
PH202 chapter 20 solutions
... (a) If Q is doubled (with area remaining the same), the ratio of the final and initial electric field strengths will be doubled. (b) If the length L of the plates is doubled, the area increases by a factor of 4. Thus, with the charge on the plates remaining the same, a doubling of length will decrea ...
... (a) If Q is doubled (with area remaining the same), the ratio of the final and initial electric field strengths will be doubled. (b) If the length L of the plates is doubled, the area increases by a factor of 4. Thus, with the charge on the plates remaining the same, a doubling of length will decrea ...
A reexamination of pitch angle diffusion of electrons at the... lunar wake Tomoko Nakagawa and Masahide Iizima
... in the wake. As the background magnetic field was 6 nT at the detection of the whistler mode wave associated with lunar wake (Nakagawa et al., 2003), we obtain E 0 ∼ 40 mVm−1 for 1 keV ( v ∼ 2 × 104 kms−1 ) and E 0 ∼ 28 mVm−1 for 0.5 keV ( v ∼ 1.4 × 104 kms−1 ) . It is much larger than the average ...
... in the wake. As the background magnetic field was 6 nT at the detection of the whistler mode wave associated with lunar wake (Nakagawa et al., 2003), we obtain E 0 ∼ 40 mVm−1 for 1 keV ( v ∼ 2 × 104 kms−1 ) and E 0 ∼ 28 mVm−1 for 0.5 keV ( v ∼ 1.4 × 104 kms−1 ) . It is much larger than the average ...
ELECTIRC FIELD - The Physics Cafe
... if candidate gave EB = 1.76 x103 Vm-1, they must have use V = 4 0 r ...
... if candidate gave EB = 1.76 x103 Vm-1, they must have use V = 4 0 r ...
Chapter 23 Gauss` Law
... perpendicular to the x axis, every point on the face has the same x coordinate. (The y and z coordinates do not matter in our integral.) Thus, we have ...
... perpendicular to the x axis, every point on the face has the same x coordinate. (The y and z coordinates do not matter in our integral.) Thus, we have ...
Magnetic Forces and Magnetic Fields
... a) Record the number of turns N in the coils (this is listed on the apparatus). b) With the caliper attachments on the meter stick, determine both the inner and outer diameters of the coils. Note that there are slots in the coil supports that allow you to measure the inner diameter. Remember that yo ...
... a) Record the number of turns N in the coils (this is listed on the apparatus). b) With the caliper attachments on the meter stick, determine both the inner and outer diameters of the coils. Note that there are slots in the coil supports that allow you to measure the inner diameter. Remember that yo ...
Static Electricity StudyGuide - Ms. Gamm
... Describe the four rules for drawing electric fields Be able to draw electric field lines Identify where the electric field is strongest and weakest given a drawing of field lines Be able to predict how a charged object will move in an electric field Vocabulary Electron Proton Neutral ...
... Describe the four rules for drawing electric fields Be able to draw electric field lines Identify where the electric field is strongest and weakest given a drawing of field lines Be able to predict how a charged object will move in an electric field Vocabulary Electron Proton Neutral ...
Document
... To complete a quarter-circle, the time taken is T/4. Since T is independent of v, the time taken is the same for the three objects. Note that if the objects have different masses and/or charges, we can use the above equation to rank the times: For example, doubling the mass m would require twice the ...
... To complete a quarter-circle, the time taken is T/4. Since T is independent of v, the time taken is the same for the three objects. Note that if the objects have different masses and/or charges, we can use the above equation to rank the times: For example, doubling the mass m would require twice the ...
Section 34 - University of Colorado Colorado Springs
... A possible means of space flight is to place a perfectly reflecting aluminized sheet into orbit around the Earth and then use the light from the Sun to push this “solar sail.” Suppose a sail of area 6.00 × 105 m2 and mass 6 000 kg is placed in orbit facing the Sun. (a) What force is exerted on the s ...
... A possible means of space flight is to place a perfectly reflecting aluminized sheet into orbit around the Earth and then use the light from the Sun to push this “solar sail.” Suppose a sail of area 6.00 × 105 m2 and mass 6 000 kg is placed in orbit facing the Sun. (a) What force is exerted on the s ...
Magnetic Fields
... Where is the motion that makes a stationary bar magnet magnetic? • The moving charges are the electrons – undergoing two kinds of constant motion: (i) spin, like “tops” (although, really need quantum mechanics to describe this) (ii) orbit (revolve) about nucleus ...
... Where is the motion that makes a stationary bar magnet magnetic? • The moving charges are the electrons – undergoing two kinds of constant motion: (i) spin, like “tops” (although, really need quantum mechanics to describe this) (ii) orbit (revolve) about nucleus ...
P23.2 P23.4 P23.11
... if charge Q were displaced either to the left or right on the rod, the new net force would be opposite to the direction Q has been displaced, causing it to be pushed back to its equilibrium position. ...
... if charge Q were displaced either to the left or right on the rod, the new net force would be opposite to the direction Q has been displaced, causing it to be pushed back to its equilibrium position. ...
Field (physics)
In physics, a field is a physical quantity that has a value for each point in space and time. For example, on a weather map, the surface wind velocity is described by assigning a vector to each point on a map. Each vector represents the speed and direction of the movement of air at that point. As another example, an electric field can be thought of as a ""condition in space"" emanating from an electric charge and extending throughout the whole of space. When a test electric charge is placed in this electric field, the particle accelerates due to a force. Physicists have found the notion of a field to be of such practical utility for the analysis of forces that they have come to think of a force as due to a field.In the modern framework of the quantum theory of fields, even without referring to a test particle, a field occupies space, contains energy, and its presence eliminates a true vacuum. This lead physicists to consider electromagnetic fields to be a physical entity, making the field concept a supporting paradigm of the edifice of modern physics. ""The fact that the electromagnetic field can possess momentum and energy makes it very real... a particle makes a field, and a field acts on another particle, and the field has such familiar properties as energy content and momentum, just as particles can have"". In practice, the strength of most fields has been found to diminish with distance to the point of being undetectable. For instance the strength of many relevant classical fields, such as the gravitational field in Newton's theory of gravity or the electrostatic field in classical electromagnetism, is inversely proportional to the square of the distance from the source (i.e. they follow the Gauss's law). One consequence is that the Earth's gravitational field quickly becomes undetectable on cosmic scales.A field can be classified as a scalar field, a vector field, a spinor field or a tensor field according to whether the represented physical quantity is a scalar, a vector, a spinor or a tensor, respectively. A field has a unique tensorial character in every point where it is defined: i.e. a field cannot be a scalar field somewhere and a vector field somewhere else. For example, the Newtonian gravitational field is a vector field: specifying its value at a point in spacetime requires three numbers, the components of the gravitational field vector at that point. Moreover, within each category (scalar, vector, tensor), a field can be either a classical field or a quantum field, depending on whether it is characterized by numbers or quantum operators respectively. In fact in this theory an equivalent representation of field is a field particle, namely a boson.