After a murder has been committed, the body, which was originally at 37°C, cools according to Newton's Law of Cooling: for some positive constant k, the rate of change of its temperature is proportional to the temperature difference with the ambient air. We will suppose that, after 1.5 hours, the temperature of the body, B, is 34.5°C, while the surrounding temperature of the ambient air is 18°C. a) Write down the differential equation governing the change of the body temperature with time, t, in terms of k b) Find the temperature B of the body as a function of k and t, the time in hours after the murder was committed and an arbitrary constant A. c) Work out the value of A and k from the information given, showing your calculation clearly.
After a murder has been committed, the body, which was originally at 37°C, cools according to Newton's Law of Cooling: for some positive constant k, the rate of change of its temperature is proportional to the temperature difference with the ambient air. We will suppose that, after 1.5 hours, the temperature of the body, B, is 34.5°C, while the surrounding temperature of the ambient air is 18°C. a) Write down the differential equation governing the change of the body temperature with time, t, in terms of k b) Find the temperature B of the body as a function of k and t, the time in hours after the murder was committed and an arbitrary constant A. c) Work out the value of A and k from the information given, showing your calculation clearly.
Chapter3: Polynomial Functions
Section3.5: Mathematical Modeling And Variation
Problem 7ECP: The kinetic energy E of an object varies jointly with the object’s mass m and the square of the...
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