Integrated Water Cooling Radiator With Symmetric Dual Pump Cavities

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Solution Overview

Problem

Existing water cooling radiator structures face issues with symmetry, complexity, poor adaptability, and assembly convenience due to protruding components and complex waterway designs, leading to inefficient heat dissipation and fluid circulation.

Innovation Solution

An integrated water cooling radiator structure is designed with a housing divided into two independent pump cavities, featuring dual water pumps, a magnetic induction coil-driven impeller, and a split diversion channel system, allowing for modular assembly and improved fluid flow stability.

Engineering Contradictions & Design Principles

VSEngineering Contradiction Analysis

1Volume of moving object

If a protruding water pump design is used to accommodate a larger water pump in the housing, then the water pump volume is increased, but the symmetry is poor and aesthetics are compromised

Engineering Contradiction:
Improvewater pump volumeVSAvoidsymmetry
Core Design Contradiction:
Volume of moving objectVSShape

Solution Approach 1:

The housing is divided into two independent pump cavities (first pump cavity and second pump cavity) that are mutually symmetric. Each cavity houses a water pump, creating a balanced dual-pump configuration that maintains symmetry while accommodating sufficient pump volume for effective fluid circulation.

Inventive Principle:
Principle #1Segmentation

2Temperature

If the water pipe has a longer stroke to achieve heat dissipation, then heat dissipation capability is improved, but the efficiency of heat dissipation is affected

Engineering Contradiction:
Improveheat dissipation capabilityVSAvoidheat dissipation efficiency
Core Design Contradiction:
TemperatureVSProductivity

Solution Approach 1:

The patent designs continuous water channels that provide uninterrupted fluid flow paths between the pump cavities and heat dissipation areas. This continuous action ensures efficient heat transfer without flow interruptions, maintaining high heat dissipation efficiency while achieving adequate heat dissipation capability.

Inventive Principle:
Principle #20Continuity of useful action

3Ease of operation

If complex waterway design is used to enable fluid circulation, then fluid circulation is achieved, but the device complexity increases and adaptability decreases

Engineering Contradiction:
Improvefluid circulationVSAvoidwaterway design complexity
Core Design Contradiction:
Ease of operationVSDevice complexity

Solution Approach 1:

The water channels are designed with universal connectivity, where the first and second water channels can be independently configured to serve multiple functions: fluid circulation, heat dissipation, and adaptability to different cooling requirements. This multi-functional design simplifies the overall system while maintaining effective fluid circulation.

Inventive Principle:
Principle #6Universality (Multi-functionality)

4Ease of operation

If protruding structures are used to enable fluid circulation, then fluid circulation is achieved, but symmetry is poor and aesthetics are compromised

Engineering Contradiction:
Improvefluid circulationVSAvoidsymmetry
Core Design Contradiction:
Ease of operationVSShape

Solution Approach 1:

The patent actually applies symmetry rather than asymmetry - the housing features two symmetric pump cavities with water pumps positioned symmetrically on either side. This symmetric arrangement achieves effective fluid circulation through both channels while maintaining aesthetic symmetry, eliminating the need for protruding asymmetric structures.

Inventive Principle:
Principle #4Asymmetry

5Ease of manufacture

If integrated water channels are provided for water tank and water pump, then assembly is simplified, but each structure cannot be assembled as a separate module

Engineering Contradiction:
Improveassembly simplicityVSAvoidmodular assembly capability
Core Design Contradiction:
Ease of manufactureVSWeight of moving object

Solution Approach 1:

The patent integrates water channels within the housing structure, forming a unified integrated design where the channels are built into the housing rather than being separate modules. This integration simplifies manufacturing and assembly while the housing itself serves as the containing structure for all components.

Inventive Principle:
Principle #1Segmentation

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 design enhances fluid flow rate and stability, supports simultaneous heat dissipation of multiple elements, and simplifies assembly with better sealing and reduced assembly processes, while maintaining a stable flow rate and improved aesthetics.

Implementation Method 1

the limit section is provided with a magnetic induction coil that fits the rotor structure, and the magnetic induction coil, when energized, can drive the impeller to rotate

Methodology Applied
Scientific EffectMagnetic induction: Electromagnetic Induction

Implementation Method 2

The water cooling system of computer refers to a physical circulation system that utilizes the high specific heat capacity of water in a relatively enclosed computer host to dissipate heat from easily heating modules

Methodology Applied
Scientific EffectSpecific heat capacity:

Implementation Method 3

a heat dissipation fin set between the front baffle and the rear baffle, and a heat dissipation water pipe

Methodology Applied
Scientific EffectThermal conduction: Conduction (thermal)

Implementation Method 4

a water cooling system that utilizes the high specific heat capacity of water in a relatively enclosed computer host to dissipate heat

Methodology Applied
Scientific EffectConvection: Convection

Data Source

PatentUS12495519B2Integrated water cooling radiator structure
Publication Date: 2025.12.09 JIETE TECHNOLOGY CO LTD
  • US12495519B2 patent drawing
  • US12495519B2 patent drawing
  • US12495519B2 patent drawing

AI summary

The present invention discloses an integrated water cooling radiator structure, including a housing, a water pump, and a water cooling device, the housing includes a front housing and a rear housing that form a hollow cavity, the hollow cavity is provided with a partition and is divided into one or a plurality of independent pump cavities, the pump cavity is provided with an outlet and an inlet, and the water pump is provided with a pump cavity, the front housing is provided with a limit housing in the direction towards the rear housing, and the limit housing is recessed in the hollow cavity, an impeller is provided between the inner wall of the limit housing and the inner wall of the rear housing, and the impeller is provided with a rotor structure extending into the pivot section.