of triangle = × (base) × (height).

Area of trapezium is × (sum of parallel sides) × height

Here,

Area (APF) = × (AP) × (FP) = × (6) × (8) = 24 cm².

Area (DEN) = × (ND) × (EN) = × (5) × (12) = 30 cm².

Area (ABL) = × (AL) × (BL) = × (8) × (8) = 32 cm².

Area (CMD) = × (MD) × (CM) = × (3) × (6) = 9 cm².

Area (Trap. PNEF) = × (FP + EN) × PN = × (8 + 12) × 10 = 100 cm².

Area (Trap. LMCB) = × (BL + CM) × LM = × (8 + 6) × 10 = 70 cm².

Area (Hex. ABCDEF) = area (APF) + area (DEN) + area (ABL) + area (CMD)

+ area (Trap. PNEF) + area (Trap. LMCB) = 24 + 30 + 32 + 9 + 100 + 70 = 265 cm².

Area (Hex. ABCDEF) = 265 cm²

Given: A pentagon ABCDE

and

cm

cm

cm

cm

cm

Here,

Area (Pent. ABCDE) = area (ABC) + area (ACD) + area (ADE)

Area of triangle = × (base) × (height).

Here,

Area (ABC) = × (AC) × (BL) = × (10) × (3) = 15 cm².

Area (ACD) = × (AD) × (CD) = × (12) × (7) = 42 cm².

Area (ADE) = × (AD) × (EN) = × (12) × (5) = 30 cm².

Area (Pent. ABCDE) = area (ABC) + area (ACD) + area (ADE) = 15 + 42 + 30 = 87 cm².

Area (Pent. ABCDE) = 87 cm^2.

Given: A figure ABCDEF

AB = 20 cm

BC = 20 cm

ED = 6 cm

AF = 20 cm

AB || FC

FC = 20 cm

Let distance between FC and ED be h = 8 cm

FC || ED

Here,

From the figure we can see that ABCF forms a square and EFCD forms a trapezium.

Area of square = (side length) ²

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

Therefore,

Area of the figure ABCDEF = Area of square (ABCF) + Area of trapezium (EFCD)

Here,

Area of square (ABCF) = (AB) ² = (20)² = 400 cm²

Area of trapezium (EFCD) = × (FC + ED) × h = × (6 + 20) × 8 = 104 cm ²

Area (ABCDEF) = Area of square (ABCF) + Area of trapezium (EFCD) = 400 + 104 = 504 cm².

Area (Fig. ABCDEF) = 504 cm².

Given: A figure ABCDEFGH

BC = FG = 4 cm

AB = HG = 5 cm

CD = EF = 4 cm

ED = 8 cm

ED || AH

AH = 8 cm

Here

ABC and GHF are equal and right angled

AC = AH = ?

In ABC using Pythagoras theorem

AB² = BC² + AC²

5² = 4² + AC²

25= 16+ AC²

AC² = 25 –16 = 9

AC = 3

AH = 3

Area(ABCDEFGH) = area(Rect. ADEH) + 2 X area (ABC)

Area of rectangle = (length × breadth)

Area of triangle = × (base) × (height).

Area(Rect. ADEH) = (DE × AD) = (DE × (AC + AD)) = (8 × (3 + 4)) = 56 cm ²

Area(ABC) = × (BC) × (AC) = × (4) × (3) = 6 cm²

Area(ABCDEFGH) = area(Rect. ADEH) + 2 × area (ABC) = 56 + (2 × 6) = 68 cm²

Area(ABCDEFGH) = 68 cm².

Given: a regular hexagon ABCDEF

AB = BC = CD = DE = EF = FA = 13 cm

AD = 23 cm

Here AL = MD

Therefore Let AL = MD = x

Here AD = AL + LM + MD

23 = 13 + 2x

2x = 23 – 13 = 10

x = 5

Now,

In ABL using Pythagoras theorem

AB² = AL² + LB²

13² = x² + LB²

13² = 5² + LB²

169 = 25 + LB²

LB² = 169 – 25 = 144

LB = 12

Here area (Trap. ABCD) = area (Trap. AFED)

Therefore,

Area (Hex. ABCDEF) = 2 × area (Trap. ABCD)

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

Area (Trap. ABCD) = × (BC + AD) × LB = × (13 + 23) × 12 = 216 cm².

Area(ABCDEFGH) = 2 × area (Trap. ABCD) = 2 × 216 = 432 cm²

Area(ABCDEFGH) = 432 cm².

