Waveform Disk-Pack Turbine for Ambient-Temperature Power Generation
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Solution Overview
Problem
Existing technologies lack an efficient method for processing fluids to dissociate components and generate power, particularly in a system that can operate at ambient temperatures with minimal input energy.
Innovation Solution
The system employs rotating hyperbolic waveform structures and dynamics to process fluids, incorporating a housing with a vortex chamber, waveform disks, a coil array, a rotating magnet disk, and a drive system to create a magnetic field and induce current flow.
Engineering Contradictions & Design Principles
Engineering Contradiction Analysis
1Power
If conventional fluid processing methods are used, then power generation efficiency is improved, but operating temperature must be elevated and input energy increases
Solution Approach 1:
The patent replaces conventional thermal-mechanical power generation systems with a magnetic field-based system. A coil array generates a magnetic field that interacts with a rotating magnet disk to produce rotational motion of waveform disks, eliminating the need for high-temperature thermal processes while maintaining power generation capability
Solution Approach 2:
The invention changes the fundamental operating parameters from thermal energy input to magnetic field energy input. By using electromagnetic induction and magnetic field interaction instead of thermal expansion and combustion, the system achieves power generation at ambient temperatures with reduced input energy requirements
2Quantity of substance
If conventional fluid dissociation methods are used, then components are separated, but energy consumption increases
Solution Approach 1:
The patent replaces thermal dissociation methods with magnetic field-based fluid processing. The rotating waveform disks create controlled fluid dynamics and pressure variations that enable component separation without requiring high energy input, using magnetic coupling instead of thermal energy
Solution Approach 2:
The magnetic field acts as an intermediary between the coil array and the fluid processing mechanism. The magnetic field transfers energy to rotate the magnet disk and waveform disks, enabling fluid dissociation and separation through magnetic coupling rather than direct thermal or mechanical action
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
This approach enables efficient power generation and fluid dissociation, producing strong field energy at ambient temperatures with relatively minimal input energy, while also achieving separation of gases and other energetic applications.
Implementation Method 1
at least one coil array in magnetic communication with the plurality of waveform disks
Implementation Method 2
induce current flow through a plurality of coils residing in a magnetic field created between the waveform disks and at least one magnet platform rotating through magnetic coupling with the waveform disks
Implementation Method 3
a vortex chamber in fluid communication with the at least one feed inlet
Data Source
AI summary
A disk-pack turbine includes two disks each having a waveform surface and a second surface, the waveform surfaces face each other and have an axially centered waveform pattern, at least one disk includes an axially centered opening passing from the second surface to the waveform surface, said disks define an expansion chamber including the at least one opening and a disk chamber between said disks from the expansion chamber to a periphery of said disks. The waveform pattern includes at least one waveform that has an amplitude that varies in a radial direction and said waveform pattern maintains or increases a number of peaks for each level of waveforms progressing out from the inner most waveform about said axial center to said periphery where the increase is by a multiplier of 2 to 8. The second surfaces have a slight parabolic shape or are flat.


