
Practice Exam
... 18 A 60.0-kilogram runner has 1920 joules of kinetic energy. At what speed is she running? (1) 5.66 m/s (3) 32.0 m/s (2) 8.00 m/s (4) 64.0 m/s 19 The diagram below shows points A, B, and C at or near Earth’s surface. As a mass is moved from A to B, 100 joules of work are done against gravity. What i ...
... 18 A 60.0-kilogram runner has 1920 joules of kinetic energy. At what speed is she running? (1) 5.66 m/s (3) 32.0 m/s (2) 8.00 m/s (4) 64.0 m/s 19 The diagram below shows points A, B, and C at or near Earth’s surface. As a mass is moved from A to B, 100 joules of work are done against gravity. What i ...
Gravity and circular motion review
... Gravity and circular motion review 30. Base your answer to the following question on the diagram below. A planet, P. moves around the Sun, S, in an elliptical orbit. The amount of time required for the planet to travel from point A to point B is equal to the amount of time required to travel from p ...
... Gravity and circular motion review 30. Base your answer to the following question on the diagram below. A planet, P. moves around the Sun, S, in an elliptical orbit. The amount of time required for the planet to travel from point A to point B is equal to the amount of time required to travel from p ...
Motion with a constant speed - St. Thomas the Apostle School
... • Motion with a constant speed- If an item travels in a speed that does not slow dow, nor speed up. For example: A car traveling on a highway • Changing speed: intervals of speeding up and slowing down. For example-A car at a stop sign. • Average speed- The total distance traveled divided by the to ...
... • Motion with a constant speed- If an item travels in a speed that does not slow dow, nor speed up. For example: A car traveling on a highway • Changing speed: intervals of speeding up and slowing down. For example-A car at a stop sign. • Average speed- The total distance traveled divided by the to ...
Document
... a) Many Possible Experiments. For example, students could decide to pull with the same force on various air gliders of different masses with spring scales to determine if the acceleration depends on 1/m. b) The best experiment should create the best chance of disproving the relationship a = ΣF/m c) ...
... a) Many Possible Experiments. For example, students could decide to pull with the same force on various air gliders of different masses with spring scales to determine if the acceleration depends on 1/m. b) The best experiment should create the best chance of disproving the relationship a = ΣF/m c) ...
Minkowski diagram
The Minkowski diagram, also known as a spacetime diagram, was developed in 1908 by Hermann Minkowski and provides an illustration of the properties of space and time in the special theory of relativity. It allows a quantitative understanding of the corresponding phenomena like time dilation and length contraction without mathematical equations.The term Minkowski diagram is used in both a generic and particular sense. In general, a Minkowski diagram is a graphic depiction of a portion of Minkowski space, often where space has been curtailed to a single dimension. These two-dimensional diagrams portray worldlines as curves in a plane that correspond to motion along the spatial axis. The vertical axis is usually temporal, and the units of measurement are taken such that the light cone at an event consists of the lines of slope plus or minus one through that event.A particular Minkowski diagram illustrates the result of a Lorentz transformation. The horizontal corresponds to the usual notion of simultaneous events, for a stationary observer at the origin. The Lorentz transformation relates two inertial frames of reference, where an observer makes a change of velocity at the event (0, 0). The new time axis of the observer forms an angle α with the previous time axis, with α < π/4. After the Lorentz transformation the new simultaneous events lie on a line inclined by α to the previous line of simultaneity. Whatever the magnitude of α, the line t = x forms the universal bisector.