Problem 8: Lasers can be constructed to produce an extremely high-intensity electromagnetic wave for a very brief time. Such lasers are called "pulsed lasers". They are used to ignite nuclear fusion, for example. Such a laser may produce an electromagnetic wave with a maximum electric field strength of 0.58 x 1011 V/m for a time of 0.85 ns. Randomized Variables E, = 0.58 x 1011 V/m t= 0.85 ns Part (a) What is the maximum magnetic field strength in the wave Bo. in teslas? Bo = Part (b) What is the intensity of the beam I, in watts per square meter? I= Part (c) How much energy, in kilojoules, does one pulse of the laser beam deliver to a 1.00 mm? area? E =
Problem 8: Lasers can be constructed to produce an extremely high-intensity electromagnetic wave for a very brief time. Such lasers are called "pulsed lasers". They are used to ignite nuclear fusion, for example. Such a laser may produce an electromagnetic wave with a maximum electric field strength of 0.58 x 1011 V/m for a time of 0.85 ns. Randomized Variables E, = 0.58 x 1011 V/m t= 0.85 ns Part (a) What is the maximum magnetic field strength in the wave Bo. in teslas? Bo = Part (b) What is the intensity of the beam I, in watts per square meter? I= Part (c) How much energy, in kilojoules, does one pulse of the laser beam deliver to a 1.00 mm? area? E =
College Physics
11th Edition
ISBN:9781305952300
Author:Raymond A. Serway, Chris Vuille
Publisher:Raymond A. Serway, Chris Vuille
Chapter1: Units, Trigonometry. And Vectors
Section: Chapter Questions
Problem 1CQ: Estimate the order of magnitude of the length, in meters, of each of the following; (a) a mouse, (b)...
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![Problem 8: Lasers can be constructed to produce an extremely high-intensity electromagnetic wave for a very brief time. Such lasers
are called "pulsed lasers". They are used to ignite nuclear fusion, for example. Such a laser may produce an electromagnetic wave with a
maximum electric field strength of 0.58 x 1011 V/m for a time of 0.85 ns.
Randomized Variables
E, = 0.58 x 1011 V/m
t= 0.85 ns
Part (a) What is the maximum magnetic field strength in the wave Bo. in teslas?
Bo =
Part (b) What is the intensity of the beam I, in watts per square meter?
I=
Part (c) How much energy, in kilojoules, does one pulse of the laser beam deliver to a 1.00 mm2 area?
E =](/v2/_next/image?url=https%3A%2F%2Fcontent.bartleby.com%2Fqna-images%2Fquestion%2F88c43c50-42d9-4dc0-b327-0989874cc0b6%2F86db6ae1-fe71-4edc-a7c4-d5726ed27aa8%2Fggfiqoi_processed.jpeg&w=3840&q=75)
Transcribed Image Text:Problem 8: Lasers can be constructed to produce an extremely high-intensity electromagnetic wave for a very brief time. Such lasers
are called "pulsed lasers". They are used to ignite nuclear fusion, for example. Such a laser may produce an electromagnetic wave with a
maximum electric field strength of 0.58 x 1011 V/m for a time of 0.85 ns.
Randomized Variables
E, = 0.58 x 1011 V/m
t= 0.85 ns
Part (a) What is the maximum magnetic field strength in the wave Bo. in teslas?
Bo =
Part (b) What is the intensity of the beam I, in watts per square meter?
I=
Part (c) How much energy, in kilojoules, does one pulse of the laser beam deliver to a 1.00 mm2 area?
E =
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