Concept explainers
(a)
The angular separation between the central maximum and an adjacent maximum.
(a)
Answer to Problem 79PQ
The angular separation between the central maximum and an adjacent maximum is
Explanation of Solution
Write the expression for the speed of the wave.
Here,
Rearrange the above equation.
Write the expression for the path difference for bright fringes in Young’s double slit experiment.
Here,
Rearrange the above equation.
Write the expression for the angle made by the central maximum
Write the expression for the angle made by the adjacent maximum next to the central maximum
Write the expression for the angular separation between the central maximum and an adjacent maximum.
Substitute
Conclusion:
Substitute
Substitute
Therefore, the angular separation between the central maximum and an adjacent maximum is
(b)
The separation between the slits for the same angular separation between the central maximum and an adjacent maximum.
(b)
Answer to Problem 79PQ
The separation between the slits is
Explanation of Solution
Write the expression for the separation between the slits from equation-(V).
Conclusion:
Substitute
Therefore, the separation between the slits is
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Chapter 35 Solutions
EBK PHYSICS FOR SCIENTISTS AND ENGINEER
- Part C Find the height yi from which the rock was launched. Express your answer in meters to three significant figures. Learning Goal: To practice Problem-Solving Strategy 4.1 for projectile motion problems. A rock thrown with speed 12.0 m/s and launch angle 30.0 ∘ (above the horizontal) travels a horizontal distance of d = 19.0 m before hitting the ground. From what height was the rock thrown? Use the value g = 9.800 m/s2 for the free-fall acceleration. PROBLEM-SOLVING STRATEGY 4.1 Projectile motion problems MODEL: Is it reasonable to ignore air resistance? If so, use the projectile motion model. VISUALIZE: Establish a coordinate system with the x-axis horizontal and the y-axis vertical. Define symbols and identify what the problem is trying to find. For a launch at angle θ, the initial velocity components are vix=v0cosθ and viy=v0sinθ. SOLVE: The acceleration is known: ax=0 and ay=−g. Thus, the problem becomes one of…arrow_forwardPhys 25arrow_forwardPhys 22arrow_forward
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