Magnetic Drive Axes Using Synchronized Gears
Find Innovative SolutionsGenerate Solutions
Solution Overview
Problem
Current energy resources for machine movement are expensive, and renewable energies fail to meet demand, necessitating a new alternative system for driving axes in rotation.
Innovation Solution
A magnetic attraction and repulsion device comprising an engine frame, supports, stability rod, transmission toothed gears, magnetic field synchronization toothed gears, and permanent magnets units carried by rotor and peripheral axes, with control means external to the device, allowing for synchronized rotation and mechanical work production through magnetic attraction and repulsion.
Engineering Contradictions & Design Principles
Engineering Contradiction Analysis
1Use of energy by moving object
If conventional energy resources are used for machine movement, then machines can operate, but energy costs are expensive and renewable energies are insufficient
Solution Approach 1:
The patent replaces conventional mechanical drive systems with a magnetic field-based system. Permanent magnets mounted on the rotor and stator create magnetic attraction and repulsion forces that directly drive rotation, eliminating the need for traditional combustion engines or electric motors with complex winding systems. This substitution reduces energy consumption and costs while providing sufficient driving force.
Solution Approach 2:
The system uses permanent magnets that generate their own magnetic fields without requiring external energy input for field generation. The magnetic fields are inherently self-sustaining, and the system only requires minimal energy for control and synchronization, significantly reducing overall energy consumption compared to systems that require continuous energy input for field generation.
2Power
If permanent magnets are mounted on rotor and peripheral axes with synchronization gears, then magnetic attraction and repulsion produce mechanical work, but the device structure becomes complex
Solution Approach 1:
The system divides the magnetic drive mechanism into modular components: permanent magnets are mounted on separate rotor and peripheral axes, each with its own synchronization gear. This segmentation allows independent optimization of each module and simplifies manufacturing and assembly, reducing overall structural complexity while maintaining high power output through coordinated magnetic interactions.
Solution Approach 2:
The synchronization toothed gears serve multiple functions: they synchronize the rotation speeds of the rotor and peripheral axes, transmit mechanical power, and provide structural support for mounting permanent magnets. This multi-functionality reduces the number of separate components needed, simplifying the overall device structure while maintaining the required magnetic attraction and repulsion forces for mechanical work.
3Speed
If the rotor axis permanent magnet rotates at high speed (at least three times higher than peripheral axis), then magnetic flux variation increases, but synchronization becomes more difficult
Solution Approach 1:
The synchronization toothed gears act as intermediaries between the rotor and peripheral axes. The gear ratio is designed to achieve the required 3:1 speed difference while maintaining positive mechanical engagement for synchronization. This intermediary mechanism ensures reliable speed differentiation without requiring complex electronic control systems, maintaining synchronization reliability through pure mechanical means.
Solution Approach 2:
The system uses parameter changes in the form of gear ratios and magnetic pole configurations to achieve the desired speed relationship. By carefully selecting the number of teeth on synchronization gears and the arrangement of magnetic poles, the system achieves the 3:1 speed ratio while maintaining stable magnetic flux variation patterns that ensure reliable operation despite the high speed differential.
Applied Scientific Principles
This section explains which scientific principles are used to turn an abstract innovation direction into a practical engineering solution.
Function Achieved in This Case
The system reduces energy dependence by generating a driving force efficiently, offering high-speed rotation, ease of manufacture, low production costs, and wide application scope, suitable for various devices including vehicles and electric generators.
Implementation Method 1
produce mechanical work by the magnetic attraction and repulsion
Implementation Method 2
exert a force of repulsion and attraction on one or more magnetic fields of the poles of permanent magnets carried by the rotor axis so as to alternate and produce a variation of the magnetic flux
Data Source
AI summary
The magnetic attraction and repulsion device for driving axes in rotation is a system for producing motive force released through one or two coaxial outlets. The magnetic attraction and repulsion device includes a centrally positioned axis carrying one or various permanent magnets and at least one synchronization toothed gear to form the rotor. The system also consists of other peripheral axes around the rotor, each carrying at least one permanent magnet and at least one synchronization toothed gear. The transmission toothed gears are connected by meshing the synchronization toothed gears of the rotor and of the peripheral axes. All the axes should be in stainless steel. The continuous activity of the system is achieved by the fact that one or various magnetic poles of permanent magnets carried by the rotor axis is directed in alternation between two or four magnetic poles of permanent magnets carried by the peripheral axes.


