SERIES SOLUTION OF ORDINARY DIFFERENTIALL EQUATION
kavin_raval
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Nov 02, 2015
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ADVANCE ENGINEERING MATHEMATICS
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Added: Nov 02, 2015
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Series solution to ordinary differential equations -: CREATED BY :- ALAY MEHTA 141080106011 SHIVANI PATEL 141080106021 KAVIN RAVAL 141080106026 KUNTAL SONI 141080106028 ADVANCE ENGINEERING MATHEMATICS [A.E.M.]
Introduction In many “ENGINEERING” applications, we come across the differential equations which are having coefficients. So , for solving this types of problems we have different methods POWER SERIES METHOD. FROBENIOUS METHOD.
Basic Concepts POWER SERISE:~ A series from where b0,b1,…and x0 are constants(real or complex) and x varies around x0 is called a POWER SERISE in (x-x0) in one variable. In particular, when x0=0, then It called power serise in x.
Convergence of POWER SERISE As far as the convergence of power series concern, we say that a power series converges, For x=a: and this series will converge if limit of partial sums
Convergence of POWER SERISE There is some +ve number R such that the series converges for |x-x0|<R and diverges for |x-x0|>R The number R is called radius of converges of the power series. If the series only converges at 0, then R is 0, If converges to every where then R is ∞. The collections of values of x for which the power series converge is called interval or range of convergence.
Power series solution Theorem If x=x0 is ordinary of differential equation where , is obtained as linear combination of two linearly independent power series solutions y1 and y2, each of which is of the from and these power series both converges in same interval | x-x0|<R (R>0 ).
Power series solution Theorem c0,c1..are constant and x0 is known as the center of expansion .
Steps for the solution of O.D.E by power series method Find O.P x0 if is not given. Assume that Assuming that term by term differentiation is valid , then differentiate eq. (1) term wise to get y’ , y’’.. And substitute the values in eq.( i ). Collect the coefficients of like powers of(x-x0) and equate them to “0”, or make the exponent on the x to be the same.
Steps for the solution of O.D.E by power series method Collect the coefficients of like powers of(x-x0) and equate them to “0”, or make the exponent on the x to be the same. Substituting these values of cm in eq.(1) to get series solution of equation ..( i ).
Concept of Frobeninus Method In above section we have learn that power series solution of the differential equation about an ordinary point x0. But when, x0 is regular singular point then an extension of power series method known as “Frobeninus method” or “Generalized power series method” When x0 is regular singular point then the solution will be Here, r is unknown constant to be determined.
Systematized steps for Frobeninus Method Consider the differential equation from eq..( i ) with a regular singular point x=x0. Assume that the eq..( i ) has a solution of the from where r, c0, c1,… are constants to be determined, ‘r’ is called “index” and c0, c1, c2,..are coefficients. Here, the eq..(2) is valid in 0<(x-x0)<R. Assuming that term by term differentiation is valid, we get
Systematized steps for Frobeninus Method On substituting the values of y’, y’’ and y’’’ in the given eq..( i ), we get an algebraic eq with various powers of x. Equate to zero, the Coefficients of the lowest degree terms in x, assuming c0≠0,this gives a quadratic eq in r, which is known as an “Indicial equation”. Coefficients of general term in x, this gives a relation between the coefficients of two different orders i.e. & (say). This is called “Recurrence relation”. Coefficients of some other powers of x.
Systematized steps for Frobeninus Method Using the result a & c and employing the appropriate theorem, the G.S is as where A and B are arbitrary constants and y1 and y2 are two linearly independent solution. Further There are FOUR methods to solve the different types of equations.