Resonance Generator Circuit for High-Power Oscillatory Signal Capture
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Solution Overview
Problem
Current resonant circuits in signal capturing systems are unable to convert oscillatory signals, such as electromagnetic waves, into high-power rectified signals, focusing instead on signal quality and noise reduction.
Innovation Solution
A resonance generator system comprising an oscillation capture module, signal amplifier module, phase alignment module, oscillation transmitter module, and receiving antenna, powered by a switching element and power source, which captures and amplifies oscillatory signals, aligns phases, and converts them into high-power rectified signals.
Engineering Contradictions & Design Principles
Engineering Contradiction Analysis
1Measurement precision
If resonant circuits are configured to focus on signal quality enhancement, then signal quality is improved, but power output remains insufficient
Solution Approach 1:
The system divides the signal processing function into separate modules: an oscillation capture module for receiving signals, a signal amplifier module for boosting power, and a phase alignment module for optimizing signal coherence. This segmentation allows each module to specialize in one aspect (quality or power) without compromising the other.
Solution Approach 2:
The patent combines multiple resonant circuits operating at different frequencies into a unified system with a common output stage. By merging the outputs of multiple tuned circuits through the signal amplifier module, the system achieves both high signal quality (from resonance) and high power output (from combined amplification).
2Adaptability or versatility
If multiple resonant circuits operate at different frequencies, then frequency versatility is improved, but phase alignment becomes complex
Solution Approach 1:
The phase alignment module serves as an intermediary between the multiple frequency-tuned resonant circuits and the final output stage. It receives signals from different frequency circuits, synchronizes their phases, and delivers aligned outputs to the amplifier module, thereby simplifying the integration of multi-frequency operations.
Solution Approach 2:
Before signals from different frequency circuits are combined and amplified, the phase alignment module performs preliminary phase synchronization. This preliminary action ensures that all incoming signals are phase-aligned prior to amplification, preventing complexity during the final signal combination stage.
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 effectively captures and converts oscillatory signals into high-power rectified signals, maximizing energy yield and power gain, addressing the limitation of existing technologies in achieving high-power output.
Implementation Method 1
capturing oscillatory signals in the signal input of the system by way of at least one receiving antenna
Implementation Method 2
the signal amplifier module being configured to amplify the signal captured by the oscillation capture module at least once
Implementation Method 3
the phase alignment module comprising at least one arrangement of capacitive and/or inductive elements, said phase alignment module being configured to align the phases of the signal amplified by the signal amplifier module
Implementation Method 4
the phase alignment module comprising at least one arrangement of capacitive and/or inductive elements
Data Source
AI summary
The present invention refers to a resonance generator system (10) capable of being used in signal capturing systems. The resonance generator system (10) comprises a signal input, a signal output, an oscillation capture module (11), a signal amplifier module (12), a phase alignment module (13), an oscillation transmitter module (14), at least one receiving antenna (15) and a power source (16). The present invention also refers to a method for capturing oscillatory signals by way of a resonance generator system (10).


