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A black body at a temperature of 1640 K has the wavelength corresponding to maximum emission equal to 1.75μ. Assuming the moon to be a perfectly black body, the temperature of the moon, if the wavelength corresponding to maximum emission is 14.35 μ isa)100 Kb)150 Kc)200 Kd)250 KCorrect answer is option 'C'. Can you explain this answer? for JEE 2024 is part of JEE preparation. The Question and answers have been prepared
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A black body at a temperature of 1640 K has the wavelength corresponding to maximum emission equal to 1.75μ. Assuming the moon to be a perfectly black body, the temperature of the moon, if the wavelength corresponding to maximum emission is 14.35 μ isa)100 Kb)150 Kc)200 Kd)250 KCorrect answer is option 'C'. Can you explain this answer?, a detailed solution for A black body at a temperature of 1640 K has the wavelength corresponding to maximum emission equal to 1.75μ. Assuming the moon to be a perfectly black body, the temperature of the moon, if the wavelength corresponding to maximum emission is 14.35 μ isa)100 Kb)150 Kc)200 Kd)250 KCorrect answer is option 'C'. Can you explain this answer? has been provided alongside types of A black body at a temperature of 1640 K has the wavelength corresponding to maximum emission equal to 1.75μ. Assuming the moon to be a perfectly black body, the temperature of the moon, if the wavelength corresponding to maximum emission is 14.35 μ isa)100 Kb)150 Kc)200 Kd)250 KCorrect answer is option 'C'. Can you explain this answer? theory, EduRev gives you an
ample number of questions to practice A black body at a temperature of 1640 K has the wavelength corresponding to maximum emission equal to 1.75μ. Assuming the moon to be a perfectly black body, the temperature of the moon, if the wavelength corresponding to maximum emission is 14.35 μ isa)100 Kb)150 Kc)200 Kd)250 KCorrect answer is option 'C'. Can you explain this answer? tests, examples and also practice JEE tests.