The value of a car is modelled by the formula $$ V = 16000e^{-kt} + A $$ where $V$ is the value of the car in pounds, $t$ is the age of the car in years, and $k$ and $A$ are positive constants. Given that the value of the car is £17500 when new and £13500 two years later, (a) find the value of $A$, (b) show that $k = ext{ln} \left( \frac{2}{\sqrt{3}} \right)$, (c) Find the age of the car, in years, when the value of the car is £6000. Give your answer to 2 decimal places.

A-Level Edexcel Maths Pure Equation of a Straight Line: The value of a car is modelled b

The value of a car is modelled by the formula $$ V = 16000e^{-kt} + A $$ where $V$ is the value of the car in pounds, $t$ is the age of the car in years, and $k$ and $A$ are positive constants - Edexcel - A-Level Maths Pure - Question 4 - 2018 - Paper 5

Question 4

$The-value-of-a-car-is-modelled-by-the-formula--$$-V-=-16000e^{-kt}-+-A-$$--where-$V$-is-the-value-of-the-car-in-pounds,-$t$-is-the-age-of-the-car-in-years,-and-$k$-and-$A$-are-positive-constants-Edexcel-A-Level Maths Pure-Question 4-2018-Paper 5.png$

The value of a car is modelled by the formula $$ V = 16000e^{-kt} + A $$ where $V$ is the value of the car in pounds, $t$ is the age of the car in years, and $k$ a... show full transcript

Worked Solution & Example Answer:The value of a car is modelled by the formula $$ V = 16000e^{-kt} + A $$ where $V$ is the value of the car in pounds, $t$ is the age of the car in years, and $k$ and $A$ are positive constants - Edexcel - A-Level Maths Pure - Question 4 - 2018 - Paper 5

Step 1

find the value of A

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Answer

When the car is new, the value is £17500. This means at $t = 0$ :

$V = 16000e^{-k(0)} + A = 17500$ .
Thus, we have:

$17500 = 16000 + A$
This simplifies to:

$A = 17500 - 16000 = 1500.$

Step 2

show that k = ln(2/√3)

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Answer

At $t = 2$ years, the value is £13500:

$V = 16000e^{-2k} + A = 13500.$
Substituting $A = 1500$ gives:

$13500 = 16000e^{-2k} + 1500$
This simplifies to:

$13500 - 1500 = 16000e^{-2k}$
$12000 = 16000e^{-2k}$
Dividing both sides by 16000:

$e^{-2k} = \frac{12000}{16000} = \frac{3}{4}.$
Taking the natural logarithm on both sides:

$-2k = \ln \left( \frac{3}{4} \right)$
Thus:

$k = -\frac{1}{2} \ln \left( \frac{3}{4} \right)$
Using the properties of logarithms:

$k = \ln \left( \frac{2}{\sqrt{3}} \right).$

Step 3

Find the age of the car, in years, when the value of the car is £6000

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Answer

We start with the equation for value:

$6000 = 16000e^{-kt} + A$
Substituting $A = 1500$ gives:

$6000 = 16000e^{-kt} + 1500$
This simplifies to:

$6000 - 1500 = 16000e^{-kt}$
$4500 = 16000e^{-kt}$
Dividing both sides by 16000:

$e^{-kt} = \frac{4500}{16000} = \frac{45}{160} = \frac{9}{32}.$
Taking the natural logarithm on both sides:

$-kt = \ln \left( \frac{9}{32} \right).$
Substituting $k = \ln \left( \frac{2}{\sqrt{3}} \right)$ , we have:

$-t \ln \left( \frac{2}{\sqrt{3}} \right) = \ln \left( \frac{9}{32} \right).$
Solving for $t$ :

$t = -\frac{\ln \left( \frac{9}{32} \right)}{\ln \left( \frac{2}{\sqrt{3}} \right)}.$
Calculating gives:

$t \approx 8.82$
Thus, the age of the car is approximately 8.82 years.

The value of a car is modelled by the formula $$ V = 16000e^{-kt} + A $$ where $V$ is the value of the car in pounds, $t$ is the age of the car in years, and $k$ and $A$ are positive constants - Edexcel - A-Level Maths Pure - Question 4 - 2018 - Paper 5

Worked Solution & Example Answer:The value of a car is modelled by the formula $$ V = 16000e^{-kt} + A $$ where $V$ is the value of the car in pounds, $t$ is the age of the car in years, and $k$ and $A$ are positive constants - Edexcel - A-Level Maths Pure - Question 4 - 2018 - Paper 5

find the value of A

show that k = ln(2/√3)

Find the age of the car, in years, when the value of the car is £6000

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