Problem 13.1QQ: A planet has two moons of equal mass. Moon 1 is in a circular orbit of radius r. Moon 2 is in a... Problem 13.2QQ: Superman stands on top of a very tall mountain and throws a baseball horizontally with a speed such... Problem 13.3QQ: An asteroid is in a highly eccentric elliptical orbit around the Sun. The period of the asteroids... Problem 13.4QQ Problem 13.1OQ: A system consists of five particles. How many terms appear in the expression for the total... Problem 13.2OQ: Rank the following quantities of energy from largest to smallest. State if any are equal. (a) the... Problem 13.3OQ Problem 13.4OQ: Suppose the gravitational acceleration at the surface of a certain moon A of Jupiter is 2 m/s2. Moon... Problem 13.5OQ: Imagine that nitrogen and other atmospheric gases were more soluble in water so that the atmosphere... Problem 13.6OQ: An object of mass m is located on the surface of a spherical planet of mass M and radius R. The... Problem 13.7OQ Problem 13.8OQ: The vernal equinox and the autumnal equinox are associated with two points 180 apart in the Earths... Problem 13.9OQ: Rank the magnitudes of the following gravitational forces from largest to smallest. If two forces... Problem 13.10OQ: The gravitational force exerted on an astronaut on the Earths surface is 650 N directed downward.... Problem 13.11OQ Problem 13.1CQ: Each Voyager spacecraft was accelerated toward escape speed from the Sun by the gravitational force... Problem 13.2CQ: In his 1798 experiment, Cavendish was said to have weighed the Earth. Explain this statement. Problem 13.3CQ Problem 13.4CQ Problem 13.5CQ Problem 13.6CQ Problem 13.7CQ Problem 13.8CQ Problem 13.9CQ: A satellite in low-Earth orbit is not truly traveling through a vacuum. Rather, it moves through... Problem 13.1P: In introductory physics laboratories, a typical Cavendish balance for measuring the gravitational... Problem 13.2P: Determine the order of magnitude of the gravitational force that you exert on another person 2 m... Problem 13.3P: A 200-kg object and a 500-kg object are separated by 4.00 m. (a) Find the net gravitational force... Problem 13.4P: During a solar eclipse, the Moon, the Earth, and the Sun all lie on the same line, with the Moon... Problem 13.5P: Two ocean liners, each with a mass of 40 000 metric tons, are moving on parallel courses 100 m... Problem 13.6P: Three uniform spheres of masses m1 = 2.00 kg, m2 = 4.00 kg, and m3 = 6.00 kg are placed at the... Problem 13.7P: Two identical isolated particles, each of mass 2.00 kg, are separated by a distance of 30.0 cm. What... Problem 13.8P Problem 13.9P: Two objects attract each other with a gravitational d force of magnitude 1.00 10-8 N when separated... Problem 13.10P: Review. A student proposes to study the gravitational force by suspending two 100.0-kg spherical... Problem 13.11P Problem 13.12P Problem 13.13P: Review. Miranda, a satellite of Uranus, is shown in Figure P13.5a. It can be modeled as a sphere of... Problem 13.14P: (a) Compute the vector gravitational field at a point P on the perpendicular bisector of the line... Problem 13.15P: Three objects of equal mass are located at three corners of a square of edge length as shown in... Problem 13.16P: A spacecraft in the shape of a long cylinder has a length of 100 m, and its mass with occupants is 1... Problem 13.17P: An artificial satellite circles the Earth in a circular orbit at a location where the acceleration... Problem 13.18P: Io, a satellite of Jupiter, has an orbital period of 1.77 days and an orbital radius of 4.22 105... Problem 13.19P: A minimum-energy transfer orbit to an outer planet consists of putting a spacecraft on an elliptical... Problem 13.20P: A particle of mass m moves along a straight line with constant velocity v0 in the x direction, a... Problem 13.21P: Plasketts binary system consists of two starts that revolve in a circular orbit about a center of... Problem 13.22P: Two planets X and Y travel counterclockwise in circular orbits about