Unit 4: Gravitation Flashcards

1
Q

What is a field and apply said definition to gravitation and the basic equation of it:

A

A field is a region in which other objects with certain properties experience a force, in the case of gravitational, objects with mass. g = F/m

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2
Q

What are the units of a gravitational field:

A

NKg^-1 ( Newtons per kilogram )

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3
Q

What other unit is popularly used to describe a gravitational field:

A

ms^-2

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4
Q

How is a gravitational field drawn:

A

When drawing a gravitational field and field lines, one must draw 8 arrows with the directions of said arrows because a gravitational field is a vector quantity. in a radial shape.

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5
Q

What type of field (radial or uniform) would one use when focussed on the surface of a large planet:

A

When focussed on the surface of the earth or planets, the field is treated as uniform

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6
Q

What is Newton’s law of gravitation:

A

The force between two objects is proportional to the product of the masses and inversely proportional to their separations squared

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7
Q

Why is Newton’s equation for his law of gravitation negative

A

The reason F = -GMm/r^2 is negative, is because gravity is always attractive

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8
Q

Derive g = -GM/r^2 and state what it implies:

A

Combine g = F/m and F = -GMm/r^2 . It implies that field strength is proportional to the mass of the object creating the force and inversely proportional to the distance from the mass squared

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9
Q

Describe a graph of g against r for the earth:

A

see graph

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10
Q

Why is g = 0 at the centre of the earth:

A

Mass all around pulling outwards

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11
Q

What provides centripetal force for satellites:

A

Gravity

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12
Q

How does one derive velocity = sqrt(GM/r) and what does it imply:

A

Because gravity is the centripetal force mv^2/r = GMm/r^2, therefore v^2 = GM/r. The derived equation implies that satellites at certain heights require certain velocities to move.

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13
Q

What types of orbit:

A
  • Polar orbit -> low r value, move over both poles and perpendicular to the direction the earth is spinning
  • Low earth orbit -> r is low therefore speed is high such that time period is low
  • Geostationary -> rotate in the same direction as the earth and T=24 hours
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14
Q

What are low earth orbit satellites used for:

A
  • Communications
  • Military -> because they cover a lot of the globe
  • Scientific -> monitor climate and look out to space
  • Weather monitor
  • GPS
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15
Q

What are the units of gravitational potential:

A

JKg^-1

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16
Q

What is the symbol for gravitational potential:

A

Vg

17
Q

Define gravitational potential:

A

The work done in bringing a unit mass from infinity to that point.

18
Q

How can one calculate work done per unit mass to bring an object to a point in a gravitational field and what does the equation imply:

A

Vg = -GM/r. Implies that as M increases the magnitude of the potential increases and when r increases the magnitude of potential decreases proportionally.

19
Q

Define gravitational potential energy:

A

Work done to move a mass from infinity to a point in a gravitational field.

20
Q

How is gravitational potential energy calculated:

A

E = m*Vg but more useful to think about ΔE=mΔVg

21
Q

How does one change their gravitational potential energy in a uniform field:

A

Change their altitude

22
Q

How can one calculate and change their GEp in a radial field:

A

Combining equations ΔE=mΔVg and Vg = -GM/r to get E = -GMm/r one can see that to change GEp in a radial field, one must change radius.

23
Q

How can someone see changes in GEp from a force/distance diagram:

A

When looking at a force distance diagram where the force represents the force due to gravity on a body one will move, a change in GEp can be seen by the area beneath that curve.
See graph