Q48E All that is known concerning a m... [FREE SOLUTION]

Chapter 4: Q48E (page 186)

All that is known concerning a mysterious second-order constant-coefficient differential equation $y'' + py' + qy = g (t)$ is that $t^{2} + 1 + e^{t} cost, 鈥夆赌� t^{2} + 1 + e^{t} sint$ and $t^{2} + 1 + e^{t} cost + e^{t} sint$ are solutions.
(a)Determine two linearly independent solutions to the corresponding homogeneous equation.
(b) Find a suitable choice of p, q, and g(t) that enables these solutions.

Short Answer

Expert verified

a. $y = e^{t} cost$ and $y = e^{t} sint$

b. $鈥� p = - 2$ , $q = 2$ and $g (t) = 2 t^{2} - 4 t + 4$

Step by step solution

Determine first linearly independent solutions to the corresponding homogeneous equation.

The differential equation is,

$y'' + py' + qy = g (t) 鈥夆赌夆€夆赌夆€夆赌夆€夆赌夆€夆赌夆€夆赌夆€夆赌夆€夆赌夆€夆赌夆€夆赌夆€夆赌夆€夆赌夆€夆赌� . ..... (1)$

Write the homogeneous differential equation of the equation (1),

$y'' + py' + qy = 0 鈥夆赌夆€夆赌夆€夆赌夆€夆赌夆€夆赌夆€夆赌夆€夆赌夆€夆赌夆€夆赌夆€夆赌夆€夆赌夆€� . ..... (2)$

Let the solution for the above equation,

$y = e^{t} cost$

Now find the first and second derivatives of the above equation,

$\begin{matrix} y_{p}' (t) = e^{t} cost - e^{t} sint \\ y_{p}'' (t) = e^{t} cost - e^{t} sint - (e^{t} sint + e^{t} cost) \\ y_{p}'' (t) = - 2 e^{t} sint \end{matrix}$

Substitute the value of $y_{p} (t), 鈥� y_{p}' (t)$ and $y_{p}'' (t)$ in the equation (2),

$\begin{matrix} y'' + py' + qy = 0 \\ - 2 e^{t} sint + p [e^{t} cost - e^{t} sint] + q [e^{t} cost] = 0 \\ - [2 + p] e^{t} sint + [p + q] e^{t} cost = 0 \end{matrix}$

Comparing all coefficients of the above equation,

$\begin{matrix} - [2 + p] = 0 鈥夆赌� 鈬� p = - 2 \\ p + q = 0 鈥夆赌夆€夆赌夆€夆赌夆€夆赌夆€夆赌夆€夆赌夆€夆赌夆€夆赌夆€夆赌夆€夆赌夆€夆赌夆€夆赌� . ..... (3) \end{matrix}$

Substitute the value of p in the equation (3),

$\begin{matrix} p + q = 0 \\ - 2 + q = 0 \\ q = 2 \end{matrix}$

Substitute the value of p and q in the equation (2),

$\begin{matrix} y'' + py' + qy = 0 \\ y'' - 2 y' + 2 y = 0 \end{matrix}$

Therefore, the particular solution of equation (1),

$y'' - 2 y' + 2 y = 0$

Determine second linearly independent solutions to the corresponding homogeneous equation.

The differential equation is,

$y'' + py' + qy = g (t) 鈥夆赌夆€夆赌夆€夆赌夆€夆赌夆€夆赌夆€夆赌夆€夆赌夆€夆赌夆€夆赌夆€夆赌夆€夆赌夆€夆赌夆€夆赌� . ..... (1)$

Write the homogeneous differential equation of the equation (1),

$y'' + py' + qy = 0 鈥夆赌夆€夆赌夆€夆赌夆€夆赌夆€夆赌夆€夆赌夆€夆赌夆€夆赌夆€夆赌夆€夆赌夆€夆赌夆€� . ..... (2)$

Let the solution for the above equation,

$y = e^{t} sint$

Now find the first and second derivatives of the above equation,

$\begin{matrix} y_{p}' (t) = e^{t} sint + e^{t} cost \\ y_{p}'' (t) = e^{t} sint + e^{t} cost + (e^{t} cost - e^{t} sint) \\ y_{p}'' (t) = 2 e^{t} cost \end{matrix}$

Substitute the value of $y_{p} (t), 鈥� y_{p}' (t)$ and $y_{p}'' (t)$ in the equation (2),

$\begin{matrix} y'' + py' + qy = 0 \\ 2 e^{t} cost + p [e^{t} sint + e^{t} cost] + q [e^{t} sint] = 0 \\ [2 + p] e^{t} cost + [p + q] e^{t} sint = 0 \end{matrix}$

Comparing all coefficients of the above equation,

$\begin{matrix} 2 + p = 0 鈥夆赌� 鈬� p = - 2 \\ p + q = 0 鈥夆赌夆€夆赌夆€夆赌夆€夆赌夆€夆赌夆€夆赌夆€夆赌夆€夆赌夆€夆赌夆€夆赌夆€夆赌夆€夆赌� . ..... (3) \end{matrix}$

Substitute the value of p in the equation (3),

$\begin{matrix} p + q = 0 \\ - 2 + q = 0 \\ q = 2 \end{matrix}$

Substitute the value of p and q in the equation (2),

$\begin{matrix} y'' + py' + qy = 0 \\ y'' - 2 y' + 2 y = 0 \end{matrix}$

Hence, the particular solution of equation (1),

$y'' - 2 y' + 2 y = 0$

The two linearly independent solutions to the corresponding homogeneous equation are,

$y = e^{t} cost$ and $y = e^{t} sint$

Find a value of p, q, and g(t).

From the step 1,

$鈥� p = - 2$ and $q = 2$

Substitute the value of p and q in the equation (1),

$\begin{matrix} y'' + py' + qy = g (t) \\ y'' - 2 y' + 2 y = g (t) 鈥夆赌夆€夆赌夆€夆赌夆€夆赌夆€夆赌夆€夆赌夆€夆赌夆€夆赌夆€夆赌夆€夆赌夆€夆赌夆€� . ..... (4) \end{matrix}$

Let a particular solution,

$y_{p} (t) = t^{2} + 1$

Now find the first and second derivatives of the above equation,

$\begin{matrix} y_{p}' (t) = 2 t \\ y_{p}'' (t) = 2 \end{matrix}$

Substitute the value of $y_{p} (t), 鈥� y_{p}' (t)$ and $y_{p}'' (t)$ in the equation (4),

$\begin{matrix} y'' - 2 y' + 2 y = g (t) \\ 2 - 2 (2 t) + 2 (t^{2} + 1) = g (t) \\ 2 t^{2} - 4 t + 4 = g (t) \\ g (t) = 2 t^{2} - 4 t + 4 \end{matrix}$

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Short Answer

Step by step solution

Determine first linearly independent solutions to the corresponding homogeneous equation.

Determine second linearly independent solutions to the corresponding homogeneous equation.

Find a value of p, q, and g(t).

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