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Ch 13: Gravitation
Young & Freedman Calc - University Physics 14th Edition
Young & Freedman Calc14th EditionUniversity PhysicsISBN: 9780321973610당신이 사용하는 게 아니라요?교과서 변경
13장, 문제 38

Cosmologists have speculated that black holes the size of a proton could have formed during the early days of the Big Bang when the universe began. If we take the diameter of a proton to be 1.0 × 10-15 m, what would be the mass of a mini black hole?

검증된 단계별 안내
1
Understand that the problem involves calculating the mass of a black hole with a diameter equal to that of a proton, using the concept of the Schwarzschild radius.
Recall the formula for the Schwarzschild radius: r=2Gmc2, where r is the Schwarzschild radius, G is the gravitational constant, m is the mass of the black hole, and c is the speed of light.
Since the diameter of the black hole is given as 1.0×10-15 m, the radius r is half of that, which is 0.5×10-15 m.
Rearrange the Schwarzschild radius formula to solve for mass m: m=rc22G.
Substitute the known values into the rearranged formula: r=0.5×10-15 m, G=6.674×10-11 mkg2, and c=3.00×108 ms to find the mass m.

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주요 개념

질문에 올바르게 답하기 위해 반드시 이해해야 하는 핵심 개념들은 다음과 같습니다.

Schwarzschild Radius

The Schwarzschild radius is the radius of the event horizon of a black hole, beyond which nothing can escape its gravitational pull. It is calculated using the formula R_s = 2GM/c^2, where G is the gravitational constant, M is the mass of the black hole, and c is the speed of light. Understanding this concept is crucial for determining the mass of a black hole given its size.
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Gravitational Constant

The gravitational constant (G) is a fundamental constant in physics that quantifies the strength of the gravitational force between two masses. Its value is approximately 6.674 × 10^-11 N(m/kg)^2. This constant is essential in calculations involving gravitational forces and is a key component in the formula for the Schwarzschild radius.
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Mass-Energy Equivalence

Mass-energy equivalence is a principle articulated by Einstein's famous equation E=mc^2, which states that mass can be converted into energy and vice versa. This concept is important in understanding the immense energy and gravitational pull associated with black holes, as even a small amount of mass can result in significant gravitational effects.
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교과서 질문

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