1 Answer

Ashish Yadav · Answer 1 · 2023-10-25T01:37:43+0000

Answer:

$y=e^(-3t)(A\: cos\: t+B\:sin\:t)$

Explanation:

Given Second-Order Homogenous Differential Equation

y''+6y'+10y=0

Use Auxiliary Equation

$m^2+6m+10=0\\\\(m+3)^2+1=0\\\\(m+3)^2=-1\\\\m+3=\pm i\\\\m=-3\pm i$

General Solution

$y=e^(pt)(A\: cos\: qt+B\:sin\:qt)\\\\y=e^(-3t)(A\: cos\: t+B\:sin\:t)$

Note that the DE has two distinct complex solutions
$p\pm qi$ where
and
are arbitrary constants.

Please log in or register to add a comment.