BIO One possible concern with MRI (see Exercise 28) is turning the magnetic field on or off too quickly. Bodily fluids are conductors, and a changing magnetic field could cause electric currents to flow through the patient. Suppose a typical patient has a maximum cross-section area of 0.060 m2. What is the smallest time interval in which a 5.0 T magnetic field can be turned on or off if the induced emf around the patient's body must be kept to less than 0.10 V?
Ch 30: Electromagnetic Induction
30장, 문제 69b
A 50 cm solenoid with 1000 turns has an inductance of 20 mH. Flipping a switch disconnects the inductor from the battery and connects it to a resistor. What is the value of the resistance if the magnetic field decreases by 50% in 150 μs?
검증된 단계별 안내1
Step 1: Understand the problem. The solenoid is disconnected from the battery and connected to a resistor, causing the magnetic field to decrease. The problem involves calculating the resistance using the time constant of the RL circuit. The time constant (τ) is related to the inductance (L) and resistance (R) by the formula: .
Step 2: Recall the relationship between the time constant and the decay of the magnetic field. The magnetic field decreases exponentially in an RL circuit, following the equation: , where is the initial magnetic field, is the magnetic field at time , and is the time constant.
Step 3: Use the given information to find the time constant. The magnetic field decreases by 50% in 150 μs, meaning at . Substitute this into the exponential decay formula and solve for : . Take the natural logarithm of both sides to isolate .
Step 4: Relate the time constant to the resistance. Once is calculated, use the formula to solve for . The inductance is given as 20 mH, or . Rearrange the formula to find .
Step 5: Substitute the values into the formula. Use the calculated value of and the given inductance to find the resistance . Ensure the units are consistent throughout the calculation.

비슷한 문제에 대한 검증된 영상 답변:
이 영상 해법은 위 문제에 도움이 된다고 튜터들이 추천한 것입니다.
영상 길이:
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주요 개념
질문에 올바르게 답하기 위해 반드시 이해해야 하는 핵심 개념들은 다음과 같습니다.
Inductance
Inductance is a property of an electrical component, typically a coil or solenoid, that quantifies its ability to store energy in a magnetic field when an electric current flows through it. It is measured in henries (H) and is defined as the ratio of the induced electromotive force (emf) to the rate of change of current. In this question, the solenoid's inductance of 20 mH indicates how effectively it can store magnetic energy.
추천 영상:
가이드 코스
Mutual Induction
Time Constant
The time constant, denoted by τ (tau), is a measure of the time it takes for the current in an inductor to change significantly when connected to a resistor. It is calculated as τ = L/R, where L is the inductance and R is the resistance. In this scenario, the time constant will help determine how quickly the magnetic field decreases when the inductor is disconnected from the battery and connected to the resistor.
추천 영상:
가이드 코스
Phase Constant of a Wave Function
Magnetic Field Decay
When an inductor is disconnected from a power source and connected to a resistor, the magnetic field associated with the inductor begins to decay. The rate of this decay is exponential, characterized by the time constant. In this question, the magnetic field decreases by 50% in 150 μs, which can be used to find the resistance by relating the decay time to the time constant of the circuit.
추천 영상:
가이드 코스
Magnetic Fields and Magnetic Dipoles
관련 실천
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