Force can be found using the equation F=qE, where q is the given charge 2C and E is the unknown electric field. Force is given as 60 N which modifies the equation to E=F/q. Substituting the values we get E=60/2= 30N/C which is the electric field at the location of the charge.
The movement of electrical charge on a material is called electric current. It is defined as the flow of electric charge through a medium, such as a wire, in response to an electric field.
The electrical field is the force per unit charge experienced by a charged particle in an electric field. The electrical potential, or voltage, is the energy per unit charge required to move a charged particle between two points in an electric field. The relationship between them is that the electric field is the negative gradient of the electrical potential.
True. The strength of an electrical field follows an inverse square law.
The electrical potential energy of a charge is determined by both its charge and the electric field in which it resides. The potential energy increases with the charge of the object and how much it is separated from another object with opposite charge. The direction of the electric field also influences the potential energy of a charge.
The electric field around a negative charge points inward, towards the charge, while the electric field around a positive charge points outward, away from the charge. The electric field strength decreases with distance from both charges, following an inverse square law relationship.
The force around a another charge whether it is attracting or repulsive due to the another point charge is known as electric field
In a given electrical system, the relationship between voltage and electric field is that voltage is the measure of electric potential difference between two points in the system, while electric field is the force per unit charge experienced by a charge at a point in the system. The electric field is directly proportional to the voltage in the system.
The presence of charge creates an electric field. The electric field is just a convenient quantity of how much another charge would move *if* it were placed near the first charge.
-- Electric charge that's moving is the definition of electric current.-- It creates a magnetic field in its neighborhood.
The voltage integral of an electric field is important in electrical engineering because it helps determine the amount of work needed to move a charge between two points in an electric field. This measurement is crucial for understanding and designing electrical circuits and devices.
A capacitor is an electrical component that can hold an electrical charge. It stores energy in an electric field when connected to a power source and can release this stored energy when needed.
Electrical potential energy is the energy stored in an electric field due to the position of charged particles, while electric potential is the amount of electric potential energy per unit charge at a specific point in an electric field.