• Product
  • Suppliers
  • Manufacturers
  • Solutions
  • Free tools
  • Knowledges
  • Experts
  • Communities
Search


Can you explain the difference between an oscillating electric field and an oscillating magnetic field?

Encyclopedia
Encyclopedia
Field: Encyclopedia
0
China

Oscillating Electric Field (Oscillating Electric Field) and oscillating Magnetic field (Oscillating magnetic field) are important components of electromagnetic wave, and they are interrelated and interdependent in the propagation process of electromagnetic wave. The following details the difference between oscillating electric and oscillating magnetic fields and their interactions:

Oscillating Electric Field

Definition: An oscillating electric field is an electric field that varies periodically with time and space. In electromagnetic waves, the direction and magnitude of the electric field varies with time as a sine or cosine function.

Peculiarity

  • Direction: The direction of the oscillating electric field is fixed, usually perpendicular to the propagation direction of the electromagnetic wave.

  • Intensity: The intensity of the oscillating electric field changes with time, and its frequency is equal to the frequency of the electromagnetic wave.

  • Polarization: The polarization direction of the oscillating electric field determines the polarization characteristics of the electromagnetic wave, which can be linear polarization, circular polarization or elliptical polarization.

Effect

An oscillating electric field can exert a force on a charged particle, causing it to move or accelerate.In the process of electromagnetic wave propagation, the oscillating magnetic field will be generated by the change of oscillating electric field.

Oscillating Magnetic Field

Definition: An oscillating magnetic field is a magnetic field that changes periodically with time and space. In electromagnetic waves, the direction and magnitude of the magnetic field also change with time as a sine or cosine function.

Peculiarity

  • Direction: The direction of the oscillating magnetic field is fixed, usually perpendicular to the propagation direction of the electromagnetic wave, and perpendicular to the direction of the oscillating electric field.

  • Intensity: The intensity of the oscillating magnetic field changes with time, and the frequency of its change is also equal to the frequency of electromagnetic waves.

  • Relationship with electric field: There is a fixed proportional relationship between the strength of the oscillating magnetic field and the strength of the oscillating electric field, that isGiven E =c given B given where c is the speed of light.

Functions

Oscillating magnetic fields can apply a force (Lorentz force) to charged particles, causing them to move or accelerate.In the process of electromagnetic wave propagation, the change of oscillating magnetic field will produce a new oscillating electric field.

Interaction between oscillating electric field and oscillating magnetic field

Propagation mechanism of electromagnetic wave

In electromagnetic waves, the oscillating electric and magnetic fields are perpendicular to each other and perpendicular to the direction of wave propagation.

The change of oscillating electric field leads to the generation of oscillating magnetic field, and the change of oscillating magnetic field leads to the generation of new oscillating electric field. This interaction allows electromagnetic waves to travel through a vacuum.

Maxwell's equations

Faraday's Law in Maxwell's equations describes how a changing electric field gives rise to a magnetic field:

 ∇×E=− ∂B/∂t

Ampere's Law with Maxwell's Addition in Maxwell's equations describes how a changing magnetic field produces an electric field:

∇×B=μ0ϵ0 ∂E/∂t

Synchronization of oscillating electric field and oscillating magnetic field

In uniform electromagnetic waves, there is a strict synchronization relationship between the oscillating electric field and the oscillating magnetic field:

Phase relationship

In electromagnetic waves, the phase difference between the oscillating electric and magnetic fields is 90∘ or π/2 radians. This means that when the electric field is at its maximum, the magnetic field is exactly zero, and vice versa.

Energy transfer

The energy of electromagnetic wave is transferred alternately between electric field and magnetic field, forming wave propagation.

Sum up

Oscillating electric field and oscillating magnetic field are two basic components of electromagnetic wave, which interact with each other during electromagnetic wave propagation, perpendicular to each other, and perpendicular to the direction of wave propagation. The change of the oscillating electric field leads to the generation of the oscillating magnetic field, and the change of the oscillating magnetic field leads to the generation of a new oscillating electric field, and this interaction enables the electromagnetic wave to propagate in the vacuum. The process can be described in detail by Maxwell equations, and there is a strict phase relationship between the oscillating electric field and the oscillating magnetic field.

Give a tip and encourage the author!
Recommended
Composition and Working Principle of Photovoltaic Power Generation Systems
Composition and Working Principle of Photovoltaic Power Generation Systems
Composition and Working Principle of Photovoltaic (PV) Power Generation SystemsA photovoltaic (PV) power generation system is primarily composed of PV modules, a controller, an inverter, batteries, and other accessories (batteries are not required for grid-connected systems). Based on whether it relies on the public power grid, PV systems are divided into off-grid and grid-connected types. Off-grid systems operate independently without relying on the utility grid. They are equipped with energy-s
Encyclopedia
10/09/2025
How to Maintain a PV Plant? State Grid Answers 8 Common O&M Questions(2)
How to Maintain a PV Plant? State Grid Answers 8 Common O&M Questions(2)
1. On a scorching sunny day, do damaged vulnerable components need to be replaced immediately?Immediate replacement is not recommended. If replacement is necessary, it is advisable to do so in the early morning or late afternoon. You should contact the power station’s operation and maintenance (O&M) personnel promptly, and have professional staff go to the site for replacement.2. To prevent photovoltaic (PV) modules from being hit by heavy objects, can wire mesh protective screens be install
Encyclopedia
09/06/2025
How to Maintain a PV Plant? State Grid Answers 8 Common O&M Questions(1)
How to Maintain a PV Plant? State Grid Answers 8 Common O&M Questions(1)
1. What are the common faults of distributed photovoltaic (PV) power generation systems? What typical problems may occur in various components of the system?Common faults include inverters failing to operate or start due to voltage not reaching the startup set value, and low power generation caused by issues with PV modules or inverters. Typical problems that may occur in system components are burnout of junction boxes and local burnout of PV modules.2. How to handle common faults of distributed
Leon
09/06/2025
Short Circuit vs. Overload: Understanding the Differences and How to Protect Your Power System
Short Circuit vs. Overload: Understanding the Differences and How to Protect Your Power System
One of the main differences between a short circuit and an overload is that a short circuit occurs due to a fault between conductors (line-to-line) or between a conductor and earth (line-to-ground), whereas an overload refers to a situation where equipment draws more current than its rated capacity from the power supply.Other key differences between the two are explained in the comparison chart below.The term "overload" typically refers to a condition in a circuit or connected device. A circuit
Edwiin
08/28/2025
Send inquiry
Download
Get the IEE Business Application
Use the IEE-Business app to find equipment, obtain solutions, connect with experts, and participate in industry collaboration anytime, anywhere—fully supporting the development of your power projects and business.