Study Electric Potential Energy in AP Physics 2 with focused flashcards that help you recognize the idea, recall the key rule, and apply it in practice-style prompts.
All flashcards
Flashcard 1: If q=5 C, E=10 N/C, d=2 m, find U.
Answer: U=100 J. Direct substitution: U=5×10×2=100 J.
Flashcard 2: State the relationship between electric potential (V) and electric potential energy (U).
Answer: U=qV. Direct relationship between potential energy and electric potential.
Flashcard 3: State the potential energy of a dipole in a uniform electric field.
Answer: U=−pE cos θ. Energy depends on dipole alignment relative to field direction.
Flashcard 4: What is the relationship between equipotential surfaces and electric field lines?
Answer: They are perpendicular to each other. Electric field always points perpendicular to equipotential surfaces.
Flashcard 5: What happens to electric potential energy when opposite charges are brought closer?
Answer: Electric potential energy decreases. Attractive force releases energy as charges approach each other.
Flashcard 6: What is the potential energy difference if a charge q moves through a potential difference V?
Answer: △U=q△V. Change in potential energy equals charge times potential difference.
Flashcard 7: What is electric potential energy?
Answer: Energy stored in a system due to electric forces. Energy from charge interactions and positions in electric fields.
Flashcard 8: State the relationship between electric potential (V) and electric potential energy (U).
Answer: U=qV. Direct relationship between potential energy and electric potential.
Flashcard 9: What is the unit of electric potential energy in the SI system?
Answer: Joule (J). Standard SI unit for all forms of energy.
Flashcard 10: If U=50 J and q=2 C, what is V?
Answer: V=25 V. Solving U=qV for potential: V=250=25 V.
Flashcard 11: What is the electric potential energy of a charge at infinity?
Answer: Zero, as potential energy approaches zero at infinity. Infinity serves as the standard reference point for potential energy.
Flashcard 12: Define electric potential.
Answer: Electric potential is the potential energy per unit charge. Potential energy divided by charge gives potential at a point.
Flashcard 13: What does a negative electric potential energy indicate about the interaction between charges?
Answer: Attractive interaction between opposite charges. Opposite charges attract, releasing energy when brought together.
Flashcard 14: Calculate the potential energy: p=2 C m, E=3 N/C, θ=0o.
Answer: U=−6 J. With θ=0°: U=−2×3×1=−6 J.
Flashcard 15: What happens to electric potential energy when opposite charges are brought closer?
Answer: Electric potential energy decreases. Attractive force releases energy as charges approach each other.
Flashcard 16: What is zero electric potential energy?
Answer: Reference point where potential energy is defined as zero. Arbitrary reference point chosen for convenience in calculations.
Flashcard 17: What happens to electric potential energy when like charges are brought closer?
Answer: Electric potential energy increases. Repulsive force requires work to decrease separation distance.
Flashcard 18: What is the potential energy formula for a capacitor with capacitance C and voltage V?
Answer: U=21CV2. Energy stored in electric field between capacitor plates.
Flashcard 19: For a charge q in a field E, what is the work done moving it a distance d?
Answer: W=−qEd. Negative sign indicates work done against the electric field.
Flashcard 20: What is the potential energy of a charge q in the presence of a uniform electric field E?
Answer: U=qEd. Energy stored when charge is displaced distance d in uniform field.
Flashcard 21: Define equipotential surface.
Answer: Surface where electric potential is constant. Surface of points having identical electric potential values.
Flashcard 22: What is the relationship between equipotential surfaces and electric field lines?
Answer: They are perpendicular to each other. Electric field always points perpendicular to equipotential surfaces.
Flashcard 23: Calculate potential energy change: q=2 C, △V=5 V.
Answer: △U=10 J. Direct calculation: △U=2×5=10 J.
Flashcard 24: What is the formula for the potential energy stored in a capacitor?
Answer: U=21CV2. Standard formula for energy stored in capacitor electric field.
Flashcard 25: What is the potential energy change if a charge moves in a radial electric field?
Answer: Calculated using U=kerq1q2. Use the two-point charge formula for radial field configurations.
Flashcard 26: What is zero electric potential energy?
Answer: Reference point where potential energy is defined as zero. Arbitrary reference point chosen for convenience in calculations.
Flashcard 27: For a charge q in a field E, what is the work done moving it a distance d?
Answer: W=−qEd. Negative sign indicates work done against the electric field.
Flashcard 28: State the potential energy formula for a point charge q in a potential V.
Answer: U=qV. Fundamental relationship between charge, potential, and potential energy.
Flashcard 29: What does a negative electric potential energy indicate about the interaction between charges?
Answer: Attractive interaction between opposite charges. Opposite charges attract, releasing energy when brought together.
Flashcard 30: What is the potential energy formula for a capacitor with capacitance C and voltage V?
Answer: U=21CV2. Energy stored in electric field between capacitor plates.
Flashcard 31: What is the expression for electric potential energy in a uniform field?
Answer: U=qEd. Formula for potential energy in constant electric field.
Flashcard 32: Calculate potential energy: q=3 C, V=4 V.
Answer: U=12 J. Direct substitution: U=3×4=12 J.
Flashcard 33: What happens to electric potential energy when like charges are brought closer?
Answer: Electric potential energy increases. Repulsive force requires work to decrease separation distance.
Flashcard 34: What is the potential energy change if a charge moves in a radial electric field?
Answer: Calculated using U=kerq1q2. Use the two-point charge formula for radial field configurations.
Flashcard 35: What is the electric potential energy of a charge at infinity?
