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Label Description LG Status Operations
EarthSunDistance The distance from Earth to the Sun is approximately $1.5 \times 10^{8}$ km. 0 Ready Edit
EarthSunDistance (Copy) The distance from Earth to the Sun is approximately $1.5 \times 10^{8}$ km. 0 Draft Edit
EarthSunDistance (Copy) The distance from Earth to the Sun is approximately $1.5 \times 10^{8}$ km. 0 Draft Edit
EarthSunDistance (Copy) The distance from Earth to the Sun is approximately $1.5 \times 10^{8}$ km. 0 Draft Edit
EarthSurfaceGravAccel Near Earth's surface, the magnitude of the gravitational acceleration, $g$, is approximately $9.8 \, \mathrm{m/s}^2$. 7 Ready Edit
EarthSurfaceGravAccel (Copy) Near Earth's surface, the magnitude of the gravitational acceleration, $g$, is approximately $9.8 \, \mathrm{m/s}^2$. 0 Draft Edit
EarthSurfaceGravAccel (Copy) (Copy) Near Earth's surface, the magnitude of the gravitational acceleration, $g$, is approximately $9.8 \, \mathrm{m/s}^2$. 0 Draft Edit
EarthSurfaceGravDir Over a sufficiently small area of Earth's surface, the direction of Earth's gravitational acceleration can be approximated as constant, and defines "down". 7 Ready Edit
EarthSurfaceGravDir (Copy) Over a sufficiently small area of Earth's surface, the direction of Earth's gravitational acceleration can be approximated as constant, and defines "down". 0 Draft Edit
EarthSurfaceGravDir (Copy) (Copy) Over a sufficiently small area of Earth's surface, the direction of Earth's gravitational acceleration can be approximated as constant, and defines "down". 0 Draft Edit
EarthSurfaceGravDir (Copy) (Copy) (Copy) Over a sufficiently small area of Earth's surface, the direction of Earth's gravitational acceleration can be approximated as constant, and defines "down". 0 Draft Edit
EarthSurfaceGravForceMag Near Earth's surface, the magnitude of Earth's gravitational force on an object is $F_\text{g}=m g$, where $m$ is the mass of the object, in kilograms, and $g=9.8 \, \mathrm{m/s}^2$. 9 Ready Edit
EarthSurfaceGravForceMag (Copy) Near Earth's surface, the magnitude of Earth's gravitational force on an object is $F_\text{g}=m g$, where $m$ is the mass of the object, in kilograms, and $g=9.8 \, \mathrm{m/s}^2$. 0 Draft Edit
EarthSurfaceGravForceMag (Copy) (Copy) Near Earth's surface, the magnitude of Earth's gravitational force on an object is $F_\text{g}=m g$, where $m$ is the mass of the object, in kilograms, and $g=9.8 \, \mathrm{m/s}^2$. 0 Draft Edit
EarthSurfaceGravForceMag (Copy) (Copy) (Copy) Near Earth's surface, the magnitude of Earth's gravitational force on an object is $F_\text{g}=m g$, where $m$ is the mass of the object, in kilograms, and $g=9.8 \, \mathrm{m/s}^2$. 0 Draft Edit
ElectricCharge Electric charge is a property of some particles. There are two types of electric charge, positive and negative. A particle with no charge is neutral. 0 Ready Edit
ElectricCharge (Copy) Electric charge is a property of some particles. There are two types of electric charge, positive and negative. A particle with no charge is neutral. 0 Draft Edit
ElectricCharge (Copy) (Copy) Electric charge is a property of some particles. There are two types of electric charge, positive and negative. A particle with no charge is neutral. 0 Draft Edit
ElectronCharge The electron charge is $-e$, where $e$ is the elementary charge unit. 0 Ready Edit
ElectronCharge (Copy) The electron charge is $-e$, where $e$ is the elementary charge unit. 0 Draft Edit
ElectronCharge (Copy) (Copy) The electron charge is $-e$, where $e$ is the elementary charge unit. 0 Draft Edit
ElectronCharge (Copy) (Copy) The electron charge is $-e$, where $e$ is the elementary charge unit. 0 Draft Edit
ElectronMass The electron mass, $m_\text{e}$, is $9.11 \times 10^{-31} \, \mathrm{kg}$. 0 Ready Edit
ElectronMass (Copy) The electron mass, $m_\text{e}$, is $9.11 \times 10^{-31} \, \mathrm{kg}$. 0 Draft Edit
ElectronMass (Copy) The electron mass, $m_\text{e}$, is $9.11 \times 10^{-31} \, \mathrm{kg}$. 0 Draft Edit
ElectronMass (Copy) (Copy) The electron mass, $m_\text{e}$, is $9.11 \times 10^{-31} \, \mathrm{kg}$. 0 Draft Edit
ElectrostaticDirection The direction of the electrostatic force of object A on object B is along the line between the two objects. The direction is toward object A if the objects have charges of opposite sign and away from object A if the objects have charges of the same sign. 0 Ready Edit
ElectrostaticDirection (Copy) The direction of the electrostatic force of object A on object B is along the line between the two objects. The direction is toward object A if the objects have charges of opposite sign and away from object A if the objects have charges of the same sign. 0 Draft Edit
ElectrostaticDirection (Copy) The direction of the electrostatic force of object A on object B is along the line between the two objects. The direction is toward object A if the objects have charges of opposite sign and away from object A if the objects have charges of the same sign. 0 Draft Edit
