What Is the Sound Intensity Outside a Soundproofed Room?

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SUMMARY

The discussion centers on calculating the sound intensity outside a soundproofed room, which is 45.0 dB quieter than the inside. The inside sound intensity is given as 1.30e-10 W/(m^2). To find the outside intensity, the relationship between intensity and decibels is utilized, specifically the formula β = 10 log(I/I₀). The correct approach involves using the inside intensity as the reference point, leading to the equation 45 = 10 log(I / 1.30e-10), which must be solved to determine the outside intensity.

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sailordragonball
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A recording engineer works in a soundproofed room that is 45.0 dB quieter than the outside. If the sound intensity in the room is 1.30e-10 W/(m^2), what is the intensity outside?

I know this intensity formula ...

... I = (P/A) OR I = ( P / [(4)(pi)(r^2)] )

... and for dB ...

... beta = (10 dB)(log (I/Io)... I can't make sense of the 2 equations to know what to do next ... any ideas?
 
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Do I substitute 45 dB for the 10 in the dB equation?
 
The outside sound is the more intense sound. The intensity inside is a fraction of the intensity of the outside sound such that the ratio gives a 45 dB difference. What is the value of beta, including its sign, if you take the outside sound intensity as the reference? What is it if you take the inside intensity as the reference?
 
I think I have to revisit working with logs ... it's been a while ... LOL - I'll get back to you though.
 
I came up with this ...

... 45 = 10 log ( I / 1e-10 ) = 10 log ( 1.3e-12 / 1e-10 ) ...

... does that sound right? LOL
 
sailordragonball said:
I came up with this ...

... 45 = 10 log ( I / 1e-10 ) = 10 log ( 1.3e-12 / 1e-10 ) ...

... does that sound right? LOL

No it doesn't. The 45 is in the right place, but where did 1e-10 come from? With a +45 on the left, the sound intensity in the room should be the reference I_o and the intensity outside the I. what is the inverse function of the log functiuon?
 

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