The Laplace Transform for f(t)=6e^(-9t) sin(6t) is (6)/((s+9)^2−36). How to add in the t.

erwachsenc6

erwachsenc6

Answered question

2022-10-19

The Laplace Transform I'm having trouble with is:
f ( t ) = 6 t e 9 t sin ( 6 t )
I'm not sure what the protocol is for multiplying t into it.
The Laplace Transform for f ( t ) = 6 e 9 t sin ( 6 t ) is 6 ( s + 9 ) 2 36
Can't figure out how to add in the t.

Answer & Explanation

Davin Meyer

Davin Meyer

Beginner2022-10-20Added 13 answers

If F ( s ) = L [ f ( t ) ] ( s ) = 0 f ( t ) e s t   d t
and
G ( s ) = L [ t f ( t ) ] ( s ) = 0 t f ( t ) e s t   d t
then
d F d s = d   d s 0 f ( t ) e s t   d t = 0   s f ( t ) e s t   d t = 0 t f ( t ) e s t   d t = 0 t f ( t ) e s t   d t = G ( s )
Hence G ( s ) = d F d s
Thus L [ 6 t e 9 t sin ( 6 t ) ] ( s ) = d   d s ( 6 ( s + 9 ) 2 36 ) =   . . .

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