CREATED BY: AMIT.N.YADAV AMIT GARG (TGT MATHS)

PRESENTATION ON “SURFACE AREAS AND VOLUME” (CLASS IX) CREATED BY: AMIT.N.YADAV AMIT GARG (TGT MATHS) (KV JRC BAREILLY)

Cuboid and Cube In our day to day life ,we come across objects like a Wooden box, a Match box, a Tea packet ,a Chalk box, a Dice , a Book etc. All these objects are made of six rectangular plane regions. These objects are in the shape of a cuboid. “cuboid is a solid bounded by six rectangular plane regions”

Surface Area of a Cuboid As we have seen that the surface of a cuboid consists of six rectangular faces. “Surface area of a cuboid equals the sum of the areas of its six rectangular faces” Consider a cuboid whose Length is l cm, Breadth is b cm and Height h cm.

Area of Top face EFGH = (l * b)cm2 • Area of Bottom face ABCD =(l*b)cm2 • Area of Side face AEHD =(b*h)cm2 • Area of Side face BFGC = (b*h)cm2 • Area of Front face ABFE = (l*h)cm2 • Area of Back face DHGC = (l*h)cm2

. Total surface Area of the Cuboid = sum of the areas of all its six faces = lb+lb+bh+bh+lh+lh = 2lb+ 2bh + 2lh = 2 (lb+bh+lh) cm2

Surface Area of a Cube “A cuboid whose length, breadth and height are all equal , is called a cube” Surface area of a cube = 2(a*a + a*a + a*a) = 2(a2 + a2 + a2) = 6 a2

Lateral Surface Area Of a Cuboid If out of the six faces of a cuboid , we only find the sum of the areas of four faces leaving the bottom and top faces. This sum is called the lateral surface area of the cuboid. L.S.A of the cuboid =Area of face AEHD + Area of face BFGC + Area of face ABFE + Area of face DHGC = b*h + b*h + l*h + l*h = 2bh + 2lh = 2 ( l+ b) * h

Lateral Surface Area of a Cube L.S. Area of a cube = 2(a*a + a*a) = 2(a2 + a2) = 4a2

Examples… Example 1) Find the Surface Area of a match box whose length , breadth and height are 16 cm,8 cm , and 6 cm respectively. Solution) since match box is in the form of a cuboid. Here l=16 cm , b= 8 cm , h= 6 cm Surface Area of Match Box=2(lb + bh + lh) =2(16*8+8*6+16*6) cm2 =2(128+48+96) cm2 =544cm2

Example 2) Find the surface Area of a cube whose edge is 11 cm Solution)Here l=11cm surface area of the given cube = 6l2 =6 (11)2 cm2 = 6 * 121 Cm2 =726 cm2

Example 3)Three cubes each of side 5 cm are joined end to end. Find the surface area of the resulting cuboid. Solution) The dimension of the cuboid so formed are as under l=15cm , b=5cm , h=5cm Surface Area of cuboid= 2(lb + bh + lh) = 2(75+25+75) cm2 = 350 cm2

. Example 4) A swimming pool is 20m in length ,15m in breadth and 4m in depth. Find the cost of cementing its floor and walls at the rate of Rs 20 per square metre. Solution) we have l=20m , b=15m , h=4m Area of the four walls = 2(l + b) * h = 2(20 + 15) * 4 m2 = 280 m2 Area of the floor of the swimming pool= l * b =(20*15) m2 = 300 m2

Continue… Total Area to be cemented = (280 + 300) m2 = 580 m2 Cost of cementing of 1 m2 = Rs 20 Cost of cementing the floor and the walls = Rs(20 * 580) = Rs 11600

Questions for practices… Question 1)The dimensions of the cuboid are in the ratio 1:2:3 and its total surface area is 88m2.Find the dimension. Question 2) The sum of length breadth and depth of a cuboid is 19cm and the length of its diagonal is 11cm. Find the surface area of the cuboid. Question 3) Find the lateral surface area and total surface area of a cube of edge 10cm. Question 4) Each edge of a cube is increased by 50%. Find the percentage increase in the surface area of the cube.

