Browsing by Author Dukkipati, Rao V.

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  • Authors: Dukkipati, Rao V. (2010)

  • Numerical computations -- Linear system of equations -- Solution of algebraic and transcendental equations -- Numerical differentiation -- Finite differences and interpolation…

  • Solving_Engineering_System_Dynamics_Problems_with_MATLAB.pdf.jpg
  • Book


  • Authors: Dukkipati, Rao V. (2007)

  • Solving Engineering System Dynamics Problems with MATLAB book is designed as an introductory undergraduate course for engineering students of all disciplines. Engineering system dynamics is a multidisciplinary subject and presents a system dynamics methodology based on mathematical fundamentals and stresses physical system modeling. The classical methods of control systems and vibration analysis engineering are covered: Matrix analysis, Laplace transforms and transfer functions, Root locus analysis and design, Routh-Hurwitz stability analysis, Frequency response methods of analysis including Bode, Nyquist, and Nichols, Steady, state error analysis, Second order systems approximations,...

Browsing by Author Dukkipati, Rao V.

Jump to: 0-9 A B C D E F G H I J K L M N O P Q R S T U V W X Y Z
or enter first few letters:  
Showing results 1 to 2 of 2
  • Numerical_Methods_by_Rao_V._Dukkipati.pdf.jpg
  • Book


  • Authors: Dukkipati, Rao V. (2010)

  • Numerical computations -- Linear system of equations -- Solution of algebraic and transcendental equations -- Numerical differentiation -- Finite differences and interpolation…

  • Solving_Engineering_System_Dynamics_Problems_with_MATLAB.pdf.jpg
  • Book


  • Authors: Dukkipati, Rao V. (2007)

  • Solving Engineering System Dynamics Problems with MATLAB book is designed as an introductory undergraduate course for engineering students of all disciplines. Engineering system dynamics is a multidisciplinary subject and presents a system dynamics methodology based on mathematical fundamentals and stresses physical system modeling. The classical methods of control systems and vibration analysis engineering are covered: Matrix analysis, Laplace transforms and transfer functions, Root locus analysis and design, Routh-Hurwitz stability analysis, Frequency response methods of analysis including Bode, Nyquist, and Nichols, Steady, state error analysis, Second order systems approximations,...