Flat Magnet Generator With Metal Plates for Stable Power Output
Find Innovative SolutionsGenerate Solutions
Solution Overview
Problem
Conventional electric generators lack efficiency in harnessing and controlling the flow of mass particles to effectively generate electricity, particularly in devices utilizing magnets with alternating polarities and metal layers.
Innovation Solution
A magnetic device or generator comprising a flat magnet with alternating north and south polarities, aluminum and copper metal plates, and connected wires to capture energy, with optional diodes to enhance voltage and amperage, allowing for series or parallel connections to optimize output.
Engineering Contradictions & Design Principles
Engineering Contradiction Analysis
1Productivity
If conventional electric generators are used, then they can generate electricity, but they lack efficiency in harnessing and controlling the flow of mass particles
Solution Approach 1:
The patent changes the physical parameters of the system by introducing specific metal layers (aluminum, copper) with particular thicknesses and configurations around the magnets. This modifies the electromagnetic field distribution and mass particle flow characteristics to improve energy conversion efficiency. The aluminum layer thickness is specifically controlled to optimize the interaction between the magnetic field and mass particles, reducing energy loss.
Solution Approach 2:
The invention uses composite material structures combining multiple metal layers (aluminum foil, copper plate) with specific magnetic materials. This composite approach creates synergistic effects where each material contributes its unique properties: aluminum provides specific electromagnetic interaction characteristics while copper enhances electrical conductivity. The combination optimizes both mass particle flow control and electrical energy extraction.
2Power
If metal plates are used to capture energy, then voltage and amperage are generated, but metal deterioration occurs over time
Solution Approach 1:
The patent introduces an intermediary protective layer between the metal plates (aluminum, copper) and the external environment. This intermediary layer acts as a barrier that prevents direct exposure to corrosive elements while allowing the metal plates to maintain their electrical function. The protective coating serves as a mediator that preserves the metal plates' integrity and extends their operational lifespan without compromising power generation capability.
3Power
If diodes are added to enhance voltage and amperage, then electricity production is optimized, but device complexity increases
Solution Approach 1:
The patent merges the diode function directly into the existing metal plate structure rather than adding it as a separate component. The diodes are integrated with the aluminum foil and copper plate assembly, combining the rectification function with the electromagnetic energy capture function. This merging approach enhances voltage and amperage while minimizing the increase in device complexity by consolidating multiple functions into a unified structure.
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 solution effectively generates significant voltage and amperage, with the ability to maintain constant electricity production over extended periods, potentially increasing the lifespan of the generator and reducing metal deterioration.
Implementation Method 1
a substantially flat magnet having a series of alternating or varying north and south polarities... the pair of wires capturing energy or power produced by the electric device
Implementation Method 2
a first metal plate formed on the upper surface of the magnet; a second metal plate formed on the lower surface of the magnet
Data Source
AI summary
An electric generator comprises a substantially flat magnet having a series of alternating north and south polarities, the magnet having an upper surface, a lower surface and opposing edges. A first metal plate formed on the upper surface of the magnet, and a second metal plate formed on the lower surface of the magnet. A pair of wires is connected to one of the first or second metal plates and an edge of the magnet, the pair of wires capturing for use energy or power produced by the electric generator.


