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Topic 9: Motion in fields 9.3 Electric field, potential and energy. 9.3.1 Define electric potential and electric potential energy. 9.3.2 State and apply the expression for electric potential due to a point charge.
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Topic 9: Motion in fields9.3 Electric field, potential and energy 9.3.1 Define electric potential and electric potential energy. 9.3.2 State and apply the expression for electric potential due to a point charge. 9.3.3 State and apply the formula relating electric field strength to electric potential gradient. 9.3.4 Determine the potential due to one or more point charges. 9.3.5 Describe and sketch the pattern of equipotential surfaces due to one and two point charges. 9.3.6 State the relation between equipotential surfaces and electric field lines. 9.3.4 Solve problems involving electric potential energy and electric potential.
Topic 9: Motion in fields9.3 Electric field, potential and energy Define electric potential and electric potential energy. You are probably asking yourself why we are spending so much time on fields. The reason is simple: Gravitational and electric fields expose the symmetries in the physical world that are so intriguing to scientists. The Physics Data Booklet shows this symmetry for Topic 6 and Topic 9: FYI Both forces are governed by an inverse square law. Mass and charge are the corresponding physical quantities.
electric potential energy or ∆EP = (1/40)q1q2/r ∆EP = kq1q2/r where k = 8.99×109 Nm2C−2 0 = 8.85×10-12 C2N-1m−2 Topic 9: Motion in fields9.3 Electric field, potential and energy Define electric potential and electric potential energy. We define the electric potential energy at a point P as the amount of work done in moving a charge q from infinity to the point P. Without going through a rigorous proof, we recall that work = force distance. From Coulomb’s law F = kq1q2/r2 ∆EP = Fr = (kq1q2/r2)r = kq1q2/r FYI Note the two forms of the proportionality const.
electric potential energy or EP = (1/40)q1q2/r EP = kq1q2/r where k = 8.99×109 Nm2C−2 0 = 8.85×10-12 C2N-1m−2 Topic 9: Motion in fields9.3 Electric field, potential and energy Define electric potential and electric potential energy. Since at r = the force is zero, we can dispense with the ∆EP and consider the potential energy EPat each point in space as absolute. EXAMPLE: Find the electric potential energy between two protons located 3.010-10 meters apart. SOLUTION: Use q1 = q2 = 1.610-19 C. Then EP = kq1q2/r = (9.0109)(1.610-19)2/ 3.010-10 = 7.710-19 J.
gravitational potential electric potential ∆V = ∆EP/m ∆V = ∆EP/q Topic 9: Motion in fields9.3 Electric field, potential and energy Define electric potential and electric potential energy. The potential V (not energy) at any point P in any field is found in the following way: Energy needed to bring test object from infinity to P potential V = Test object interacting with the field FYI For the gravitational field the test object is a mass and the potential is measured in Jkg-1. For the electric field the test object is a charge and the potential is measured in JC-1.
electric potential V = kq/r where k = 8.99×109 Nm2C−2 Topic 9: Motion in fields9.3 Electric field, potential and energy Define electric potential and electric potential energy. From our formula for electric potential energy ∆EP = kQq/r we see that ∆V = ∆EP/q = (kQq/r)/q = kQ/r. Note that there is no (-) in the formula as in V = -Gm/r. In the case of the electric potential the sign comes from the charge. FYI Again, since at r = the potential energy is zero, we can dispense with the ∆V and consider the potential V at each point in space as absolute.
electric potential V = kq/r where k = 8.99×109 Nm2C−2 Topic 9: Motion in fields9.3 Electric field, potential and energy State and apply the expression for electric potential due to a point charge. PRACTICE: Find the electric potential at a point P located 4.510-10 m from a proton. SOLUTION: q = 1.610-19 C so that V = kq/r = (8.99109)(1.610-19)/(4.510-10) = 3.2 JC-1 (Which is 3.2 V.) PRACTICE: If we place an electron at P what will be the electric potential energy stored in the proton-electron combo? SOLUTION: From ∆V = ∆EP/q we see that ∆EP = q∆V = (-1.610-19)(3.2) = 5.110-19 J (Which is 3.2 eV.)
E = -∆V/∆r electric potential gradient g = -∆V/∆r gravitational potential gradient Topic 9: Motion in fields9.3 Electric field, potential and energy State and apply the formula relating electric field strength to electric potential gradient. The electric potential gradient is the change in electric potential per unit distance. Thus the EPG = ∆V/∆r. Recall the relationship between the gravitational potential gradient and the gravitational field strength g: Without proof we state that the relationship between the electric potential gradient and the electric field strength is the same: FYI In the US we speak of the gradient as the slope. In IB we use the term gradient exclusively.
