a right triangle whose sides are 3cm 4cm other than hypotenuse is made to revolved about its hypotenuse find the volume and surface area of the a double cone so form
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Answer:
Volume of double Cone =
&
Surface area of double Cone =
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step by step explaination :—
Let, ABC be a right angled triangle, right angled at A and BC is the hypotenuse.{as shown on my attachment}
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Also, let AB = 3cm
Also, let AB = 3cmand, AC = 4cm
Then,
here, we get →
BC = 5cm
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As, ∆ABC revolves about the hypotenuse BC. It forms two cones ABD and ACD.{as shown in my attachment}
In ∆AEB and ∆CAB,
/_AEB = /_CAB ----{each 90°}
/_ABE = /_ABC ----{common}
therefore, ∆AEB ~ ∆CAB --[by AA similarity]
So, radius of the base of each cone, AE = 2.4cm
Now,
So, height of the cone ABD = BE = 1.8cm
therefore,
height of the cone, ACD = CE = BC — BE
CE = 5 — 1.8 = 3.2cm
Now,
Volume of the cone ABD →
similarly, volume of the cone ACD →
therefore,
REQUIRED volume of double cone →
= 10.86 + 19.31
= 30.17cm³
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& also
surface area of cone ABD = πrl
similarly,
surface area of cone ACD = πrl
therefore,
required surface area of double cone →
= 22.63 + 30.17
= 52.8cm²
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hope it's helpful,,,,
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