Electromagnetic Toroidal Impeller Asymmetric Resonant Cavity Thrust
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Solution Overview
Problem
Current transportation methods rely on fossil fuel conversion to mechanical energy, resulting in significant pollution and environmental harm, with existing electromagnetic thrust technologies like the EmDrive focusing on specific field concentration and geometry, which limits their effectiveness.
Innovation Solution
The Cannae Drive employs an asymmetric resonant cavity with electromagnetic waves to generate thrust by interacting with excess electrical charges and currents, optimizing the Lorentz force equation through precise geometry and polarization, achieving high resonance and thrust levels.
Engineering Contradictions & Design Principles
Engineering Contradiction Analysis
1Force
If fossil fuel energy is converted to mechanical energy for transportation, then driving force is generated, but pollution and environmental harm increase
Solution Approach 1:
The patent replaces the mechanical energy conversion system (fossil fuel combustion) with an electromagnetic field-based propulsion system. The electromagnetic thruster generates thrust directly through electromagnetic interactions between resonant waves and electrical charges, eliminating the need for mechanical combustion engines and thereby reducing pollution.
Solution Approach 2:
The invention changes the fundamental energy conversion parameter from chemical-to-mechanical energy conversion to electromagnetic-to-mechanical energy conversion. By operating in the electromagnetic domain with resonant frequencies and electromagnetic fields, the system achieves propulsion without the harmful byproducts of fossil fuel combustion.
2Use of energy by moving object
If electromagnetic waves are used in a resonant cavity to generate thrust, then energy conversion efficiency improves, but device complexity increases
Solution Approach 1:
The electromagnetic thruster is divided into distinct functional segments: the resonant cavity for wave generation, the force ring for field concentration, and the thrust generation zone. This segmentation allows each component to be optimized independently for its specific function, improving overall energy conversion efficiency while managing complexity through modular design.
Solution Approach 2:
The patent employs an asymmetric resonant cavity geometry rather than a symmetric design. This asymmetry creates specific electromagnetic field patterns that concentrate energy more effectively in certain regions, improving thrust generation efficiency. The asymmetric shape also helps in directing the electromagnetic waves to interact optimally with the force ring.
3Ease of manufacture
If a symmetric resonant cavity is used with electromagnetic waves, then manufacturing is simplified, but thrust generation effectiveness is reduced
Solution Approach 1:
The patent deliberately uses an asymmetric resonant cavity design to generate effective thrust. The asymmetric geometry creates unbalanced electromagnetic field distributions that produce net force in a specific direction. This asymmetry is essential for thrust generation, as symmetric cavities would produce balanced fields that cancel out and generate no net thrust.
4Force
If electromagnetic fields are concentrated in specific geometries, then thrust generation improves, but manufacturing precision requirements increase
Solution Approach 1:
The patent applies local quality by concentrating electromagnetic fields in specific localized regions through the force ring structure. The force ring is positioned at a specific location within the asymmetric cavity where the electromagnetic field intensity is highest. This localized field concentration maximizes thrust generation at the critical interaction point while allowing other parts of the device to have more relaxed manufacturing tolerances.
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 allows for efficient energy conversion from electromagnetic waves to mechanical force, achieving significant thrust values with minimal energy loss and optimized resonance, potentially reducing environmental impact by providing a cleaner propulsion method.
Implementation Method 1
The system generates thrust by creating specific interactions between resonant electromagnetic waves and devices that transport excess electrical charges and/or devices that transport electrical currents
Implementation Method 2
The explanation for why the thrust occurs is the effect known as radiation pressure, an effect that is felt on the surface where the wave is reflected
Implementation Method 3
In the geometry proposed in the present invention, by supplying the necessary power, it is possible to achieve high levels of resonance that can provide significant thrust values
Data Source
AI summary
The invention relates to an electromagnetic toroidal impeller in the field of physics applied to electromagnetism. The invention comprises a cylindrical arrangement of superconducting antennas (9) which are separated by a dielectric (8) over a superconducting cylindrical plate (7) and exposed in a resonant cavity (6). The radiation in the cavity is incident on the force ring having a superconducting surface (4) containing ferrite (11), the coolant (5) introduced through the pipes (1) flowing through the toroidal interior of same. The force received in the ring (4) is transmitted via the supporting members (3) to the support (2). The cavity is thermally insulated with insulation (12) and is cooled with the liquid (10) through the pipes (14). The invention provides a device capable of generating driving force from the conversion of the energy available in electromagnetic waves that are contained in a resonant cavity.


