mechanics Flashcards

1
Q

Force of gravity between 2 masses

A

-(G*m1*m2/r²)

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2
Q

energy of gravity between 2 masses

A

-(G*m1*m2/r)

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3
Q

velocity with acceleration and displacement

A

v²=v0² + 2*a*Δd

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4
Q

distance with initial position, constant velocity and acceleration, and time

A

x = x0 + v0*t + 0.5*a*t²

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5
Q

velocity with acceleration and time

A

v = v0 + a*t

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6
Q

force of friction

A

F = F_normal*μ

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7
Q

centripetal acceleration

A

a_c = v²/r

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8
Q

Torque

A

τ = F*r*sin(ϴ) ϴ -> angle between position and force vectors

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9
Q

momentum

A

P = m*v

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10
Q

impulse

A

FΔt = ΔP

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11
Q

kinetic energy (motion)

A

KE = 1/2*m*v²

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12
Q

gravitational potential energy

A

U = m*g*h

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13
Q

work done on particle in motion with constant force

A

W = F*Δr*cos(ϴ)

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14
Q

Average power

A

P_avg = W/Δt

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15
Q

instantaneous power

A

P = F*v*cos(ϴ)

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16
Q

Force on a spring

A

F_k = -k*x

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17
Q

energy of a spring

A

U_k = 1/2*k*x²

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18
Q

period of a spring

A

T = 2*π*sqrt(m/k)

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19
Q

period of a pendulum

A

T = 2*π*sqrt(l/g)

20
Q

general period form

A

T = 1/frequency

21
Q

Linear momentum and angular momentum relationship

A

plinear=pangular/r

22
Q

work-energy principle

A

Net work is equal to change in kinetic energy

23
Q

Force and potential energy relationship

A

Fx = -dU/dx

24
Q

elastic collision

A

total kinetic energy is conserved

25
Q

inelastic collision

A

momentum is conserved, kinetic energy is not

26
Q

final velocity for perfectly inelastic collision

A

vf = (m1v1i +m2v2i)/(m1 + m2)

27
Q

final velocities for elastic collisions

A

v1f = [(m1 - m2)/(m1 + m2)]v1i + [2m2/(m1 + m2)]v2i

v2f = [2m1/(m1 + m2)]v1i + [(m2 - m1)/(m1 + m2)]v2i

28
Q

center of mass for particles

A

xcm = (m1x1 + m2x2)/(m1 + m2)

29
Q

center of mass for continuous solid

A

xcm = (1/Mtot) ∫x(m)dm

30
Q

thrust from rocket

A

Fthrust = |ve*dM/dt|

  • ve -> velocity of exhaust*
  • dM/dt -> burn rate*
31
Q

arc length

A

s = rθ

32
Q

rotational kinematic equations

A

ωf = ωi + αt

θf = θi + ωit + 1/2αt2

ωf2 = ωi2 + 2α(θf - θi)

θf = θi + 1/2(ωi + ωf)t

33
Q

Moment of Inertia

A

I = Σmiri2

34
Q

rotational kinetic energy

A

KR = 1/2Iω2

I -> moment of inertia

35
Q

parallel axis theorem

A

I = ICM + MD2

D -> distance from center of mass

36
Q

torque

A

τ = Fd

37
Q

torque and angular acceleration

A

τ = Iα

38
Q

work-kinetic energy theorem for rotational motion

A

W = (1/2)Iωf2 - (1/2)Iωi2

39
Q

angular momentum

A

L = mvrsinφ

φ -> angle between r and direction of linear momentum (direction of v)

40
Q

angular momentum of rigid object

A

L = Iω

41
Q

torque on rigid object

A

τ = Iα

42
Q

Kepler’s first law

A

all planets move in elliptical orbits with sun at one focus

43
Q

kepler’s second law

A

the radius vector drawn from sun to a planet sweeps out equal areas in equal time periods

44
Q

kepler’s third law

A

T2 = (4π2/GMS)a3

  • T -> period of rotation*
  • a -> semimajor axis*
45
Q

total energy for circular orbits

A

E = -(GMm)/(2r)

46
Q

total energy for elliptical orbits

A

E = -(GMm)/(2a)

47
Q

escape velocity

A

vesc = √[(2GME/RE)]