ElectrostaticDirection (Copy) (Copy) The direction of the electrostatic force of object A on object B is along the line between the two objects. The direction is toward object A if the objects have charges of opposite sign and away from object A if the objects have charges of the same sign. 0 Draft Edit
ElectrostaticDirection (Copy) (Copy) (Copy) The direction of the electrostatic force of object A on object B is along the line between the two objects. The direction is toward object A if the objects have charges of opposite sign and away from object A if the objects have charges of the same sign. 0 Draft Edit
ElectrostaticEquation The magnitude of the electrostatic force of object A on object B is $F_\text{AB}=k \frac{q_\text{A} q_\text{B}}{d^2}$, where $q_\text{A}$ and $q_\text{B}$ are the charges of objects A and B, in coulombs (C), respectively, $d$ is the distance between the two charges in meters (m), and the constant $k=9.0 \times 10^{9} \, \mathrm{N \cdot m}^2/\mathrm{C}^2$. 0 Ready Edit
ElectrostaticEquation (Copy) The magnitude of the electrostatic force of object A on object B is $F_\text{AB}=k \frac{q_\text{A} q_\text{B}}{d^2}$, where $q_\text{A}$ and $q_\text{B}$ are the charges of objects A and B, in coulombs (C), respectively, $d$ is the distance between the two charges in meters (m), and the constant $k=9.0 \times 10^{9} \, \mathrm{N \cdot m}^2/\mathrm{C}^2$. 0 Draft Edit
ElectrostaticEquation (Copy) (Copy) The magnitude of the electrostatic force of object A on object B is $F_\text{AB}=k \frac{q_\text{A} q_\text{B}}{d^2}$, where $q_\text{A}$ and $q_\text{B}$ are the charges of objects A and B, in coulombs (C), respectively, $d$ is the distance between the two charges in meters (m), and the constant $k=9.0 \times 10^{9} \, \mathrm{N \cdot m}^2/\mathrm{C}^2$. 0 Draft Edit
ElectrostaticEquation (Copy) (Copy) (Copy) The magnitude of the electrostatic force of object A on object B is $F_\text{AB}=k \frac{q_\text{A} q_\text{B}}{d^2}$, where $q_\text{A}$ and $q_\text{B}$ are the charges of objects A and B, in coulombs (C), respectively, $d$ is the distance between the two charges in meters (m), and the constant $k=9.0 \times 10^{9} \, \mathrm{N \cdot m}^2/\mathrm{C}^2$. 0 Draft Edit
ElectrostaticStrengthCharge The magnitude of the electrostatic force of one object on another object is proportional to the charge of each of the objects. 7 Ready Edit
ElectrostaticStrengthCharge (Copy) The magnitude of the electrostatic force of one object on another object is proportional to the charge of each of the objects. 0 Draft Edit
ElectrostaticStrengthCharge (Copy) The magnitude of the electrostatic force of one object on another object is proportional to the charge of each of the objects. 0 Draft Edit
ElectrostaticStrengthCharge (Copy) (Copy) The magnitude of the electrostatic force of one object on another object is proportional to the charge of each of the objects. 0 Draft Edit
ElectrostaticStrengthCharge (Copy) (Copy) (Copy) The magnitude of the electrostatic force of one object on another object is proportional to the charge of each of the objects. 0 Draft Edit
ElectrostaticStrengthDistance The magnitude of the electrostatic force between two objects is proportional to the inverse square of the distance between the objects. 4 Ready Edit
ElectrostaticStrengthDistance (Copy) The magnitude of the electrostatic force between two objects is proportional to the inverse square of the distance between the objects. 0 Draft Edit
ElectrostaticStrengthDistance (Copy) (Copy) The magnitude of the electrostatic force between two objects is proportional to the inverse square of the distance between the objects. 0 Draft Edit
ElectrostaticStrengthDistance (Copy) (Copy) (Copy) The magnitude of the electrostatic force between two objects is proportional to the inverse square of the distance between the objects. 0 Draft Edit
ElectrostaticStrengthDistance (Copy) (Copy) (Copy) The magnitude of the electrostatic force between two objects is proportional to the inverse square of the distance between the objects. 0 Draft Edit
ElectrostaticStrengthDistance (Copy) (Copy) (Copy) The magnitude of the electrostatic force between two objects is proportional to the inverse square of the distance between the objects. 0 Draft Edit
ElementaryCharge The elementary charge, $e$, is the charge on a proton. Its magnitude is $1.602 \times 10^{-19} \, \mathrm{C}$. 0 Ready Edit
ElementaryCharge (Copy) The elementary charge, $e$, is the charge on a proton. Its magnitude is $1.602 \times 10^{-19} \, \mathrm{C}$. 0 Draft Edit
ElementaryCharge (Copy) (Copy) The elementary charge, $e$, is the charge on a proton. Its magnitude is $1.602 \times 10^{-19} \, \mathrm{C}$. 0 Draft Edit
EnergyConserved Energy is conserved. 0 Ready Edit

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