Photon Modulation Pulse Trains for Energy-Efficient Hormone Regulation
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Solution Overview
Problem
Existing methods fail to efficiently regulate hormone production and behavior in mammals through precise control of photonic signals, leading to suboptimal hormone levels and stress in animals.
Innovation Solution
A system utilizing photon emitters and modulation controllers to generate pulsing photon signals with specific wavelength, intensity, and duration combinations to stimulate opsins in mammals, allowing for precise regulation of hormone levels and behavior.
Engineering Contradictions & Design Principles
Engineering Contradiction Analysis
1Reliability
If conventional continuous lighting is used to regulate hormone production, then hormone regulation effect is achieved, but energy consumption and heat production are excessive
Solution Approach 1:
The patent applies periodic action by using pulsed photon signals instead of continuous lighting. The system delivers photons in controlled pulses with specific durations (0.01 microseconds to 5000 milliseconds) and intervals, achieving hormone regulation through rhythmic stimulation that mimics natural circadian patterns while dramatically reducing overall energy consumption compared to continuous illumination.
Solution Approach 2:
The patent implements dynamics by making the photon emission parameters adjustable and time-dependent. The system dynamically varies photon intensity, wavelength, pulse duration, and frequency based on the specific hormone regulation goals and timing requirements, allowing optimization of both effectiveness and energy efficiency for different physiological conditions.
2Reliability
If conventional continuous lighting is used to regulate hormone production, then hormone regulation effect is achieved, but heat production is excessive
Solution Approach 1:
By using pulsed photon delivery instead of continuous lighting, the system achieves the same hormone regulation effect with significantly reduced cumulative energy input, thereby minimizing heat generation. The periodic on-off cycles allow thermal dissipation between pulses while maintaining physiological effectiveness.
3Use of energy by moving object
If pulsed photon signals are used to reduce energy consumption, then energy efficiency is improved, but precise control of photon parameters is required
Solution Approach 1:
The patent manages control complexity by systematically varying key photon parameters (wavelength, pulse duration, intensity, frequency) within defined ranges optimized for specific hormone regulation outcomes. The system changes these parameters in controlled steps rather than requiring continuous fine-tuning, making the control system more manageable while maintaining energy efficiency and effectiveness.
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 achieves up to 1000% increase or decrease in hormone production and stress reduction, optimizing hormone levels and animal behavior while significantly reducing energy and heat production compared to conventional lighting.
Implementation Method 1
at least one photon emitter; where the at least one photon emitter is configured to produce a photon signal
Data Source
AI summary
Embodiments of the present disclosure provide systems, apparatuses and methods for regulation hormone production in mammals. Examples include but are not limited to by creating electro-magnetic wave emission pulse trains (photons) of individual color spectrums in sufficient intensity to drive hormone production in a mammal, using a characteristic frequency or pattern to minimize the required input power necessary to regulate hormone production, while also allowing for the monitoring of the power consumption and other variables of the system. By controlling the duty cycle, intensity, wavelength band and frequency of photon signals to a mammal, production of specific hormones can be regulated through the cycling between blue, green, yellow, near-red, far-red, infrared and ultra violet photon modulation.


