5 - apel slice
... In a simple circuit, known as a series circuit, electric charge can flow only in one path. When the power source is turned on, the charged particles in the wire start flowing in one direction around a single loop. Any bulb along this path receives the same amount of electrical energy. If all the bul ...
... In a simple circuit, known as a series circuit, electric charge can flow only in one path. When the power source is turned on, the charged particles in the wire start flowing in one direction around a single loop. Any bulb along this path receives the same amount of electrical energy. If all the bul ...
Solution
... Magnetic force: Fm = qvB sin θ = (−1.60 × 10−19 C) · 6.00 × 106 m/s · 50.0 × 10−6 T · sin(π/2) = 4.80 × 10−17 N in direction opposite right hand rule prediction, i.e., downward. (iii) At the equator, the Earth’s magnetic field is horizontally north. Because an electron has negative charge, ~ is oppo ...
... Magnetic force: Fm = qvB sin θ = (−1.60 × 10−19 C) · 6.00 × 106 m/s · 50.0 × 10−6 T · sin(π/2) = 4.80 × 10−17 N in direction opposite right hand rule prediction, i.e., downward. (iii) At the equator, the Earth’s magnetic field is horizontally north. Because an electron has negative charge, ~ is oppo ...
PSE4_Lecture_2_Ch21
... pattern on the drum and are later transferred to paper and “melted” to produce the copy. Suppose each toner particle has a mass of 9.0 x 10-16 kg and carries an average of 20 extra electrons to provide an electric charge. Assuming that the electric force on a toner particle must exceed twice its wei ...
... pattern on the drum and are later transferred to paper and “melted” to produce the copy. Suppose each toner particle has a mass of 9.0 x 10-16 kg and carries an average of 20 extra electrons to provide an electric charge. Assuming that the electric force on a toner particle must exceed twice its wei ...
Lecture Notes 17: Multipole Expansion of the Magnetic Vector Potential, A; Magnetic Multipoles; B = Curl A
... The magnetic dipole moments discussed thus far are obviously for a physical magnetic dipole – i.e. one with finite spatial extent. A pure / ideal magnetic dipole moment has NO spatial extent – its area a → 0 while its current I → ∞, keeping the product m = Ia = constant. For r r ′ , we asymptoticall ...
... The magnetic dipole moments discussed thus far are obviously for a physical magnetic dipole – i.e. one with finite spatial extent. A pure / ideal magnetic dipole moment has NO spatial extent – its area a → 0 while its current I → ∞, keeping the product m = Ia = constant. For r r ′ , we asymptoticall ...
Lecture_11_up
... 27-8 The Hall Effect When a current-carrying wire is placed in a magnetic field, there is a sideways force on the electrons in the wire. This tends to push them to one side and results in a potential difference from one side of the wire to the other; this is called the Hall effect. The emf differs ...
... 27-8 The Hall Effect When a current-carrying wire is placed in a magnetic field, there is a sideways force on the electrons in the wire. This tends to push them to one side and results in a potential difference from one side of the wire to the other; this is called the Hall effect. The emf differs ...
The Magnetic Field
... field and emit the energy they absorbed. • This energy emitted is detected and a computer uses this information to form an image. ...
... field and emit the energy they absorbed. • This energy emitted is detected and a computer uses this information to form an image. ...
A dipole in an external electric field.
... You must be able to calculate the electric flux through a surface. ...
... You must be able to calculate the electric flux through a surface. ...