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By using right hand rulee.. how?? let me explain.. first you should be knowing the direction of flow of current, then hold the current carrying conductor by your right hand in a way that your thumb points the direction of current flowing and curl your fingures around the conductor the manner your figures curl around condutor would determine the the magnetic field's direction that may be clockwise or anti-clockwise..thankkxx.

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Why does the current carrying conductor experiences a force when it is placed in magnetic field state Fleming's left hand rule?

The force on current carrying conductor kept in a magnetic field is given by the expression F = B I L sin@ So the force becomes zero when the current carrying conductor is kept parallel to the magnetic field direction and becomes maximum when the current direction is normal to the magnetic field direction. Ok now why does a force exist on the current carrying conductor? As current flows through a conductor magnetic lines are formed aroung the conductor. This magnetic field gets interaction with the external field and so a force comes into the scene.


What simple rule has been established for finding the direction of magnetic force around a current-carrying conductor?

The right hand rule. If you were to place your right hand around the conductor, with the thumb pointing in the direction of current flow, your fingers which are wrapped around the conductor will point in the direction of magnetic flux. Said another way, if you are looking at the end of the conductor and current is flowing towards you, then magnetic flux will be counter-clockwise.


what rule is applied in case of dc motor?

You may be thinking of Fleming's Left-Hand Rule (for conventional current flow) or Fleming's Right-Hand Rule (for electron flow), devised by academic Sir Ambrose Fleming, as a aid for determining the direction of the resulting force acting on a current-carrying conductor within a magnetic field, when the direction of current and the direction of the magnetic field are known.


In a current carrying conductor what exist around it?

a magnetic field


When is the force experienced by a current carrying conductor placed in a magnetic field the largest?

When the conductor,magnetic field and motion are perpendicular to each other

Related Questions

Why does the right hand rule work in determining the direction of a magnetic field around a current-carrying conductor?

The right hand rule works in determining the direction of a magnetic field around a current-carrying conductor because it follows the principles of electromagnetism. When a current flows through a conductor, it creates a magnetic field around it. By using the right hand rule, which involves pointing the thumb in the direction of the current and curling the fingers in the direction of the magnetic field, you can determine the direction of the magnetic field. This rule is based on the relationship between electric currents and magnetic fields as described by the laws of electromagnetism.


How rigt hand thumb rule is used in determining the direction of magnetic field around a conductor carrying current?

Curl the fingers of your right hand into the palm and extend the thumb. The thumb indicates the direction of the current, and the direction of the fingers indicates the direction of the magnetic field.


Effect on the magnetic field when the direction of current is reversed true or false?

True. When the direction of the current is reversed, the direction of the magnetic field also reverses. This is in accordance with the right-hand rule for determining the direction of the magnetic field around a current-carrying conductor.


How does the right hand rule work to determine the direction of a magnetic field around a current-carrying conductor?

The right-hand rule is a way to determine the direction of a magnetic field around a current-carrying conductor. Point your thumb in the direction of the current flow, and curl your fingers. The direction your fingers curl represents the direction of the magnetic field around the conductor.


Why does the current carrying conductor experiences a force when it is placed in magnetic field state Fleming's left hand rule?

The force on current carrying conductor kept in a magnetic field is given by the expression F = B I L sin@ So the force becomes zero when the current carrying conductor is kept parallel to the magnetic field direction and becomes maximum when the current direction is normal to the magnetic field direction. Ok now why does a force exist on the current carrying conductor? As current flows through a conductor magnetic lines are formed aroung the conductor. This magnetic field gets interaction with the external field and so a force comes into the scene.


What is the right hand rule and how is it used to determine the direction of a magnetic field around a current-carrying conductor?

The right-hand rule is a method used to determine the direction of a magnetic field around a current-carrying conductor. To use the rule, point your thumb in the direction of the current flow and curl your fingers. The direction your fingers curl represents the direction of the magnetic field around the conductor.


What is the purpose of the right hand rule diagram in understanding the direction of magnetic fields around a current-carrying conductor?

The purpose of the right hand rule diagram is to help visualize the direction of magnetic fields around a current-carrying conductor. By using your right hand and following the rule, you can determine the direction of the magnetic field based on the direction of the current flow in the conductor.


Is the right hand rule for protons or electrons used to determine the direction of the magnetic field created by a current-carrying conductor?

The right-hand rule is used to determine the direction of the magnetic field created by a current-carrying conductor.


What is the right hand curl rule and how is it used to determine the direction of the magnetic field around a current-carrying conductor?

The right-hand curl rule is a method used to determine the direction of the magnetic field around a current-carrying conductor. To apply the rule, point your right thumb in the direction of the current flow. Then, curl your fingers around the conductor. The direction your fingers curl represents the direction of the magnetic field lines around the conductor.


What is the right hand rule in physics and how is it used to determine the direction of a magnetic field around a current-carrying conductor?

The right-hand rule in physics is a method used to determine the direction of a magnetic field around a current-carrying conductor. To apply the rule, point your right thumb in the direction of the current flow and curl your fingers. The direction in which your fingers curl represents the direction of the magnetic field around the conductor.


Force on a current-carrying conductor?

When a current-carrying conductor is placed in a magnetic field, a force is exerted on the conductor due to the interaction between the magnetic field and the current. This force is known as the magnetic Lorentz force and its direction is perpendicular to both the magnetic field and the current flow. The magnitude of the force depends on the strength of the magnetic field, the current flowing through the conductor, and the length of the conductor exposed to the magnetic field.


What is the left hand rule for magnetism and how is it used to determine the direction of the magnetic field in a current-carrying conductor?

The left-hand rule for magnetism is a way to determine the direction of the magnetic field around a current-carrying conductor. To use this rule, point your thumb in the direction of the current flow (from positive to negative), your index finger in the direction of the magnetic field, and your middle finger will then point in the direction of the magnetic field lines. This rule helps to visualize and understand the relationship between current flow and magnetic fields in a conductor.