Particle Acceleration Device for Contactless Thrust via Universon Flux
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Solution Overview
Problem
Current technologies lack effective means to create a pushing acceleration of material from a distance without contact, and existing theories fail to explain observed anomalies in particle acceleration and cosmological acceleration.
Innovation Solution
The development of a device that artificially creates an anisotropic distribution of quantum carriers, called 'Universons', to generate a thrust acceleration similar to gravitational force, by accelerating particles within the device and emitting a concentrated, unidirectional flux of Universons.
Engineering Contradictions & Design Principles
Engineering Contradiction Analysis
1Force
If conventional propulsion methods are used, then material can be accelerated, but contact and physical interaction are required
Solution Approach 1:
The patent introduces 'Universons' as quantum intermediary entities that mediate the interaction between the device and distant material. These quantum carriers transmit the propelling effect without requiring direct physical contact, allowing acceleration of material at a distance through the mediation of these quantum entities.
Solution Approach 2:
The invention replaces conventional mechanical contact-based propulsion with a quantum field-based mechanism. Instead of using physical mechanical systems that require direct contact, the patent employs quantum carriers (Universons) to transmit propelling effects through space, substituting mechanical interaction with quantum field interaction.
2Force
If particle acceleration is used to generate thrust, then propulsion is achieved, but device complexity increases
Solution Approach 1:
The patent utilizes changes in quantum parameters (energy levels, quantum states) of the Universons to generate thrust. By manipulating the quantum characteristics of these carriers rather than complex mechanical parameters, the device achieves propulsion through fundamental quantum parameter transformations, simplifying the overall mechanism.
Solution Approach 2:
The invention employs phase transitions or quantum state transitions of the Universons to generate the propelling effect. By inducing transitions in the quantum states of these carriers, the device converts quantum energy into mechanical thrust, achieving propulsion through quantum phase changes rather than complex mechanical means.
3Speed
If artificial anisotropy of quantum carriers is created, then self-propulsion is achieved, but energy consumption increases
Solution Approach 1:
The patent creates a dynamic system where the anisotropy of quantum carrier distribution is continuously adjusted and maintained. By making the quantum field distribution dynamic rather than static, the device achieves self-propulsion through time-varying quantum configurations, allowing adaptation and efficiency optimization.
Solution Approach 2:
The invention employs periodic modulation of the quantum carrier distribution to generate thrust. By applying periodic variations to the anisotropic distribution of Universons, the device achieves propulsion through oscillating quantum field configurations, converting periodic quantum energy variations into continuous thrust.
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 solution enables self-propulsion of the device and acceleration of material at a distance, mimicking gravitational effects, with applications in propulsion, energy generation, and various industrial and scientific fields.
Implementation Method 1
The device accelerates particles of matter, such as electrons, protons or ions, by any electromagnetic process
Implementation Method 2
The acceleration created presents all the characteristics of a gravitational interaction
Data Source
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AI summary
The invention relates to a device for propelling particles by means of acceleration, including means for accelerating the particles of matter mainly in one direction. The aforementioned means consist of a power source and a chamber containing the particles of matter to be accelerated, said chamber being powered from a power source.