Given

Length of parallel sides is 14cm and 18 cm

Height (h) = 9 cm

We know that area of trapezium is × (sum of parallel sides) × height

Therefore Area of trapezium = × (14 +18) × 9 = 144 cm².

Given

Length of parallel sides is 19 cm and 13 cm

Area of trapezium= 128 cm²

Let Height (h) =y cm

We know that area of trapezium is × (sum of parallel sides) × height

Therefore Area of trapezium is × (19 +13) × y =128 cm².

× (19 +13) × y =128

⇒ × (32) × y =128

⇒ 16 × y =128

⇒ y = = 8 cm

.^.. Distance between the parallel lines is 8 cm.

Given

Lengths of the parallel sides are in the ratio 3:4

Therefore let one of the side length be 3X and other side length be 4X

Area of trapezium= 630 cm²

Let Height (h) =12 cm

We know that area of trapezium is × (sum of parallel sides) × height

Therefore Area of trapezium is × (3X +4X) × 12 =630 cm².

× (3X + 4X) × 12 = 630

⇒(7X) × 6 =630

⇒ 42X = 630

⇒ X = = 15

.^.. length of the parallel sides is 3X = 3 × 15 =45 cm and 4X = 4 × 15 = 60 cm.

Therefore shortest length of the parallel sides is 45 cm.

Given

Let length of first parallel side X

Length of other parallel side is X + 6

Area of trapezium= 180 cm²

Let Height (h) =9 cm

We know that area of trapezium is × (sum of parallel sides) × height

Therefore Area of trapezium is × (X + 6 +X) × 9 =180 cm².

× (X + 6 +X) × 26 =180

⇒ × (2X + 6) × 9 =180

⇒ 2X + 6 =

⇒ 2X + 6 = 40

⇒2X = 40 – 6 =34

⇒X = 17

.^.. length of the parallel sides is X=17 cm and X + 6 = 17 + 6 = 23 cm.

Therefore length of the longer parallel side is 23 cm.

Given:

AB||DC, DA AB and CL AB

cm

cm

cm

Therefore here AL = DC

That is AL = 7 cm

Hence LB = AB – AL = 13 – 7 = 6cm

In LCB using Pythagoras theorem

BC² = BL² + CL²

10² = 6² + CL²

100 = 36 + CL²

CL² = 100 – 36

CL² = 64

CL = 8

Here CL = AD = height of the trapezium

Therefore height = 8 cm

Now,

We know that area of trapezium is × (sum of parallel sides) × height

Therefore Area of trapezium = × (7 +13) × 8 = 80 cm².

Given

Area of triangle = 1350 m²

Let the length of the height of triangle be Y cm

Therefore its base is 3Y cm

Area of the triangle = × base × height = 1350

× (3Y) × (Y) = 1350

3Y² = 1350 × 2 = 2700

Y² = = 900

Y = 30 cm

Therefore height of triangle is 30 cm and base is 3×30 = 90cm

That is

.

Given

Side length of equilateral triangle is 6 cm

We know that area of the equilateral triangle is given by a²,where a is side length

Therefore area of the triangle is

⇒ × 6² = × 36 = × 9 = .

Given: A rhombus

Diagonal AC = 72 cm

Perimeter = 180 cm

Perimeter of the rhombus = 4x

Therefore 4x = 180

x= 45

hence, the side length of the rhombus is 45 cm

We know that diagonals of the rhombus bisect each other right angles.

AO = AC

⇒AO = ( × 72) cm

⇒AO = 36 cm

From right AOB, we have :

BO² = AB² – AO²

⇒BO² = AB² – AO²

⇒BO² = 45² – 36²

⇒BO² = 2025 – 1296

⇒BO² = 729

BO = 27 cm

BD = 2× BO

BD = 2 × 27 = 54 cm

Hence, the length of the other diagonal is 54 cm.

Area of the rhombus = × 72 × 54 = 1944 cm²

Given

Let length of first parallel side X

Length of other parallel side is X – 14

Area of trapezium= 216 m²

Let Height (h) =12 m

We know that area of trapezium is × (sum of parallel sides) × height

Therefore Area of trapezium is × (X – 14 +X) × 12 =216 m².

× (X – 14 +X) × 12 =216

⇒ × (2X – 14) × 12 =216

⇒ 2X – 14 =

⇒ 2X – 14 = 36

⇒2X = 36 + 14 =50

⇒X = 25

.^.. length of the parallel sides is X=25 cm and X — 14 = 25 – 14 = m.

Therefore lengths of the parallel sides are 25 m, 11 m.