Surface Area of Right circular Cylinder = Consider a right circular cylinder of radius “r” and height “h” Area of the lateral surface of the cylinder =Area of the rectangle = l * b = 2Πr * h = 2 Π r h square units b=h l=2Πr

r Other method of Finding Surface area of cylinder with the help of paper h B=h L=2πr Surface area of cylinder = Area of rectangle= 2 π r h

Thus , for a cylinder of radius “r” and height “h” , we have L.S.A = 2 Π r h square units Each base Area = Π r2 Total Surface Area = (2 Π r h + 2Π r2 ) = 2 Π r (h + r ) Square units

r r h Outer Curved Surface area of cylinder Activity -: Keep bangles of same radius one over another. It will form a cylinder. Formation of Cylinder by bangles Circumference of circle = 2 π r It is the area covered by the outer surface of a cylinder. Circumference of circle = 2 π r Area covered by cylinder = Surface area of cylinder = (2 π r) x( h)

Curved surface circular surfaces Total Surface area of a solid cylinder = area of two circular surfaces Area of curved surface + = (2 π r) x( h) + 2 π r2 = 2 πr ( h+ r)

Examples… Example1) The curved surface area of a right circular cylinder of height 14 cm is 88 cm2.Find the diameter of the base of the cylinder. Solution) Let r be radius and h be the height of the cylinder. 2 π r h = 88 and h = 14 2 * 22/7 * r * 14 = 88 88 r = 88 r = 1 Diameter of the base = 2r = 2 cm

Example 2) A rectangular sheet of paper 44 cm * 18 cm is rolled along its length and a cylinder is formed. Find the radius of the cylinder. Solution) Let r be the radius of the base and h be the height. Then , h = 18 cm 2 π r = 44 r = 7cm Hence, radius of the cylinder is 7 cm. 44 cm 18 cm 18 cm

Example 3) The ratio between the curved surface area and the total surface area of a right circular cylinder is 1:2 . Find the ratio between the height and the radius of the cylinder . Solution) Let h be the height and r be the radius and of the cylinder. 2 π r h / 2 π r h + 2 π r2 = 1/2 2 π r h / 2 π r (h + r) = ½ h / h + r = ½ 2h = h + r h = r h:r = 1 :1

Questions for practices… Question 1) Curved surface area of a right circular cylinder is 4.4m2 . If the radius of the base of the cylinder is 0.7 m , find its height. Question 2) In a hot water heating system , there is a cylindrical pipe of length 28m and diameter 5cm.Find the total radiating surface in the system. Question 3) A cylindrical pillar is 50cm in diameter and 3.5m in height. Find the cost of painting the curved surface of the pillar at the rate of 12.50 per m2 . Question 4)It is required to make a closed cylindrical tank of height 1m and base diameter 140cm from a metal sheet. How many square meters of the sheet are required for the same?

l 2πr Surface area of a Right Circular cone

l 2πr V A B Curved surface Area of the cone = Area of the sector VAB = ½ * ( arc length * radius) = ½ * 2 π r * l = π r l C.S.R = ½ * (circumference of base * slant height)

r l=2r Curved Surface Area of a Cone • Curved Surface Area of a Cone = 1 / 2 * l * 2 Π r • = Π r l • Total Surface Area of a cone = Π r l + Π r2 =Π r ( l + r)

Examples… Example 1)The diameter of a cone is 14cm and its slant height is 9 cm. Find the area of its curved surface . Solution) S = Π r l Here , r = 14/2 cm and l = 9 cm s = 22/7 * 7 * 9 cm2 = 198 cm2 Example 2) Find the total surface area of a cone , if its slant height is 9 m and the radius of its base is12m. Solution) S = Π r l + Π r2 S=Π r ( l + r) S = ( 22/7 * 12 * (12 + 9)) m2 = 792 m2

Example 3) The radius of a cone is 3 cm and vertical height is 4 cm. Find the area of the curved surface. Solution) we have r = 3 cm and h = 4 cm l2 = r2 + h2 l2 = 3*3+ 4*4 l2 = 5 cm Area of the curved surface = S = Π r l =22/7 * 3 * 5 = 47.14cm2 4cm 3cm

Questions for practices… Question 1) Find the curved surface area of a cone , if its slant height is 60 cm and the radius of its base is 21 cm. Question 2) The radius of a cone is 5cm and vertical height is 12cm. Find the area of the curved surface. Question 3)The radius of a cone is 7cm. And area of curved surface is 176cm2 .Find the slant height.

