Please help me with this problem!!!
Solve for3^(4x-5)=(1/27)^(2x+10) x. Show your work.
(if it is an exponent in parenthesis it is nothing but my trying to make sure u know its grouped together.)
WILL REPORT IF WRONG
BRAINLIEST TO FIRST CORRECT

[tex]3 {}^{4x - 5} = ( \frac{1}{27} ) {}^{2x + 10} \\ note \: \: that = \\ ( \frac{1}{27} ) = ( \frac{1}{3 {}^{3} } ) = 3 {}^{ - 3} \\ \\ 3 {}^{4x - 5} = (3 {}^{ - 3} ) {}^{2x + 10} \\ 3 {}^{4x + 5} = 3 {}^{ - 3(2x + 10)} \\ equal \: \: bases = > equal \: exponents[/tex]

[tex]4x - 5 = - 3(2x + 10) \\ 4x - 5 = - 6x - 30 \\ 4x + 6x = - 30 + 5 \\ 10x = - 25 \\ x = - 2.5[/tex]

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wegnerkolmp2741o wegnerkolmp2741o · Answer 2 · 2022-08-08T14:15:21+02:00

wegnerkolmp2741o wegnerkolmp2741o

08-08-2022

Answer:

x = -2.5

Step-by-step explanation:

3^(4x-5)=(1/27)^(2x+10)

We are working with exponents

We can rewrite 1/27 as 3^-3

3^(4x-5)=(3^-3)^(2x+10)

Now we know that a^b^c = a^(b*c)

3^(4x-5)=3^( -3* (2x+10))

3^(4x-5)=3^( -6x -30)

The bases are the same so the exponents must be the same

4x-5 = -6x-30

Add 6x to each side

4x-6+6x = -6x-30+6x

10x-6 = -30

Add 5 to each side

10x-5+5 = -30 +5

10x = -25

Divide by 10

10x/10 = -25/10

x = -2.5

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Please help me with this problem!!! Solve for3^(4x-5)=(1/27)^(2x+10) x. Show your work. (if it is an exponent in parenthesis it is nothing but my trying to make sure u know its grouped together.) WILL REPORT IF WRONG BRAINLIEST TO FIRST CORRECT

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Please help me with this problem!!!
Solve for3^(4x-5)=(1/27)^(2x+10) x. Show your work.
(if it is an exponent in parenthesis it is nothing but my trying to make sure u know its grouped together.)
WILL REPORT IF WRONG
BRAINLIEST TO FIRST CORRECT