Inverse square.
The electric force between you and a charge increases as you get closer due to the changing electric field intensity. The force follows an inverse square law, meaning it grows rapidly the closer you get. This is why you might feel a stronger force when near an electric charge.
True. The strength of an electrical field follows an inverse square law.
The intensity of an electric field is determined by the amount of charge creating the field and the distance from the charge. The closer you are to the charge, the stronger the electric field will be.
The strength of an electric field is influenced by two factors: the magnitude of the charge creating the field, and the distance from the charge at which the field is being measured. The larger the charge and the closer the distance, the stronger the electric field will be.
You can draw electric field lines closer together to show a stronger electric field. The density of the lines represents the intensity of the field - the closer the lines, the stronger the field.
The electric force between you and a charge increases as you get closer due to the changing electric field intensity. The force follows an inverse square law, meaning it grows rapidly the closer you get. This is why you might feel a stronger force when near an electric charge.
True. The strength of an electrical field follows an inverse square law.
The intensity of an electric field is determined by the amount of charge creating the field and the distance from the charge. The closer you are to the charge, the stronger the electric field will be.
The strength of an electric field is influenced by two factors: the magnitude of the charge creating the field, and the distance from the charge at which the field is being measured. The larger the charge and the closer the distance, the stronger the electric field will be.
You can draw electric field lines closer together to show a stronger electric field. The density of the lines represents the intensity of the field - the closer the lines, the stronger the field.
The number that originates from a charge when an electric field line is drawn represents the magnitude of the charge creating the field. The field lines help us visualize the direction of the electric field and the relative strength of the field at different points around the charge. The closer the field lines are together, the stronger the electric field.
The electric field around a sphere is directly related to the charge distribution on the surface of the sphere. The electric field is stronger closer to the surface of the sphere and weaker further away, following the inverse square law.
The presence of a charged wire creates an electric field in its surrounding environment. The electric field is stronger closer to the wire and weaker farther away. The direction of the electric field lines depends on the charge of the wire.
No. The strength of the electric field remains unchanged regardless of your proximity. However, the effects of the electric field on you are more pronounced as you move closer to it.
The electric force is directly proportional to the product of the charges and inversely proportional to the square of the distance between the charges. This relationship is described by Coulomb's law, which states that the electric force between two charged objects is stronger when the charges are larger and closer together.
Electrostatric force on a test charge is stronger when it's closer to another charge. In exactly the same way, mathematically, that the gravitational force on a test mass is stronger when it's closer to another mass. And in exactly the same ratio.
Field lines associated with a uniform electric field are straight and evenly spaced. They point in the direction of the electric field and show the path a positive test charge would follow. The field lines never intersect and are closer together where the field is stronger.