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WELCOMETOMYPRESENTATION... Name : Arup Sarkar ID : 161-15-6721
QUESTION - 11 Solve the following nonhomogeneous LDE by operator method :- (𝐷2 - 5D + 4)y = sin 5x
SOLUTION Given, (𝐷2 - 5D + 4)y= sin 5x Complementary Function : Considering the Homogeneous case of the given DE . ∴ Auxilary Equation is, 𝑚2 - 5m + 4 = 0 𝑚2 - m - 4m + 4 = 0 (m – 1)(m – 4) = 0 ∴ m = 1 , 4 ∴ yc = C1 𝒆 𝒙 + C2 𝒆 𝟒𝒙
Particular Integral : yp = 𝟏 𝑫 𝟐 −𝟓𝑫+𝟒 . sin 5x = 𝟏 −𝟓 𝟐 −𝟓𝑫+𝟒 . sin 5x = 𝟏 − 𝟐𝟏 −𝟓𝑫 . sin 5x = ( - 1) . [ 𝟏 𝟐𝟏 + 𝟓𝑫 ] . sin 5x = ( - 1) . [ (𝟐𝟏 − 𝟓𝑫 ) (𝟐𝟏 + 𝟓𝑫 )(𝟐𝟏 − 𝟓𝑫 ) ] . sin 5x = ( - 1) . [ (𝟐𝟏 − 𝟓𝑫 ) 𝟐𝟏 𝟐 − 𝟓𝑫 𝟐 ] . sin 5x = ( - 1) . [ (𝟐𝟏 − 𝟓𝑫 ) 𝟒𝟒𝟏 −𝟐𝟓𝑫 𝟐 ] . sin 5x = ( - 𝟏 𝟏𝟎𝟔𝟔 ) . (𝟐𝟏 − 𝟓𝑫 ) . sin 5x = ( - 𝟏 𝟏𝟎𝟔𝟔 ) . [ 𝟐𝟏𝒔𝒊𝒏 𝟓𝒙 − 𝟓 𝒅 𝒅𝒙 𝒔𝒊𝒏 𝟓𝒙 ] = ( - 𝟏 𝟏𝟎𝟔𝟔 ) . (𝟐𝟏sin 5x − 𝟓. 𝟓 𝒄𝒐𝒔 𝟓𝒙) = ( - 𝟏 𝟏𝟎𝟔𝟔 ) . (𝟐𝟏sin 5x − 𝟐𝟓𝒄𝒐𝒔 𝟓𝒙)
∴ The Complete Solution, y = yc + yp = C1 𝒆 𝒙 + C2 𝒆 𝟒𝒙 + [( - 𝟏 𝟏𝟎𝟔𝟔 ) . (𝟐𝟏sin 5x − 𝟐𝟓𝒄𝒐𝒔 𝟓𝒙)]
Thank you...

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linear differential equation

  • 1. WELCOMETOMYPRESENTATION... Name : Arup Sarkar ID : 161-15-6721
  • 2. QUESTION - 11 Solve the following nonhomogeneous LDE by operator method :- (𝐷2 - 5D + 4)y = sin 5x
  • 3. SOLUTION Given, (𝐷2 - 5D + 4)y= sin 5x Complementary Function : Considering the Homogeneous case of the given DE . ∴ Auxilary Equation is, 𝑚2 - 5m + 4 = 0 𝑚2 - m - 4m + 4 = 0 (m – 1)(m – 4) = 0 ∴ m = 1 , 4 ∴ yc = C1 𝒆 𝒙 + C2 𝒆 𝟒𝒙
  • 4. Particular Integral : yp = 𝟏 𝑫 𝟐 −𝟓𝑫+𝟒 . sin 5x = 𝟏 −𝟓 𝟐 −𝟓𝑫+𝟒 . sin 5x = 𝟏 − 𝟐𝟏 −𝟓𝑫 . sin 5x = ( - 1) . [ 𝟏 𝟐𝟏 + 𝟓𝑫 ] . sin 5x = ( - 1) . [ (𝟐𝟏 − 𝟓𝑫 ) (𝟐𝟏 + 𝟓𝑫 )(𝟐𝟏 − 𝟓𝑫 ) ] . sin 5x = ( - 1) . [ (𝟐𝟏 − 𝟓𝑫 ) 𝟐𝟏 𝟐 − 𝟓𝑫 𝟐 ] . sin 5x = ( - 1) . [ (𝟐𝟏 − 𝟓𝑫 ) 𝟒𝟒𝟏 −𝟐𝟓𝑫 𝟐 ] . sin 5x = ( - 𝟏 𝟏𝟎𝟔𝟔 ) . (𝟐𝟏 − 𝟓𝑫 ) . sin 5x = ( - 𝟏 𝟏𝟎𝟔𝟔 ) . [ 𝟐𝟏𝒔𝒊𝒏 𝟓𝒙 − 𝟓 𝒅 𝒅𝒙 𝒔𝒊𝒏 𝟓𝒙 ] = ( - 𝟏 𝟏𝟎𝟔𝟔 ) . (𝟐𝟏sin 5x − 𝟓. 𝟓 𝒄𝒐𝒔 𝟓𝒙) = ( - 𝟏 𝟏𝟎𝟔𝟔 ) . (𝟐𝟏sin 5x − 𝟐𝟓𝒄𝒐𝒔 𝟓𝒙)
  • 5. ∴ The Complete Solution, y = yc + yp = C1 𝒆 𝒙 + C2 𝒆 𝟒𝒙 + [( - 𝟏 𝟏𝟎𝟔𝟔 ) . (𝟐𝟏sin 5x − 𝟐𝟓𝒄𝒐𝒔 𝟓𝒙)]