Por favor galera me ajuda!!!
a) log (2x - 5) - log x = 1
b) log (x + 3) + log (x - 3) = log 16
b) log (x - 4) + log (x + 4) = log 16 x
Respostas
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a) log (2x - 5) - log x = 1
log (2x - 5) = 1
x
2x - 5 = 10 ==> 2x - 5 = 10x ==> 2x - 10x = 5 ==> - 8x = 5 ==> x = - 5/8
x
b) log (x + 3) + log (x - 3) = logg 16
log (x + 3)(x - 3) = log 16
(x + 3)(x - 3) = 16
x² - 9 = 16
x² = 16 + 9 ==> x² = 25 ==> x = +/- 5
c) log (x - 4) + log (x + 4) = log 16 x
log (x - 4)(x + 4) = log 16 x
(x - 4)(x + 4) = 16 x
x² - 16 = 16x
x² - 16x - 16= 0
Δ= (-16)² - 4.1.(-16) ==> 256 + 64 ==Δ = 320
x = 16+/-V320 ==> x = 16 +/- V64.5
2.1 2
x = 16+/-8V5 ==> x = 2(8+/-4V5) ==> x = 8 +/- 4V5
2 2
log (2x - 5) = 1
x
2x - 5 = 10 ==> 2x - 5 = 10x ==> 2x - 10x = 5 ==> - 8x = 5 ==> x = - 5/8
x
b) log (x + 3) + log (x - 3) = logg 16
log (x + 3)(x - 3) = log 16
(x + 3)(x - 3) = 16
x² - 9 = 16
x² = 16 + 9 ==> x² = 25 ==> x = +/- 5
c) log (x - 4) + log (x + 4) = log 16 x
log (x - 4)(x + 4) = log 16 x
(x - 4)(x + 4) = 16 x
x² - 16 = 16x
x² - 16x - 16= 0
Δ= (-16)² - 4.1.(-16) ==> 256 + 64 ==Δ = 320
x = 16+/-V320 ==> x = 16 +/- V64.5
2.1 2
x = 16+/-8V5 ==> x = 2(8+/-4V5) ==> x = 8 +/- 4V5
2 2
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