Multi-Chamber Atomizer With Movable Mouthpiece for Aerosol Variety
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Solution Overview
Problem
Existing atomizers lack diversity in atomization effects, unable to produce aerosols with different flavors and/or concentrations, failing to meet individual user demands.
Innovation Solution
An atomizer with multiple atomization assemblies and a movable mouthpiece connected via a guiding structure, allowing selection and connection with different atomization chambers to generate varied aerosols.
Engineering Contradictions & Design Principles
Engineering Contradiction Analysis
1Adaptability or versatility
If a simple atomizer structure is used, then the device complexity is low, but the atomization effect diversity is limited
Solution Approach 1:
The atomizer is divided into multiple independent atomization assemblies (first atomization assembly, second atomization assembly, etc.), each capable of generating aerosols independently. This segmentation allows each assembly to be optimized for specific atomization effects while the overall system provides diverse atomization options, resolving the contradiction between structure simplicity and atomization diversity.
Solution Approach 2:
The atomizer housing is designed to accommodate multiple types of atomization assemblies with different functions. The housing structure serves as a universal platform that can hold and switch between different atomization assemblies, enabling a single device to provide multiple atomization effects without requiring completely separate devices for each function.
2Adaptability or versatility
If multiple atomization assemblies are added, then the atomization effect diversity increases, but the device complexity increases
Solution Approach 1:
Multiple atomization assemblies are merged within a single atomizer housing structure. The housing integrates support for multiple assemblies, fluid distribution systems, and control mechanisms into one unified structure, reducing the overall complexity that would result from having separate devices for each atomization type.
Solution Approach 2:
The atomizer incorporates a movable mouthpiece or switching mechanism that dynamically connects different atomization assemblies to the user. This dynamic switching capability allows the system to provide multiple atomization effects on demand while maintaining a compact structure, as only one assembly needs to be active at a time through the movable connection mechanism.
3Ease of operation
If a movable mouthpiece with guiding structure is used, then the ease of operation improves, but the device complexity increases
Solution Approach 1:
The movable mouthpiece incorporates a self-guiding mechanism where the movement of the mouthpiece itself activates the switching between atomization assemblies. As the user moves or rotates the mouthpiece, the guiding structure automatically engages or disengages different atomization assemblies without requiring additional control components, making the system self-operating and reducing overall 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
Enhances atomization effect by enabling the production of aerosols with diverse flavors and concentrations, catering to individual user preferences and improving user experience.
Implementation Method 1
The electronic atomization apparatus stores an edible aerosol-generating matrix through an atomizer and atomizes the aerosol-generating matrix into an edible aerosol by heating and atomization
Data Source
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AI summary
An atomizer (1) and electronic atomization apparatus are provided. The electronic atomization apparatus includes the atomizer (1). The atomizer (1) includes a housing (11), atomization assemblies (12) and a mouthpiece (13). The housing (11) is provided at interior with at least two mounting chambers (111) spaced apart from each other. Each atomization assembly (12) is disposed in a respective one of the mounting chambers (111) in one-to-one correspondence. The atomization assemblies (12) are configured to generate aerosols respectively, and are provided at interiors with atomization chambers (121) through which the aerosols flow respectively. The mouthpiece (13) is movably connected to the housing (11) and is formed at interior with an air passage (131) configured to be communicated with the atomization chambers (121) to export the aerosols. The mouthpiece (13) moves relative to the housing (11) through a guiding structure (14), to be switched to connect with each of the atomization assemblies (12), and obtains corresponding aerosols when the air passage (131) is communicated with a corresponding atomization chamber (121).