Nerve Impulse Propagation The speed with which nerve impulses travel is determined in large part by the characteristic time constant T = RC of the circuit formed by the resistivity of the axon and the capacitance of its wall. The resistance of a 1.00-mm-long segment of an axon is 25.5 MΩ. (a) For nerve axons with no protective myelin sheath, the wall capacitance is about 3.14 × 10 -10 F for each segment of length L = 1.00 mm. Find the speed of the nerve impulses given by v = L /T. (b) Many axons are surrounded by a myelin sheath that decreases the wall capacitance to 1.57 × 10 -12 F. What is the speed of nerve impulses along such myelinated axons?
Nerve Impulse Propagation The speed with which nerve impulses travel is determined in large part by the characteristic time constant T = RC of the circuit formed by the resistivity of the axon and the capacitance of its wall. The resistance of a 1.00-mm-long segment of an axon is 25.5 MΩ. (a) For nerve axons with no protective myelin sheath, the wall capacitance is about 3.14 × 10 -10 F for each segment of length L = 1.00 mm. Find the speed of the nerve impulses given by v = L /T. (b) Many axons are surrounded by a myelin sheath that decreases the wall capacitance to 1.57 × 10 -12 F. What is the speed of nerve impulses along such myelinated axons?
Nerve Impulse Propagation The speed with which nerve impulses travel is determined in large part by the characteristic time constant T = RC of the circuit formed by the resistivity of the axon and the capacitance of its wall. The resistance of a 1.00-mm-long segment of an axon is 25.5 MΩ. (a) For nerve axons with no protective myelin sheath, the wall capacitance is about 3.14 × 10-10F for each segment of length L = 1.00 mm. Find the speed of the nerve impulses given by v = L/T. (b) Many axons are surrounded by a myelin sheath that decreases the wall capacitance to 1.57 × 10-12 F. What is the speed of nerve impulses along such myelinated axons?
1. The diagram shows the tube used in the Thomson
experiment.
a. State the KE of the electrons.
b. Draw the path of the electron beam in the gravitational
field of the earth.
C.
If the electric field directed upwards, deduce the direction of the magnetic field so it
would be possible to balance the forces.
electron gun
1KV
as a hiker in glacier national park, you need to keep the bears from getting at your food supply. You find a campground that is near an outcropping of ice. Part of the outcropping forms a feta=51.5* slopeup that leads to a verticle cliff. You decide that this is an idea place to hang your food supply out of bear reach. You put all of your food into a burlap sack, tie a rope to the sack, and then tie a bag full of rocks to the other end of the rope to act as an anchor. You currently have 18.5 kg of food left for the rest of your trip, so you put 18.5 kg of rocks in the anchor bag to balance it out. what happens when you lower the food bag over the edge and let go of the anchor bag? Determine the acceleration magnitude a of the two-bag system when you let go of the anchor bag?
2. A thin Nichrome wire is used in an experiment to test Ohm's
law using a power supply ranging from 0 to 12 V in steps of 2 V.
Why isn't the graph of I vs V linear?
1.
Nichrome wire does obey Ohm's law. Explain how that can that be true given the
results above
Chapter 21 Solutions
Modified Mastering Physics with Pearson eText -- Access Card -- for Physics (18-Weeks)
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