Vibration Ripper Link Structure for All-Direction Vibration Dispersion
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Solution Overview
Problem
Conventional vibration rippers face challenges in preventing vibrations from transferring up and down, front and back, and left and right due to the direct installation of driving motors, leading to increased size and reduced efficiency in vibration isolation.
Innovation Solution
A vibration ripper with a link structure incorporating multiple vibroisolating bodies and a link device that uses elastic members and air cushion systems to absorb and disperse vibrations, featuring a mounting bracket for tool equipment and a configuration that connects the outer body to vibroisolating bodies to minimize shaking and enhance vibration dispersion.
Engineering Contradictions & Design Principles
Engineering Contradiction Analysis
1Power
If a driving motor is directly installed on the vibrator, then the vibration force is generated effectively, but the size of the driving motor must be increased when the scale of the main body is increased, leading to increased overall size
Solution Approach 1:
The patent introduces a link structure with multiple connection members as intermediaries between the driving motor and the vibrating unit. This mediator system transmits the driving force through a chain of connected components (first connection member, second connection member, third connection member) rather than direct connection, allowing for size distribution and vibration isolation while maintaining effective power transmission to the vibrator.
Solution Approach 2:
The patent divides the transmission system into multiple segmented connection members (first, second, and third connection members) rather than using a single rigid connection. Each connection member can be independently sized and positioned, allowing the system to maintain structural integrity while isolating vibrations and managing the overall size of the driving motor separate from the main body scale.
2Device complexity
If a driving motor is directly installed on the vibrator, then the structure is simplified, but it is difficult to prevent all vibrations that occur up and down, front and back, and left and right
Solution Approach 1:
The link structure serves as a vibration-isolating intermediary between the driving motor and the main body. The multiple connection members (first, second, third connection members) act as flexible mediators that can accommodate vibrations in multiple directions (up and down, front and back, left and right) while still transmitting the necessary driving force to the vibrating unit.
Solution Approach 2:
The patent employs a dynamic link structure where connection members can move and flex relative to each other, rather than rigid fixed connections. This dynamic configuration allows the system to adapt to vibrations occurring in multiple directions, absorbing and isolating harmful vibrations while maintaining the necessary mechanical connection for power transmission.
3Power
If the scale of the main body is increased, then the capacity of the drive motor must be increased, but this leads to increased overall size and reduced efficiency
Solution Approach 1:
The patent segments the power transmission system into multiple independent connection members, allowing the drive motor capacity to be scaled independently from the main body size. Each connection member can be optimized for its specific function, enabling the system to handle increased power requirements without proportionally increasing the overall volume of the main body.
Solution Approach 2:
The link structure acts as a mediator that decouples the relationship between drive motor capacity and main body size. The multiple connection members distribute and transmit the increased power capacity through a distributed system rather than requiring a monolithic increase in main body volume, maintaining efficiency while accommodating scaled-up power requirements.
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
Effectively prevents the vibration body from shaking and more efficiently disperses vibrations generated during lifting operations, improving the overall vibration isolation and reducing the impact of vibrations in all directions.
Implementation Method 1
a first elastic member installed between the first outer housing and the first inner housing
Implementation Method 2
a third vibroisolating body installed between an upper surface of the vibration body and the outer body, a fourth vibroisolating body installed between a right side of the vibration body and the outer body
Data Source
AI summary
A vibration ripper having a link structure with an improved vibration isolating function is characterized by including: a first vibroisolating body installed across the vibration body from a left lower portion of the vibration body; and a link device for connecting the outer body and the first vibroisolating body in order to absorb vibrations, wherein the link device is provided with a pair of connection members which are spaced apart from and parallel to each other, a coupling hole for coupling the first vibroisolating body is formed in the left side of the connection members, and a second vibroisolating body coupled to the outer body is integrally installed on the right side of the connection members.


