It depends on the specific circumstances. In general, gravitational force is weaker than electric force because the electric force between charged particles is stronger and can dominate over gravitational force at small distances. However, gravitational force becomes more significant for very large masses or distances.
The truck has a greater gravitational force than an egg. Gravitational force depends on the mass of an object, so the truck’s larger mass leads to a greater gravitational force compared to the egg.
The electric force is stronger than the gravitational force because electric charges can be positive or negative, allowing for attractive and repulsive interactions, while gravity is always attractive. Additionally, the strength of the electric force is determined by the charge of the particles involved, which can be much larger than the masses involved in gravitational interactions.
Gravitational force is the weakest universal force. It is significantly weaker than the electromagnetic and strong nuclear forces.
The electric force is much stronger than the gravitational force, typically by a factor of around 10^36. This is because electric forces involve interactions between charged particles, which are inherently stronger than interactions between particles that only have mass.
It depends on the mass. The higher the mass the higher the gravitational force. Usually big things have higher masses than small things so the answer is yes, big things (usually) have a higher gravitational force than small things.
The truck has a greater gravitational force than an egg. Gravitational force depends on the mass of an object, so the truck’s larger mass leads to a greater gravitational force compared to the egg.
The electric force is stronger than the gravitational force because electric charges can be positive or negative, allowing for attractive and repulsive interactions, while gravity is always attractive. Additionally, the strength of the electric force is determined by the charge of the particles involved, which can be much larger than the masses involved in gravitational interactions.
In case of electric force there are both repulsive and attractive. But in case of gravitational force, only attractive force. Electrical force between electric charges. Gravitational force between masses. In electric force we use a constant known as permittivity of the medium. But in gravitational force a universal constant known as Gravitational constant is used. Electrical force is very much greater than gravitational force.
Of course. When you wave a charged comb over bits of tissue on the table, they jump up off the table and stick to the comb. The electrostatic field of the comb must be attracting them upward with greater force than the gravitational field pulling them down.
Yes, the gravitational force exerted by the Sun is much greater than that of the Earth. The Sun's mass is significantly larger than the Earth's, resulting in a stronger gravitational pull. This gravitational force is what keeps the planets in orbit around the Sun.
The gravitational force of Earth is about 6 times greater than that of the Moon. This means that an object on Earth weighs about 6 times more than it would on the Moon due to the difference in gravitational pull between the two bodies.
Gravitational force is the weakest universal force. It is significantly weaker than the electromagnetic and strong nuclear forces.
Absolutely not.
Of course. Rub a plastic comb on your shirt, than pass it over bits of tissue on the table. The bits of tissue jump up off the table and stick to the comb. The electrostatic field of the comb is pulling them upward with greater force than the gravitational field of the entire earth pulling them down.
The electric force between two protons is much stronger than the gravitational force between them. The electric force is about 10^36 times stronger than the gravitational force at the atomic scale. This is why charged particles interact primarily through electromagnetic forces and not gravitational forces.
The electric force is much stronger than the gravitational force, typically by a factor of around 10^36. This is because electric forces involve interactions between charged particles, which are inherently stronger than interactions between particles that only have mass.
It depends on the mass. The higher the mass the higher the gravitational force. Usually big things have higher masses than small things so the answer is yes, big things (usually) have a higher gravitational force than small things.