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High Energy produced with high velocity which required for nuclear reaction

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Q: Why is it necessary for a collision between atomic particles to occur so a nuclear reaction may begin?
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Related questions

What happens to the motion of gas particles when temperature increases?

They start to move faster, therefore, the reaction will happen quicker. This is because there is more chance of a collision between the particles.


What happens to the motion of gas particles when their temperature increases?

They start to move faster, therefore, the reaction will happen quicker. This is because there is more chance of a collision between the particles.


What is the difference between an effective collision and ineffective collision of reactant particles?

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How do catalysts affect collision theory?

A catalyst is a substance that increases the rate of a reaction without being used up. Some catalysts work by giving the the reacting particles a surface to stick to where they can make contact which increases the amount of collisions between the particles. Therefore a catalyst effects collision theory by speeding up a reaction.


According to collision theory increasing the concentration of the reactants in a chemical reaction increases?

A.the rate of collisions between two particles.


What would happen in a collision between two particles if there was insufficient kinetic energy and improper geometric orientation?

The particles would rebound and there would be no reaction. The particles would keep bouncing off each other until they eventually react, therefore the rate would be slow.


Increasing the temperature of a reaction increases the?

rate of collisions between particles. average velocity of the particles.


What is Planetary Collision Theory?

The Collision Theory states that the rate of molecules colliding with sufficient kinetic energy successfully is proportional to the collision frequency multiplied by the fraction of collisions. The assumptions are that the molecules are spheres and traveling in straight lines.


What is the formation of a product in a reaction based on?

colisions between the particles


Describe the collision theory in relation to reaction rate?

When you have a higher concentration of elements in the reaction you are no matter what speed going to have a faster reaction taking place however the lower the concentration it is the more time it will take for the reaction to take place this process is similar to pressure as it reflects how the more of it there is the faster the reaction will be and how if there is less of it the slower the reaction will be. (related to the Collision Theory)


How does the surface area affect the rate of a reaction?

The powdered solid has a greater surface area than the single lump of solid. So the larger the surface area of the solid, the faster the reaction will be. Increasing the surface area of the solid increases the chances of collision taking place between the molecules of reactants, if it is a reaction in liquid or gaseous phase.


Does every collision between reacting particles leads to products?

For a reaction to take place, the reactants must have sufficient energy and have correct orientation when they collide. So, the reason why all collisions don't lead to reaction is that the collisions do not satisfy these conditions.