Heat exchanger arrangement

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Solution Overview

Problem

Existing heat exchanger arrangements in refrigeration circuits face challenges with effective heat exchange, ease of installation, and longevity, particularly due to corrosion and vibration issues caused by metal-to-metal contact and the need for complex support structures.

Innovation Solution

A heat exchanger arrangement featuring a metallic support structure with non-metallic manifold support portions that prevent direct metal-to-metal contact, allowing for suspension of heat exchangers, reduced contact points, and mechanical decoupling to prevent corrosion and vibrations, facilitating easy installation and condensate drainage.

Engineering Contradictions & Design Principles

VSEngineering Contradiction Analysis

1Strength

If metal-to-metal contact is used between heat exchanger and support structure, then structural strength and stability are improved, but corrosion occurs due to electrochemical effect at metal interfaces

Engineering Contradiction:
Improvestructural strengthVSAvoidcorrosion resistance
Core Design Contradiction:
StrengthVSReliability

Solution Approach 1:

A non-metallic support portion is introduced as an intermediary element between the metallic heat exchanger manifold and the metallic support structure. This intermediary prevents direct metal-to-metal contact, eliminating the electrochemical corrosion pathway while still providing mechanical support and stability to the heat exchanger assembly.

Inventive Principle:
Principle #24Intermediary (Mediator)

2Stability of the object's composition

If heat exchanger is supported from below, then stability is improved, but installation complexity increases and condensate drainage becomes difficult

Engineering Contradiction:
ImprovestabilityVSAvoidinstallation ease
Core Design Contradiction:
Stability of the object's compositionVSEase of operation

Solution Approach 1:

Instead of supporting the heat exchanger from below as in conventional designs, the invention inverts the support approach by suspending the heat exchanger from above using the non-metallic support portions attached to the upper manifold. This inversion simplifies installation, enables natural condensate drainage, and maintains stability.

Inventive Principle:
Principle #13The other way round (Inversion)

3Stability of the object's composition

If multiple contact points are used between heat exchanger and support structure, then structural stability is improved, but vibration damping is reduced and water accumulation areas increase

Engineering Contradiction:
Improvestructural stabilityVSAvoidvibration and water accumulation
Core Design Contradiction:
Stability of the object's compositionVSObject-affected harmful factors

Solution Approach 1:

The non-metallic support portion acts as a mediator that reduces the number of direct contact points between the heat exchanger and support structure. This reduction minimizes vibration transmission and eliminates areas where water could accumulate, while the distributed design of the non-metallic support maintains structural stability.

Inventive Principle:
Principle #24Intermediary (Mediator)

4Manufacturing precision

If rigid metal support structure is used, then manufacturing precision is improved, but thermal dilatation compensation is reduced

Engineering Contradiction:
Improvemanufacturing precisionVSAvoidthermal expansion compensation
Core Design Contradiction:
Manufacturing precisionVSAdaptability or versatility

Solution Approach 1:

The invention changes the material parameter of the support portion from metallic to non-metallic, which has different thermal expansion characteristics. This allows the support structure to compensate for thermal dilatation and deformation of the heat exchanger coils while maintaining manufacturing precision through the rigid metallic main support structure.

Inventive Principle:
Principle #35Parameter changes

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 solution provides effective heat exchange, reduces corrosion and vibration, and simplifies installation by eliminating the need for bottom support, while allowing for thermal compensation and efficient condensate management.

Implementation Method 1

This avoids corrosion caused by the electrochemical effect which is likely to occur at the interface of two (different) metals.

Methodology Applied
Scientific EffectElectrochemical corrosion: Crevice Corrosion

Implementation Method 2

the heat exchanger in particular is suspended from the support structure by means of the manifold support portions

Methodology Applied
Scientific EffectGravity: Gravitation

Implementation Method 3

Exemplary embodiments of the invention also provide a mechanical decoupling between the heat exchanger(s) and the support structure resulting in an effective damping of vibrations.

Methodology Applied
Scientific EffectVibration damping: Damping

Implementation Method 4

They further allow compensating for thermal dilatation and deformation of the heat exchanger coils.

Methodology Applied
Scientific EffectThermal expansion: Thermal Expansion

Implementation Method 5

heat exchangers are used for transferring heat between a circulating refrigerant and the environment

Methodology Applied
Scientific EffectHeat transfer: Convection

Implementation Method 6

heat exchangers are used for transferring heat between a circulating refrigerant and the environment

Methodology Applied
Scientific EffectThermal conduction: Conduction (thermal)

Implementation Method 7

installation of the heat exchanger(s) within the support structure is facilitated. It further facilitates collecting and draining condensate generated on the surface(s) of the heat exchanger(s) in an area below the heat exchanger(s)

Methodology Applied
Scientific EffectGravity-driven drainage: Gravitation

Data Source

PatentUS11015871B2Heat exchanger arrangement
Publication Date: 2021.05.25 CARRIER CORP
  • US11015871B2 patent drawing
  • US11015871B2 patent drawing
  • US11015871B2 patent drawing

AI summary

A heat exchanger arrangement (2) comprises at least one heat exchanger (4) including at least one substantially horizontally oriented manifold (6a, 6b) forming an upper side of the at least one heat exchanger (4), the at least one manifold (6a, 6b) having lateral end portions (8); and a support structure (10) including a main portion comprising, at least partially, a metallic material, and manifold support portions (14) associated to respective lateral end portions (8) of the at least one manifold (6a, 6b). The manifold support portions (14) are made at least partially from a non-metallic material and configured to receive the lateral end portions (8) of the at least one manifold (6a, 6b) for preventing the at least one manifold (6a, 6b) from contacting any metallic portions of the support structure (10).