Frequency Generator Apparatus for Cellular Imbalance Detection
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Solution Overview
Problem
Existing medical devices for detecting physiological parameters are either simple and limited in scope, like electrocardiographs and electroencephalographs, or complex and costly, requiring skilled personnel and advanced technologies such as magnetic resonance or ultrasound.
Innovation Solution
A frequency analysis method and apparatus using low-intensity electric signals applied through electrodes to detect resonance peaks in the human body, combining the advantages of electrode-based devices with high-frequency electromagnetic equipment without their limitations, allowing for comprehensive physiological parameter detection and non-invasive treatment.
Engineering Contradictions & Design Principles
Engineering Contradiction Analysis
1Measurement precision
If advanced electromagnetic equipment (magnetic resonance, ultrasound, X-rays) is used to detect physiological parameters, then measurement precision and information completeness are improved, but device complexity and cost increase significantly
Solution Approach 1:
The patent replaces complex electromagnetic equipment (magnetic resonance, ultrasound, X-ray machines) with a simplified electrical measurement system using electrodes and frequency analysis. Instead of using heavy mechanical and electromagnetic apparatus, the invention uses electrical signals applied through electrodes to detect physiological parameters through frequency response analysis, thereby achieving accurate measurement while dramatically reducing device complexity.
2Loss of information
If advanced electromagnetic equipment is used for comprehensive physiological detection, then information completeness is improved, but the requirement for skilled personnel and operational complexity worsen
Solution Approach 1:
The patent replaces complex electromagnetic equipment (magnetic resonance, ultrasound, X-ray machines) with a simplified electrical measurement system using electrodes and frequency analysis. Instead of using heavy mechanical and electromagnetic apparatus, the invention uses electrical signals applied through electrodes to detect physiological parameters through frequency response analysis, thereby achieving accurate measurement while dramatically reducing device complexity.
Solution Approach 2:
The system automatically performs frequency sweeps across multiple channels and analytically determines resonance peaks without requiring manual interpretation by skilled personnel. The apparatus self-calibrates and self-analyzes the frequency response data, reducing the need for specialized operational knowledge while maintaining comprehensive physiological information detection.
3Device complexity
If electrode-based analogue instruments are used for physiological detection, then device simplicity and cost-effectiveness are improved, but measurement precision and information scope are limited
Solution Approach 1:
The patent applies the principle of resonance by using frequency sweeps to excite the body's natural oscillations. By analyzing the frequency response and identifying resonance peaks, the system achieves high measurement precision for detecting physiological imbalances. This vibrational/resonance-based approach transforms a simple electrode setup into a high-precision diagnostic tool capable of detecting subtle cellular imbalances that analogue instruments cannot detect.
4Loss of information
If frequency analysis with multiple channels is performed to achieve comprehensive detection, then measurement precision and information completeness are improved, but device complexity and computational requirements worsen
Solution Approach 1:
The patent divides the frequency analysis into multiple independent channels (e.g., Channel 1: 0-1000 Hz, Channel 2: 1000-10000 Hz, Channel 3: 10000-40000 Hz), each handling a specific frequency range. This segmentation allows comprehensive frequency coverage while keeping each channel's processing relatively simple. The system independently analyzes each channel's frequency response and then integrates the results to identify resonance peaks across the full spectrum, thereby achieving complete physiological information detection without overwhelming computational complexity.
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
Enables the detection of a wide range of physiological parameters beyond specific organs, providing diagnostic information and promoting cellular re-balancing for improved patient conditions with a simple, cost-effective, and non-invasive approach.
Implementation Method 1
detecting any resonance peaks in discordance with the normal electric frequency absorption of the human body
Data Source
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AI summary
Described herein is an apparatus for detecting parameters of the human body, which comprises electrodes (22, 23, 24, 25) intended to be applied to a person's body, or part thereof, in order to transmit electric signals. The apparatus comprises a pair of independent channels (C1, C2) powered by two separate and mutually isolated power supply units, for supplying power to the electrodes (22, 23, 24, 25) with alternating electric signals with frequencies in the range of 0.1 Hz to 40 MHz. Each channel (C1, C2) comprises a respective printed circuit board (100, 200) operating as a frequency generator with integrated oscilloscope, connected to an isolator (101, 201). The apparatus can perform frequency analyses on the human body, or part thereof, through the application of a low-intensity electric signal, which can determine any resonance peaks in discordance with the normal electric frequency absorption of the human body. Based on the frequency analysis, the same apparatus can also be used for applying stimulation cycles by using the separate channels (C1, C2).