AI-Monitored Liquid-to-Gas Conversion with Solute Diminished Cell
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Solution Overview
Problem
Existing liquid-to-gas conversion methods are not energy efficient, particularly when dealing with liquids containing unwanted solutes and residues.
Innovation Solution
An energy-efficient liquid-to-gas conversion method using an artificial intelligence image monitoring system with a recycled pressure solute diminished conversion cell, which includes a solute diminish layer and a liquid control sheet stack to filter out unwanted residues and solutes, optimizing the conversion process.
Engineering Contradictions & Design Principles
Engineering Contradiction Analysis
1Use of energy by moving object
If conventional liquid-to-gas conversion is used with conductive materials in direct contact with liquid conversion solution, then gas production is achieved, but energy efficiency deteriorates
Solution Approach 1:
The system segments the liquid-to-gas conversion process into distinct stages: liquid intake, solute removal, conversion, and gas output. The conversion cell is divided into separate chambers (liquid conversion solution chamber, gas chambers) with defined flow paths, allowing each segment to optimize its function and reduce energy waste from unwanted solutes
Solution Approach 2:
The solute diminish layer performs preliminary action by removing unwanted solutes and residues from the liquid conversion solution before it enters the conversion zone. This pre-treatment prevents solutes from interfering with the electrochemical conversion process, thereby improving energy efficiency without compromising gas production
2Device complexity
If liquid conversion solution contains unwanted solutes and residues, then conversion process becomes complicated, but energy consumption increases
Solution Approach 1:
The system extracts unwanted solutes and residues from the liquid conversion solution through the solute diminish layer before conversion. This extraction prevents solutes from participating in the electrochemical reaction, simplifying the conversion process and reducing energy consumption associated with dealing with unwanted byproducts
Solution Approach 2:
The solute diminish layer acts as an intermediary between the liquid intake and the conversion zone. It mediates by selectively removing solutes while allowing the conversion solution to pass through, thereby simplifying the overall process and reducing energy losses without requiring complex treatment systems
3Device complexity
If conventional conversion method is used without solute removal, then device structure is simple, but energy efficiency deteriorates
Solution Approach 1:
The solute diminish layer utilizes porous materials with controlled pore sizes to physically filter and remove unwanted solutes from the liquid conversion solution. This passive filtration mechanism improves energy efficiency without requiring additional energy-intensive equipment, maintaining relatively simple device structure
Solution Approach 2:
The system changes the physical parameters of the liquid conversion solution by removing solutes through the solute diminish layer. This parameter change (reducing solute concentration) occurs passively through physical filtration, improving energy efficiency without adding complex active treatment systems
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 method achieves efficient conversion of liquids to gases while effectively removing unwanted solutes and residues, resulting in improved energy efficiency and gas production.
Implementation Method 1
a solute diminish layer and a liquid control sheet stack to filter out unwanted residues and solutes
Implementation Method 2
Voltage is applied to the anode electron exchanger and the cathode electron exchanger, and the liquid conversion solution is converted into final gases
Data Source
AI summary
Electron exchangers are placed in the conversion cell and divide it into cathode gas chamber, liquid conversion solution chamber filled with a liquid flow controller, and anode gas chamber. Voltage is applied to the electron exchangers to convert the liquid conversion solution to gases, releasing to the gas chambers. Under recycled gas pressure, liquid conversion solution with unwanted solutes is fed through a solute diminish device and a solute diminish layer at the liquid flow controller. Unwanted solutes are blocked by the solute diminish device and the solute diminish layer. Tracks and puncture channels on the liquid flow controller are designed by critical surface calculations and manufactured with a precision technology. A computing engine connected to the cloud carries out artificial intelligence calculations, and controls valves, sensors, cameras, and gas flow devices. In producing the final gases, our method is energy efficient.


