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An artifact was found and tested for its carbon-14 content. If 76% of the original carbon-14 was still present, what is its probable age (to the nearest 100 years)? (Carbon-14 has a half-life of 5,730 years.)

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An artifact was found and tested for its carbon-14 content. If 88% of the original carbon-14 was still present, what is its

Top answer: you could use amount = initial(1/2)^(t/5730) .88 = 1(1/2)^(t/5730) t/5730ln.5 = ln .88 t = Read more.
An artifact was found and tested for its carbon-14 content. If 84% of the original carbon-14 was still present, what is its

Top answer: 0.84 = (0.50)^(t/5730) t/5730 = log0.85/log0.50 = 0.23447 t = 1343 years (Round it to 1300 years) Read more.
An artifact was found and tested for its carbon-14 content. If 79% of the original carbon-14 was still present, what is its

Top answer: http://www.jiskha.com/display.cgi?id=1311445673 Read more.
An artifact was found and tested for its carbon-14 content. If 77% of the original carbon-14 was still present, what is its

Top answer: Since this is a half-life type, we can use the base of 1/2 .77 = (1/2)^(t/5730) ln .77 = ln Read more.
An artifact was found and tested for its carbon-14 content. If 75% of the original carbon-14 was still present what is its

Top answer: just solve for t in (1/2)^(t/5730) = 0.75 Read more.
An artifact was found and tested for its carbon-14 content. If 75% of the original carbon-14 was still present, what is its

Top answer: amount = initial (.5)^(t/5730) .75 = 1 (.5)^(t/5730) log .75 = (t/5730) log .5 t/5730 = log .75/log Read more.
An artifact was found and tested for its carbon-14 content. If 71% of the original carbon-14 was still present, what is its

Top answer: Maybe ... If you'd follow directions and put the REAL subject area in the right space. Read more.
An artifact was found and tested for its carbon-14 content. If 76% of the original carbon-14 was still present, what is its

Top answer: .76 = 1(1/2)^(t/5730) ln both sides ln .76 = ln (.5)^(t/5730) t/5730 ln.5 = ln.76 t/5730 = Read more.
An artifact was found and tested for its carbon-14 content. If 79% of the original carbon-14 was still present, what is its

Top answer: .79 = (1/2)^t/5730 t = 1949 Read more.
An artifact was found and tested for its carbon-14 content. If 70% of the original carbon-14 was still present, what is its

Top answer: Use amount = c (1/2)^(t/k), where k is the half-life period so .... .7 = 1(1/2)^(t/5730) .7 = Read more.