Answer: Zero, as potential energy approaches zero at infinity. Infinity serves as the standard reference point for potential energy.
Flashcard 36: State the potential energy of a dipole in a uniform electric field.
Answer: U=−pE cos θ. Energy depends on dipole alignment relative to field direction.
Flashcard 37: State the formula for electric potential energy between two point charges.
Answer: U=kerq1q2. Direct formula from Coulomb's law for two point charges.
Flashcard 38: Calculate the potential energy of a capacitor: C=4 F, V=5 V.
Answer: U=50 J. Using U=21×4×52=50 J.
Flashcard 39: If q=5 C, E=10 N/C, d=2 m, find U.
Answer: U=100 J. Direct substitution: U=5×10×2=100 J.
Flashcard 40: In a capacitor, how does increasing the separation affect potential energy?
Answer: Increases potential energy. Larger separation increases energy stored in electric field.
Flashcard 41: What is electric potential energy?
Answer: Energy stored in a system due to electric forces. Energy from charge interactions and positions in electric fields.
Flashcard 42: Identify the constant ke in the formula U=kerq1q2.
Answer: Coulomb's constant, 8.99×109 N m2/C2. Fundamental constant relating electric force and charge separation.
Flashcard 43: What is the electric potential energy change for a charge moving through a potential difference?
Answer: △U=q△V. Change in potential energy from moving through potential difference.
Flashcard 44: What is the electric potential energy of a charge q at a potential V?
Answer: U=qV. Direct application of the potential energy-potential relationship.
Flashcard 45: What is the potential energy difference if a charge q moves through a potential difference V?
Answer: △U=q△V. Change in potential energy equals charge times potential difference.
Flashcard 46: What is the electric potential energy of a charge q at a potential V?
Answer: U=qV. Direct application of the potential energy-potential relationship.
Flashcard 47: In a capacitor, how does increasing the separation affect potential energy?
Answer: Increases potential energy. Larger separation increases energy stored in electric field.
Flashcard 48: What is the electric potential energy of a system of two point charges q1, q2 separated by r?
Answer: U=kerq1q2. Standard two-charge potential energy formula from Coulomb's law.
Flashcard 49: What is the electric potential energy change for a charge moving through a potential difference?
Answer: △U=q△V. Change in potential energy from moving through potential difference.
Flashcard 50: Calculate the work done: q=4 C, E=5 N/C, d=3 m.
Answer: W=−60 J. Direct calculation: W=−4×5×3=−60 J.
Flashcard 51: Find the potential energy of a system with q1=1 C, q2=2 C, and r=0.5 m.
Answer: U=35.96×109 J. Using U=8.99×109×0.51×2.
Flashcard 52: What is the expression for electric potential energy in a uniform field?
Answer: U=qEd. Formula for potential energy in constant electric field.
Flashcard 53: What does a positive electric potential energy indicate about the interaction between charges?
Answer: Repulsive interaction between like charges. Same charges repel, requiring energy to bring them together.
Flashcard 54: What is the formula for the potential energy stored in a capacitor?
Answer: U=21CV2. Standard formula for energy stored in capacitor electric field.
Flashcard 55: If U=50 J and q=2 C, what is V?
Answer: V=25 V. Solving U=qV for potential: V=250=25 V.
Flashcard 56: What is the electric potential energy of a system of two point charges q1, q2 separated by r?
Answer: U=kerq1q2. Standard two-charge potential energy formula from Coulomb's law.
Flashcard 57: Calculate the electric potential energy: q1=2 C, q2=3 C, r=1 m.
Answer: U=5.394×1010 J. Using U=kerq1q2=8.99×109×12×3.
Flashcard 58: Calculate potential energy change: q=2 C, △V=5 V.
Answer: △U=10 J. Direct calculation: △U=2×5=10 J.
Flashcard 59: Calculate the work done: q=4 C, E=5 N/C, d=3 m.
Answer: W=−60 J. Direct calculation: W=−4×5×3=−60 J.
Flashcard 60: Calculate the potential energy: p=2 C m, E=3 N/C, θ=0o.
Answer: U=−6 J. With θ=0°: U=−2×3×1=−6 J.
Flashcard 61: Define equipotential surface.
Answer: Surface where electric potential is constant. Surface of points having identical electric potential values.
Flashcard 62: What is the unit of electric potential energy in the SI system?
Answer: Joule (J). Standard SI unit for all forms of energy.
Flashcard 63: What does a positive electric potential energy indicate about the interaction between charges?
Answer: Repulsive interaction between like charges. Same charges repel, requiring energy to bring them together.
Flashcard 64: Calculate the electric potential energy: q1=2 C, q2=3 C, r=1 m.
Answer: U=5.394×1010 J. Using U=kerq1q2=8.99×109×12×3.
Flashcard 65: Calculate potential energy: q=3 C, V=4 V.
Answer: U=12 J. Direct substitution: U=3×4=12 J.
Flashcard 66: What is the potential energy of a charge q in the presence of a uniform electric field E?
Answer: U=qEd. Energy stored when charge is displaced distance d in uniform field.
Flashcard 67: Calculate the potential energy of a capacitor: C=4 F, V=5 V.
Answer: U=50 J. Using U=21×4×52=50 J.
Flashcard 68: State the formula for electric potential energy between two point charges.
Answer: U=kerq1q2. Direct formula from Coulomb's law for two point charges.
Flashcard 69: Identify the constant ke in the formula U=kerq1q2.
Answer: Coulomb's constant, 8.99×109 N m2/C2. Fundamental constant relating electric force and charge separation.