Given : A quadrilateral

Diagonal AC = 40 cm

Perpendiculars to diagonal AC are: BL = 16 cm and DM = 12 cm

Now,

Area (quad. ABCD) = area (ABC) + area (ADC)

Area of triangle = × (base) × (height).

Therefore

Area of quad ABCD = × (AC) × (BL) + × (AC) × (DM)

= × (40) × (16) + × (40) × (12) = 320 + 240 = 560 cm²

Therefore area of the quadrilateral ABCD is 560 cm².

Given

A right angled triangle with hypotenuse = 50 cm and one of the side = 30 cm

Let base = 30 cm

Height = Y cm

Area = ?

By using hypotenuse theorem

Hypotenuse² = base² + height²

50² = 30² + Y²

Y² = 50² – 30² = 2500 – 900 = 1600

Therefore X² = 1600

Y = 40cm

Area of the triangle = × base × height

Area = × 30 × Y

= × 30 ×40 = 600 m².

Given

Length of the base of the triangle = 14 cm

Length of the heigth of the triangle = 8 cm

Area of the triangle = × base × height

Therefore area = × base × height

= × 14 × 8 = 7 × 8 = 56 cm

Given

Area of triangle = 50 m²

Let the length of the height of triangle be Y cm

Therefore its base is 4Y cm

Area of the triangle = × base × height = 50

× (4Y) × (Y) = 50

4Y² = 50 × 2 = 100

Y² = = 25

Y = 5 cm

Therefore length of base is 4 × 5 = 20 cm

Given : A quadrilateral

Diagonal AC = 20 cm

Perpendiculars to diagonal AC are: BL = 11.5 cm and DM = 8.5 cm

Now,

Area (quad. ABCD) = area (ABC) + area (ADC)

Area of triangle = × (base) × (height).

Therefore

Area of quad ABCD = × (AC) × (BL) + × (AC) × (DM)

= × (20) × (11.5) + × (20) × (8.5) = 115 + 85 = 200 cm²

Therefore area of the quadrilateral ABCD is 200 cm².

Given: A rhombus ABCD

Diagonal AC = 24 cm

Side length : AB = BC = CD = DA = 15 cm

We know that diagonals of the rhombus bisect each other right angles.

AO = AC

⇒AO = ( × 24) cm

⇒AO = 12 cm

From right AOB, we have :

BO² = AB² – AO²

⇒BO² = AB² – AO²

⇒BO² = 15² – 12²

⇒BO² = 225 – 144

⇒BO² = 81

⇒BO = 9 cm

BD = 2 × BO

BD = 2 × 9 = 18 cm

Hence, the length of the other diagonal is 18 cm.

Area of the rhombus = × 24 × 18 = 216 cm²

Given: A rhombus ABCD

Diagonal AC = 24 cm

Area = 120 cm²

Area of the rhombus = × AC × BD

Therefore,

× AC × BD = × 24 × BD = 120

24 × BD = 120 × 2

BD = = 10 cm

OB = = = 5 cm

OA = = = 12 cm

Now,

In AOB using Pythagoras theorem

AB² = OA² + OB²

AB² = 12² + 5²

AB² = 144 + 25

AB² = 169

AB = 13

Therefore length of each side of the rhombus = 13 cm

Given

Length of parallel sides is 54cm and 26 cm

Height (h) = 15 cm

We know that area of trapezium is × (sum of parallel sides) × height

Therefore Area of trapezium = × (54 +26) × 15 = 600 cm².

Given

Lengths of the parallel sides are in the ratio 5:3

Therefore let one of the side length be 5X and other side length be 3X

Area of trapezium= 384 cm²

Let Height (h) =12 cm

We know that area of trapezium is × (sum of parallel sides) × height

Therefore Area of trapezium is × (5X +3X) × 12 =384 cm².

× (5X + 3X) × 12 =384

⇒ (8X) × 6 =384

⇒ 48X = 384

⇒ X = = 8

.^.. length of the parallel sides is 5X=5 × 8 =40 cm and 3X = 3 × 8 = 24 cm.

Therefore length of the longest side is 40 cm.

(i) Area of triangle = × (base) × (height).

(ii) Area of || gm = (base) × (height).

(iii) Area of trapezium is × (sum of parallel sides) × (height)

(iv) Given

Length of parallel sides is 14cm and 18 cm

Height (h) = 8 cm

We know that area of trapezium is × (sum of parallel sides) × height

Therefore Area of trapezium = × (14 +18) × 8 = 128 cm².