a star as shown in Figure... Problem 13.23P: Comet Halley (Fig. P13.23) approaches the Sun to within 0.570 AU, and its orbital period is 75.6 yr.... Problem 13.24P Problem 13.25P: Use Keplers third law to determine how many days it takes a spacecraft to travel in an elliptical... Problem 13.26P: Neutron stars are extremely dense objects formed from the remnants of supernova explosions. Many... Problem 13.27P: A synchronous satellite, which always remains above the same point on a planets equator, is put in... Problem 13.28P: (a) Given that the period of the Moons orbit about the Earth is 27.32 days and the nearly constant... Problem 13.29P: Suppose the Suns gravity were switched off. The planets would leave their orbits and fly away in... Problem 13.30P: A satellite in Earth orbit has a mass of 100 kg and is at an altitude of 2.00 106 m. (a) What is... Problem 13.31P: How much work is done by the Moons gravitational field on a 1 000-kg meteor as it comes in from... Problem 13.32P: How much energy is required to move a 1 000-kg object from the Earths surface to an altitude twice... Problem 13.33P Problem 13.34P: An object is released from rest at an altitude h above the surface of the Earth. (a) Show that its... Problem 13.35P: A system consists of three particles, each of mass 5.00 g, located at the corners of an equilateral... Problem 13.36P Problem 13.37P: A 500-kg satellite is in a circular orbit at an altitude of 500 km above the Earths surface. Because... Problem 13.38P Problem 13.39P Problem 13.40P Problem 13.41P Problem 13.42P Problem 13.43P Problem 13.44P Problem 13.45P Problem 13.46P Problem 13.47P: Ganymede is the largest of Jupiters moons. Consider a rocket on the surface of Ganymede, at the... Problem 13.48P Problem 13.49P: At the Earths surface, a projectile is launched straight up at a speed of 10.0 km/s. To what height... Problem 13.50AP Problem 13.51AP Problem 13.52AP: Voyager 1 and Voyager 2 surveyed the surface of Jupiters moon Io and photographed active volcanoes... Problem 13.53AP: A satellite is in a circular orbit around the Earth at an altitude of 2.80 106 m. Find (a) the... Problem 13.54AP: Why is the following situation impossible? A spacecraft is launched into a circular orbit around the... Problem 13.55AP: Let gM represent the difference in the gravitational fields produced by the Moon at the points on... Problem 13.56AP Problem 13.57AP Problem 13.58AP Problem 13.59AP Problem 13.60AP: Two spheres having masses M and 2M and radii R and 3R, respectively, are simultaneously released... Problem 13.61AP: Two hypothetical planets of masses m1 and m2 and radii r1 and r2, respectively, are nearly at rest... Problem 13.62AP: (a) Show that the rate of change of the free-fall acceleration with vertical position near the... Problem 13.63AP: A ring of matter is a familiar structure in planetary and stellar astronomy. Examples include... Problem 13.64AP Problem 13.65AP: Review. As an astronaut, you observe a small planet to be spherical. After landing on the planet,... Problem 13.66AP Problem 13.67AP: Studies of the relationship of the Sun to our galaxythe Milky Wayhave revealed that the Sun is... Problem 13.68AP: Review. Two identical hard spheres, each of mass m and radius r, are released from rest in otherwise... Problem 13.69AP Problem 13.70AP Problem 13.71AP Problem 13.72AP Problem 13.73AP Problem 13.74AP: Two stars of masses M and m, separated by a distance d, revolve in circular orbits about their... Problem 13.75AP: Two identical particles, each of mass 1 000 kg, are coasting in free space along the same path, one... Problem 13.76AP Problem 13.77AP: As thermonuclear fusion proceeds in its core, the Sun loses mass at a rate of 3.64 109 kg/s. During... Problem 13.78CP: The Solar and Heliospheric Observatory (SOHO) spacecraft has a special orbit, located between the... Problem 13.79CP: The oldest artificial satellite still in orbit is Vanguard I, launched March 3, 1958. It mass is... Problem 13.80CP format_list_bulleted