Silicate Mixture Combustion Accelerator Terahertz Emission
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Solution Overview
Problem
Current terahertz wave applications in various fields, such as combustion improvement, battery life extension, and food processing, do not fully realize their potential effects, and there is a need for a more effective combustion accelerator.
Innovation Solution
A silicate mixture combining silicon compounds and sintered silicate minerals emitting terahertz waves, along with carbon powder, is used to enhance combustion efficiency and other effects by radiating electromagnetic waves with different frequencies, improving the interaction with combustion engines and other materials.
Engineering Contradictions & Design Principles
Engineering Contradiction Analysis
1Productivity
If a single terahertz wave source is used, then the device structure is simple, but the combustion efficiency improvement is insufficient
Solution Approach 1:
The patent combines multiple silicate minerals (zeolite, attapulgite, palygorskite, halloysite, sepiolite) with different terahertz emission characteristics into a single composite mixture, merging their individual effects to achieve superior combustion efficiency improvement compared to single mineral sources
Solution Approach 2:
The invention creates a composite material system consisting of multiple silicate minerals with specific particle size distributions and compositional ratios, where the synergistic interaction between different mineral components produces enhanced terahertz wave emission and combustion acceleration effects
2Use of energy by moving object
If terahertz wave emission is enhanced by increasing mineral content, then the electromagnetic wave emission improves, but the particle size control becomes more difficult
Solution Approach 1:
The patent divides the mineral mixture into distinct particle size segments (D10, D50, D90 parameters) and assigns different minerals to different size ranges, creating a segmented particle size distribution that maintains both high emission capability and controlled morphology
Solution Approach 2:
Different regions of the particle size distribution are assigned different mineral compositions - finer particles contain specific minerals optimized for surface area and emission intensity, while coarser particles provide structural stability, creating local quality variations that optimize overall performance
3Use of energy by moving object
If multiple silicate minerals are mixed in various ratios, then the terahertz wave emission is optimized, but the manufacturing process becomes more complex
Solution Approach 1:
The patent establishes specific parameter ranges for mineral ratios (e.g., zeolite 10-40%, attapulgite 20-50%) and particle size distributions (D10-D90 ratios) that define the optimal formulation space, allowing systematic optimization of terahertz emission while maintaining manufacturability through standardized mixing protocols
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 silicate mixture significantly improves combustion efficiency, extends battery life, reduces electrical resistance, promotes beauty and health, and enhances food taste by optimizing the emission of terahertz waves and other electromagnetic frequencies, demonstrating enhanced performance in various applications.
Implementation Method 1
a silicate mineral emitting ultra far infrared rays of terahertz waves
Data Source
AI summary
A silicate mixture and a combustion accelerator increase combustion efficiency in a combustion engine. The silicate mixture is formed by mixing a first component including one or two or more materials selected from silicon compounds including silicon, glass, and quartz, and a second component including one or two or more materials selected from materials formed by sintering a silicate mineral at a temperature of 1300° C. or higher and 2000° C. or lower and ores emitting a terahertz wave.


