Cleaner head for a vacuum cleaning appliance
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Solution Overview
Problem
Cordless vacuum cleaners face a design challenge in maintaining effective pickup performance while reducing energy consumption, as high power settings compromise battery run time.
Innovation Solution
A cleaner head design featuring a rotatable cylindrical agitator with alternating rows of different materials (e.g., nylon and carbon fibre) arranged in helical directions to ensure a single point of contact with the floor, guiding airflow and maintaining consistent friction, thereby improving dirt and dust pickup across various surfaces.
Engineering Contradictions & Design Principles
Engineering Contradiction Analysis
1Productivity
If high power settings are used to improve pickup performance, then dirt removal effectiveness is improved, but battery run time is severely compromised
Solution Approach 1:
The agitator is segmented into alternating rows of stiff and compliant materials, creating distinct functional zones that work together to achieve effective dirt removal while reducing overall energy consumption
Solution Approach 2:
Different regions of the agitator have different material properties - stiff sections for aggressive dirt dislodgement and compliant sections for gentle surface contact, optimizing performance across various floor types without requiring high power throughout
2Productivity
If stiff bristles are used to aggressively engage the floor surface, then dirt scraping and striking capability is improved, but energy consumption increases
Solution Approach 1:
The agitator circumference is divided into alternating segments of stiff and compliant materials, allowing aggressive dirt removal only where necessary while reducing energy consumption in compliant sections
Solution Approach 2:
The agitator combines dissimilar materials (stiff bristles and compliant rubber or thermoplastic elastomer) in a single composite structure, leveraging the advantages of both material types to achieve effective cleaning with reduced power requirements
3Ease of manufacture
If a single material is used for the agitator, then manufacturing simplicity is maintained, but versatility across different floor surfaces is limited
Solution Approach 1:
The agitator is segmented into alternating rows of different materials, allowing each segment to be optimized for specific floor types while maintaining a relatively simple overall manufacturing process
Solution Approach 2:
The use of composite material construction with alternating stiff and compliant sections enables the agitator to adapt to various floor surfaces (hard floors, carpets, rugs) while remaining manufacturable through established processes
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
This design enhances the versatility and effectiveness of the cleaner head by maintaining pickup performance across different surfaces while balancing the loading on the motor, reducing energy consumption and extending battery life.
Implementation Method 1
a first helical agitator row that extends around the cylindrical body in a first direction from a first edge of the cylindrical body towards a centre of the cylindrical body, and a second helical agitator row that extends around the cylindrical body in a second direction from the first edge of the cylindrical body towards the centre of the cylindrical body
Implementation Method 2
maintaining consistent friction, thereby improving dirt and dust pickup across various surfaces
Data Source
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AI summary
This invention concerns a cleaner head (10) for a vacuum cleaning appliance, the cleaner head (10) comprising a main body (12) supporting an agitator (36). The agitator (36) comprises a rotatable cylindrical body (42) that bears an elongate agitator formation (44) for engaging a floor surface as the cylindrical body (42) rotates. The elongate agitator formation (44) includes a first agitator row (46) extending around the cylindrical body (42) from a respective first edge L of the cylindrical body (42) towards its centre C in a first helical direction and a second agitator row (47) extending around the cylindrical body (42) from a respective second edge R of the cylindrical body (42) towards its centre C in a second helical direction that is counter to the first helical direction, wherein the first agitator row (46) comprises agitators of a first material and wherein the second agitator row (47) comprises agitators of a second material that is different to the first material.