E = -∆V/∆r electric potential gradient Topic 9: Motion in fields9.3 Electric field, potential and energy State and applythe formula relating electric field strength to electric potential gradient. PRACTICE: The electric potential in the vicinity of a charge changes from -3.75 V to -3.63 Vin moving from r = 1.80×10-10 m to r = 2.85×10-10 m. What is the electric field strength in that region? SOLUTION: E = -∆V/∆r E = -(-3.63 - -3.75)/(2.85×10-10 - 1.80×10-10) E = -0.120/1.05×10-10 = -1.14×109 Vm-1 (or NC-1) FYI Maybe it is a bit late for this reminder but be careful not to confuse the E for electric field strength for the E for energy!
r Topic 9: Motion in fields9.3 Electric field, potential and energy Determine the potential due to one or more point charges. Since electric potential is a scalar, finding the electric potential due to more than one point charge is a simple additive process. EXAMPLE: Find the electric potential at the center of the circle of protons shown. The radius of the circle is the size of a small nucleus, or 3.010-15 m. SOLUTION: Because potential is a scalar, it doesn’t matter how the charges are arranged on the circle. Only the distance matters. For each proton r = 3.010-15 m. Then each charge contributes V = kq/r so that V = 4(9.0109)(1.610-19)/3.010-15 = 1.9106 NC-1 (or 1.9106 V).
r Topic 9: Motion in fields9.3 Electric field, potential and energy Determine the potential due to one or more point charges. EXAMPLE: Find the change in electric potential energy in moving a proton from infinity to the center of the previous nucleus. SOLUTION: Use ∆V = ∆EP/q and V = 0: ∆EP = q∆V = (1.610-19)(1.9106) = 3.0 10-13 J Converting to eV we have ∆EP = (3.0 10-13 J)(1 eV / 1.6 10-19 J) = 1.9106 eV = 1.9 MeV. FYI This is how much work we would need to do to add the proton to the nucleus.
q Topic 9: Motion in fields9.3 Electric field, potential and energy Describe and sketch the pattern of equipotential surfaces due to one and two point charges. Equipotential surfaces are imaginary surfaces at which the potential is the same. Since the electric potential for a point mass is given by V = kq/r it is clear that the equipotential surfaces are at fixed radii and hence are concentric spheres: equipotential surfaces FYI Generally equipotential surfaces are drawn so that the ∆Vs for consecutive surfaces are equal. Because V is inversely proportional to r the consecutive rings get farther apart as we get farther from the mass.
q q q q Topic 9: Motion in fields9.3 Electric field, potential and energy Describe and sketch the pattern of equipotential surfaces due to one and two point charges. EXAMPLE: Sketch the equipotential surfaces due to two point charges. SOLUTION: Here is the sketch of two negative charges: Here is the sketch of two positive charges: FYI These surfaces are identical to those of two masses. The difference will be in the electric dipole (having no gravitational counterpart).
Topic 9: Motion in fields9.3 Electric field, potential and energy State the relation between equipotential surfaces and electric field lines. EXAMPLE: Sketch the equipotential surfaces in the vicinity of a dipole. SOLUTION: If you recall that equipotential surfaces are perpendicular to the electric field lines the sketches are very simple: The surfaces are the dashed ellipses. FYI Note that the red E-field is everywhere perpendicular to the blue equipotential surfaces.
Topic 9: Motion in fields9.3 Electric field, potential and energy State the relation between equipotential surfaces and electric field lines. In 3D the point charge looks like this: PRACTICE: Explain how the 3D negative point charge picture would differ from that of the positive point charge. SOLUTION: Simply reverse the E-field arrows so that they point towards the charge instead of away from it. The equipotential surfaces would be the same. The positive point charge.
Topic 9: Motion in fields9.3 Electric field, potential and energy State the relation between equipotential surfaces and electric field lines. PRACTICE: Sketch the equipotential surfaces and the E-field surrounding a line of positive charge. SOLUTION:
Topic 9: Motion in fields9.3 Electric field, potential and energy State the relation between equipotential surfaces and electric field lines. PRACTICE: Draw a 3D contour map of the equipotential surface surrounding a negative charge. SOLUTION: FYI If you think of the equipotential surface as a hill, a positive test charge placed on the hill will “roll” downhill.
Topic 9: Motion in fields9.3 Electric field, potential and energy State the relation between equipotential surfaces and electric field lines. PRACTICE: Identify this equipotential surface. SOLUTION: This is a dipole. The positive charge is the peak and the negative charge is the pit. FYI The E-field is a conservative field just as the g-field is.
∆y ∆V Topic 9: Motion in fields9.3 Electric field, potential and energy State the relation between equipotential surfaces and electric field lines. EXAMPLE: Use the 3D view of the equipotential surface to interpret the electric potential gradient E = -∆V/∆r. SOLUTION: We can choose any direction for our r value, say the y-direction: Then E = -∆V/∆y. This is just the gradient (slope) of the surface. Thus E is the (-) gradient of the equipotential surface.
Topic 9: Motion in fields9.3 Electric field, potential and energy Solve problems involving electric potential energy and electric potential. Equipotentials are perpendicular to E-field lines and they never cross each other!
Topic 9: Motion in fields9.3 Electric field, potential and energy Solve problems involving electric potential energy and electric potential. From E = -∆V/∆r we see that the closer the Vs are, the bigger the E.
