1 Conservation Equations
... constitutive relations are needed to related τ to velocity gradients (Newton’s laws) and q00 to temperature gradients (Fourier’s law). We also need an equation of state to connect enthalpy i to temperature. All such details will be addressed when we examine specific flows. Also note that no explicit ...
... constitutive relations are needed to related τ to velocity gradients (Newton’s laws) and q00 to temperature gradients (Fourier’s law). We also need an equation of state to connect enthalpy i to temperature. All such details will be addressed when we examine specific flows. Also note that no explicit ...
Example - mrdsample
... on the object (slope of U(x) = 0) it must either possess only potential energy and be at rest or, it also possesses kinetic energy and must be moving at a constant velocity. x4 is a position of unstable equilibrium. If the object is displaced ever so slightly from this position, the internal forces ...
... on the object (slope of U(x) = 0) it must either possess only potential energy and be at rest or, it also possesses kinetic energy and must be moving at a constant velocity. x4 is a position of unstable equilibrium. If the object is displaced ever so slightly from this position, the internal forces ...
Laws/Definitions/Formulae
... a quantity with magnitude only. Vector : a quantity with magnitude and direction. Equations of linear motion : v = u + at. s = ut + ½at2. v2 = u2 + 2as. Newton 1 : a body stay at rest or in uniform motion unless a resultant external force acts upon it. Newton 2 : if a body is acted on by a resultant ...
... a quantity with magnitude only. Vector : a quantity with magnitude and direction. Equations of linear motion : v = u + at. s = ut + ½at2. v2 = u2 + 2as. Newton 1 : a body stay at rest or in uniform motion unless a resultant external force acts upon it. Newton 2 : if a body is acted on by a resultant ...
3.3 Momentum and Energy Review
... 1. Nicholas spends 20 minutes ironing shirts with his 1,800-watt iron. How many joules of energy were used by the iron? (Hint: convert time to seconds). 2. It take a clothes dryer 45 minutes to dry a load of towels. If the dryer uses 6,750,000 joules of energy to dry the towels, what is the power ra ...
... 1. Nicholas spends 20 minutes ironing shirts with his 1,800-watt iron. How many joules of energy were used by the iron? (Hint: convert time to seconds). 2. It take a clothes dryer 45 minutes to dry a load of towels. If the dryer uses 6,750,000 joules of energy to dry the towels, what is the power ra ...
Chp+12+Quest REVISED 2012
... 17. How did a space shuttle orbit the Earth with out falling back into it? ...
... 17. How did a space shuttle orbit the Earth with out falling back into it? ...
Document
... Newton’s Laws of Motion Law of Inertia An object at rest or in motion will stay that way until a force acts on it. Law of Acceleration An object will accelerate when a force acts on it. Law of Action and Reaction For every action, there is an equal and opposite reaction. ...
... Newton’s Laws of Motion Law of Inertia An object at rest or in motion will stay that way until a force acts on it. Law of Acceleration An object will accelerate when a force acts on it. Law of Action and Reaction For every action, there is an equal and opposite reaction. ...
Work is a force that moves through a distance
... How much work is done when a force of 1000N is used to slide a 20kg crate a distance of 4.0m across a floor? W= F·D W= 1000N 4.0m W= 4000J How much power is required when a force of 1000N is used to slide a 20kg crate a distance of 4.0m across a floor in 20s? Power is the rate at which work is done. ...
... How much work is done when a force of 1000N is used to slide a 20kg crate a distance of 4.0m across a floor? W= F·D W= 1000N 4.0m W= 4000J How much power is required when a force of 1000N is used to slide a 20kg crate a distance of 4.0m across a floor in 20s? Power is the rate at which work is done. ...
PHYS 211 – MT3 Fall 2012 Sample 3 Solutions
... D. B has three times the magnitude of momentum and three times the kinetic energy of A. E. Both pieces have the same kinetic energy, but B has three times the magnitude of momentum of A. F. None of the above 12. The following 5 “matching” questions are all based on the following set-up and are each ...
... D. B has three times the magnitude of momentum and three times the kinetic energy of A. E. Both pieces have the same kinetic energy, but B has three times the magnitude of momentum of A. F. None of the above 12. The following 5 “matching” questions are all based on the following set-up and are each ...
momentum
... (B.) What would its speed be if the smaller monster were walking toward the bigger one 8 m/s? 10 kg * 1 m/s = 10 kg * m/s 1 kg * 8 m/s =- 8 kg * m/s 2 kg * m/s ...
... (B.) What would its speed be if the smaller monster were walking toward the bigger one 8 m/s? 10 kg * 1 m/s = 10 kg * m/s 1 kg * 8 m/s =- 8 kg * m/s 2 kg * m/s ...