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because of the signals from the tree it allows the water to move..

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Why can't gravity be magnetic?

Gravity and magnetism are separate fundamental forces with different properties. Gravity is a force of attraction between objects with mass, while magnetism is a force that acts on objects with magnetic properties. The two forces have different mechanisms and cannot be directly interchanged or equated.


Is magnetism influenced by gravity?

No, magnetism is not directly influenced by gravity. Gravity is a force that acts on all objects with mass, while magnetism is a force that acts on objects with certain magnetic properties. They are independent of each other in most situations.


What water cycle process works against gravity?

The process of transpiration works against gravity within the water cycle. During transpiration, water is absorbed by plant roots from the soil and then evaporates from tiny pores in the leaves into the atmosphere. This movement of water upward through plants, against the force of gravity, is facilitated by capillary action and the cohesion and adhesion of water molecules. Ultimately, this process contributes to the overall movement of water in the cycle.


Is Gravity on the sun weak?

Gravity on the sun is incredibly strong because of its massive size and density. The sun's gravity is about 28 times stronger than Earth's gravity. This strong gravitational force is what keeps all the planets in orbit around the sun.


What are the three types of pressure that can push against the inward force of gravity?

The three types of pressure that can push against the inward force of gravity are thermal pressure (due to high temperatures), radiation pressure (from electromagnetic radiation), and degeneracy pressure (resulting from quantum effects in dense matter).

Related Questions

How does water get to the leaves in the tops of the trees against the force of gravity?

b/c of transpiration(:


How does water get to leaves in the tops of the tallest trees against the force of gravity?

b/c of transpiration(:


What is the force that acts against gravity?

The force that acts against gravity is called the normal force. It is exerted by a surface supporting an object, pushing upwards to prevent the object from falling due to gravity.


What is the force that is working against the buoyant force?

The force working against the buoyant force is gravity. Gravity pulls objects downward, while the buoyant force pushes objects upward when they are immersed in a fluid.


What is the upward force that works against gravity?

Any upward force works against gravity,since they act in opposite directions.


What is the force that supports an object against gravity?

The force that supports an object against gravity is called the normal force. It is exerted by a surface to prevent objects from falling through it. The normal force equals the force of gravity acting on the object.


Why do leaves fall down?

Leaves fall down due to the force of gravity pulling on them.


Against what other force does buoyancy act?

Buoyancy is the power to float or rise in a liquid and it acts against the force of gravity.


What is 1 force that buoyant works against?

the force of gravity


When is work said to be done against the force of gravity?

All bodies with mass are attracted to the Earth by gravity, so when a body is raised you must do work to raise it. This work is equal to force x height, if force is in Newtons and height in meters, the work is in units of Joules.


What is the force that acts against the force of buoyancy?

The force that acts against the force of buoyancy is gravity. Buoyancy is the upward force exerted by a fluid that opposes the weight of an object immersed in the fluid. Gravity, on the other hand, pulls objects downwards.


What is the minimum force to go against gravity?

The minimum force needed to go against gravity is equal to the force of gravity acting on the object, which is the object's weight. This force can be calculated using the formula F = m*g, where F is the force, m is the mass of the object, and g is the acceleration due to gravity (approximately 9.8 m/s^2 on Earth).