Topic 9: Motion in fields9.3 Electric field, potential and energy Solve problems involving electric potential energy and electric potential. + + + + + + + + + + + + + + + From conservation of charge, charge can be neither created nor destroyed. It can, however, be separated into (+) and (-) in equal quantities. Thus, the (-) was separated from the ground, leaving behind an equal amount of (+).
Topic 9: Motion in fields9.3 Electric field, potential and energy Solve problems involving electric potential energy and electric potential. + + + + + + + + + + + + + + + The electric field strength E at any point in space is equal to the force per unit charge at that point. If in doubt, find the applicable formula and translate it into words. “E = F/q.”
Topic 9: Motion in fields9.3 Electric field, potential and energy Solve problems involving electric potential energy and electric potential. + + + + + + + + + + + + + + + Just recall that between parallel plates the E-field is uniform (equally spaced), and it points from (+) toward (-).
Topic 9: Motion in fields9.3 Electric field, potential and energy Solve problems involving electric potential energy and electric potential. = q/A = 20 C / 7106 m2 = 2.8610-6 Cm-2. 0 = 8.85×10-12 C2N-1m−2 (from Data Booklet). Then E = /0 = 2.8610-6 / 8.85×10-12 = 3×105 Vm-1.
Topic 9: Motion in fields9.3 Electric field, potential and energy Solve problems involving electric potential energy and electric potential. is the same everywhere on the cloud. 0 is the same in air as in free space. The ground and the cloud’s lower surface are flat and parallel.
Topic 9: Motion in fields9.3 Electric field, potential and energy Solve problems involving electric potential energy and electric potential. Use E = -∆V/∆r and ignore the sign: Then ∆V = E∆r = (3×105)(500) = 1.5108 V!
Topic 9: Motion in fields9.3 Electric field, potential and energy Solve problems involving electric potential energy and electric potential. I = q/t = 20 C / 2010-3 s = 1000 A. ∆EP = q∆V = (20)(1.5108) = 3109 J. Or…P = IV = (1000)(1.5108) = 1.51011 W. E = Pt = (1.51011)(2010-3) = 3109 J.
Topic 9: Motion in fields9.3 Electric field, potential and energy Solve problems involving electric potential energy and electric potential. The E-field points from more (+) to less (+). Use E = -∆V/∆r and ignore the sign: E = ∆V/∆r = (100 V – 50 V) / 2 cm = 25 Vcm-1.
Topic 9: Motion in fields9.3 Electric field, potential and energy Solve problems involving electric potential energy and electric potential. Electric potential at a point P in space is the amount of work done in bringing a charge from infinity to the point P.
Topic 9: Motion in fields9.3 Electric field, potential and energy Solve problems involving electric potential energy and electric potential. The E-field points toward (-) charges. The E-field is ZERO inside a conductor. Perpendicular to E-field, and spreading.
Topic 9: Motion in fields9.3 Electric field, potential and energy Solve problems involving electric potential energy and electric potential. You can also tell directly from the concentration of the E-field lines. From E = -∆V/∆r we see that the bigger the separation between consecutive circles, the weaker the E-field.
Topic 9: Motion in fields9.3 Electric field, potential and energy Solve problems involving electric potential energy and electric potential. V is ZERO inside a conductor. V = kq/a V is biggest (-) when r = a. From V = kq/r we see that V is negative and it drops off as 1/r.
Topic 9: Motion in fields9.3 Electric field, potential and energy Solve problems involving electric potential energy and electric potential. V = kq/r V = (9.0109)(-9.010-9)/(4.5 10-2) = -1800 V.
Topic 9: Motion in fields9.3 Electric field, potential and energy Solve problems involving electric potential energy and electric potential. It will accelerate away from the surface along a straight radial line. Its acceleration will drop off as 1/r2 as it moves away from the sphere.
0 Topic 9: Motion in fields9.3 Electric field, potential and energy Solve problems involving electric potential energy and electric potential. q = -1.610-19 C. V0 = -1800 V. ∆EP = q∆V. From Vf = kq/r we have Vf = (9.0109)(-9.010-9)/(0.30) = -270 V. ∆EP = q∆V = (-1.610-19)(-270 - -1800) = -2.410-16 J. ∆EK + ∆EP = 0 ∆EK = -∆EP = 2.410-16 J. EKf – EK0 = 2.410-16 J. (1/2)mv2 = 2.410-16. (1/2)(9.1110-31)v2 = 2.410-16. v = 2.3107 ms-1.
Topic 9: Motion in fields9.3 Electric field, potential and energy Solve problems involving electric potential energy and electric potential. |E| = ∆V/∆r = (80 – 20) / 0.1 = 600.
Topic 9: Motion in fields9.3 Electric field, potential and energy Solve problems involving electric potential energy and electric potential.
Topic 9: Motion in fields9.3 Electric field, potential and energy Solve problems involving electric potential energy and electric potential. V = kQ/r On the x-axis V 0 since r is DIFFERENT for the paired Qs. At any point on the y-axis V = 0 since r is same and paired Qs are OPPOSITE.
Topic 9: Motion in fields9.3 Electric field, potential and energy Solve problems involving electric potential energy and electric potential.
