GO An electron with a speed of 5.00 × 10 8 cm/s enters an electric field of magnitude 1.00 × 10 3 N/C, traveling along a field line in the direction that retards its motion. (a) How far will the electron travel in the field before stopping momentarily, and (b) how much time will have elapsed? (c) If the region containing the electric field is 8.00 mm long (too short for the electron to stop within it), what fraction of the electron’s initial kinetic energy will be lost in that region? Translational Rotational v=v 0 +at ω=ω 0 +αt Δ x = v 0 t + 1 2 a t 2 Δ θ = ω 0 t + 1 2 a t 2 v 2 = v 0 2 + 2 a Δ x ω 2 = v 0 2 + 2 α Δ θ
GO An electron with a speed of 5.00 × 10 8 cm/s enters an electric field of magnitude 1.00 × 10 3 N/C, traveling along a field line in the direction that retards its motion. (a) How far will the electron travel in the field before stopping momentarily, and (b) how much time will have elapsed? (c) If the region containing the electric field is 8.00 mm long (too short for the electron to stop within it), what fraction of the electron’s initial kinetic energy will be lost in that region? Translational Rotational v=v 0 +at ω=ω 0 +αt Δ x = v 0 t + 1 2 a t 2 Δ θ = ω 0 t + 1 2 a t 2 v 2 = v 0 2 + 2 a Δ x ω 2 = v 0 2 + 2 α Δ θ
GO An electron with a speed of 5.00 × 108 cm/s enters an electric field of magnitude 1.00 × 103 N/C, traveling along a field line in the direction that retards its motion. (a) How far will the electron travel in the field before stopping momentarily, and (b) how much time will have elapsed? (c) If the region containing the electric field is 8.00 mm long (too short for the electron to stop within it), what fraction of the electron’s initial kinetic energy will be lost in that region?
What is the critical angle fir the light travelling from the crown glass(n=1.52) into the air(n=1.00)?
No chatgpt pls will upvote
You are working with a team that is designing a new roller coaster-type amusement park ride for a major theme park. You are present for the testing of the ride, in which an empty 150 kg car is sent along the entire ride. Near the end of the ride, the car is at near rest at the top of a 100 m
tall track. It then enters a final section, rolling down an undulating hill to ground level. The total length of track for this final section from the top to the ground is 250 m. For the first 230 m, a constant friction force of 370 N acts from computer-controlled brakes. For the last 20 m, which is
horizontal at ground level, the computer increases the friction force to a value required for the speed to be reduced to zero just as the car arrives at the point on the track at which the passengers exit.
(a) Determine the required constant friction force (in N) for the last 20 m for the empty test car.
Write AK + AU + AE int
= W+Q + TMW
+
TMT + TET + TER for the car-track-Earth system and solve for…
Biology: Life on Earth with Physiology (11th Edition)
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