Surface Area of a Sphere 2r 2r r Surface Area of a Sphere = 4 Π r2 Curved Surface Area of a Hemi Sphere = 2 Π r2 Total Surface Area of a Hemi Sphere = 2 Π r2 + Π r2 = 3 Π r2

Examples… Example 1) Find the surface area of a sphere of radius 7cm. Solution) s = 4 Π r2 Here , r = 7cm s = 4 * 22/7 * 7 * 7 cm2 = 616 cm2 Example 2) Find the surface area and total surface area of a hemisphere of radius 21cm. Solution) S = 2 Π r 2 and s1 = 3Π r2 Here, r = 21 s= 2 * 22/7 * 21 * 21 cm2 s= 2772 cm2 s1= 4158 cm2

Questions for practices… Question1)Find the surface area of a sphere of radius (i) 10.5 cm (ii) 5.6 cm (iii) 14 cm Question 2) Find the surface area of a sphere of diameter. (i)14 cm (ii) 21cm (iii)3.5cm

Continue… Question 3) Find the total surface area of a hemi sphere and a solid hemisphere each of radius 10cm . Question 4) The surface area of a sphere is 5544cm2 , find its diameter.

Volume of a Cuboid b Volume of a Cuboid = Base area * Height = length * breadth * Height

Examples… Example 1) The volume of a cuboid is 440 cm3 and the area of its base is 88cm2. Find the breadth of the tank if its length and the depth are respectively 2.5m and 10m. Solution) Volume = 440 cm3 and Area of the base = 88cm2 Height = Volume / Area of the base = 440/ 88 cm = 5 cm

Questions for practices… Question 1) A cuboidal water tank is 6m long , 5m wide and 4.5 m deep. How many litre of water can it hold? Question 2) A cubical vessel is 10 m long and 8m wide. How high must it be made to hold 380 cubic metres of a liquid ?

a a a VOLUME OF CUBE Area of base (square) = a2 Height of cube = a Volume of cube = Area of base x height = a2 x a = a3 (unit)3

Examples…. Example 1) How many 3 metre cubes can be cut from a cuboid measuring 18 m * 12 m * 9 m. Solution) Edge of each cube = 3m Volume of each cube = (edge)3 = 3*3*3 m3 = 27m3 Volume of the cuboid = (18 * 12 * 9) m3 = 1944 m3 Number of cube = volume of the cuboid/volume of the cube = 1944 / 27 = 72

r h Volume of cylinder Volume of cylinder = Area of base x vertical height = π r2* h

Examples… Example 1) Find the volume of a right circular cylinder , if the radius (r) of its base and height(h) are 7cm and 15cm respectively. Solution) volume of cylinder = π r2 h Here r = 7cm and h = 15cm Volume of the cylinder = 22/7 * 7 * 7 * 15 cm3 = 2310 cm3

Example 2) The area of the base of a right circular cylinder is 154cm2 and its height is 15cm . Find the volume of the cylinder. Solution) volume of a cylinder = area of the base * height Here , area of the base = 154cm and height= 15cm = (154 * 15) cm3

Questions for practices… Question 1 ) Find the volume of a right circular cylinder , if the radius (r) of its base and height (h) are 7cm and 15cm respectively. Question 2) The volume of a cylinder is 448 π cm3. Find its lateral surface area and total surface area. Question 3)A well with 10m inside diameter is dug 14m deep. Earth taken out of it is spread all around to a width of 5m to form an embankment. Find the height of embankment.

l = Slant height h Base r Cone

Volume of a Cone h h Here the vertical height and radius of cylinder & cone are same. r r 3( volume of cone) = volume of cylinder 3( V )= π r2h V = 1/3 π r2h

Volume = 3V Volume =V If both cylinder and cone have same height and radius then volume of a cylinder is three times the volume of a cone

Mr. Mohan has only a little jar of juice he wants to distribute it to his three friends. This time he choose the cone shaped glass so that quantity of juice seem to appreciable.

Examples Example 1) A conical tank is 3m deep and its circular top has radius 1.75m. Find the capacity of the tank in kilolitres. Solution) we have , r= 1.75 m , h= 3m Capacity of the tank = 1/3 π r2h Capacity of the tank = 1/3 * 22/7 *1.75 * 1.75 * 3 m3 Capacity of the tank = 9.625 m3 = 9.625 kilolitre ( 1m3 = 1 kilolitre)

Example 2) The height and the slant height of a cone are 21 cm and 28 cm respectively. Find the volume of the cone. Solution ) l2 = r2 + h2 r = 7√ 7 cm. volume of the cone = 1/3 π r2h =1/3 * 22/7 *7√7 *√7 *21 cm3 = 7546cm3

Questions for practices… Question 1 ) Find the volume of a right circular cone 1.02m high, if the radius of its base is 28cm. Question 2) The area of the base of a right circular cone is 314cm2 and its height is 15cm. Find the volume of the cone. Question 3) A semi-circular sheet of metal of diameter 28cm is bent into an open conical cup. Find the depth and capacity of cup.

CREATED BY: AMIT.N.YADAV AMIT GARG (TGT MATHS)