SMA STACK STRUCTURE FOR IMPROVED HEAT TRANSFER AND STRUCTUAL STABILITY
20250369427 ยท 2025-12-04
Inventors
Cpc classification
F03G7/0635
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
The present application relates to a superelastic SMA structure, with enhanced power density and compressive stability, comprising two or more connected plate sections to form an overall substantially closed perimeter, wherein the structure comprises an opening positioned in the centre of the structure, and wherein the connected plate sections are dimensioned with a circular symmetry to allow a stacking assembly, and wherein each section includes an array of hollow perforated cells formed between one or more thin vertical walls of a thickness within a predefined range of values, and wherein at least one perforated cell defines a fluid passageway within a predefined range of hydraulic diameter values.
Claims
1. A superelastic SMA structure, comprising: two or more connected plate sections to form an overall substantially closed perimeter; wherein the structure comprises an opening positioned in the centre of the structure;, and wherein the connected plate sections are dimensioned with a circular symmetry to allow a stacking assembly; wherein each section includes an array of hollow perforated cells formed between one or more thin vertical walls of a thickness within a predefined range of values; and wherein at least one perforated cell defines a fluid passageway within a predefined range of hydraulic diameter values.
2. The superelastic SMA structure of claim 1, wherein the thickness of the one or more vertical walls is selected from the range of between 0.75 millimeters (mm) and 1.25 mm.
3. The superelastic SMA structure of claim 1, wherein the thickness of the one or more vertical walls is 1 mm.
4. The superelastic SMA structure of claim 1, wherein a hydraulic diameter of the fluid passageway for one or more cells is selected from the range of between 2 mm and 3 mm.
5. The superelastic SMA structure of claim 1, wherein the opening is dimensioned to accommodate a support element.
6. The superelastic SMA structure of claim 5, wherein the support element comprises a central pillar and dimensioned to support a plurality of superelastic SMA structures.
7. The superelastic SMA structure of claim 1, wherein each section has a substantially hexagonal structure shape or a circular shape.
8. The superelastic SMA structure of claim 1, wherein each hollow perforated cell has a substantially hexagonal honeycomb shape or a circular shape.
9. The superelastic SMA structure of claim 1, wherein the number of connected sections comprises three or six sections.
10. The superelastic SMA structure of claim 1, wherein the connected sections are dimensioned with such a pattern to allow full or partial nesting during manufacture from larger sheets.
11. The superelastic SMA structure of claim 1, wherein each section is configured to interlock with an adjacent section to define the superelastic SMA structure.
12. The superelastic SMA structure of claim 1, wherein a tensioning element is positioned around the outer perimeter of the structure.
13. The superelastic SMA structure of claim 1, wherein a tensioning element is positioned around the inner perimeter of the structure opening.
14. The superelastic SMA structure of claim 1, wherein a tensioning element is positioned around the exterior perimeter of the structure opening, and/or an array of individual tension elements so arranged around the exterior of the stack positioned to reduce SMA loading during operation.
15. The superelastic SMA structure of claim 1, wherein one or more tensioning elements are positioned internally and externally to reduce SMA loading during operation.
16. The superelastic SMA structure of claim 1, wherein the tensioning element is thermally insulated from, or insulated with respect to, the SMA structure.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0029] The invention will be more clearly understood from the following description of an embodiment thereof, given by way of example only, with reference to the accompanying drawings, in which:-
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DETAILED DESCRIPTION OF THE DRAWINGS
[0041] A SMA plate stack application is disclosed in PCT patent publication number WO2021/219667, assigned to Exergyn Ltd. It is desirable that each plate has a superelastic SMA structure with enhanced power density and compressive strength. In practice this means a compromise has to be reached in improving plate design.
[0042] According to a preferred embodiment of the invention a superelastic SMA structure with enhanced power density and compressive stability is provided.
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[0048] The SMA wall thickness in the honeycomb-type structures above has been selected at 1 mm overall as this provides an optimum balance between rate of heat transfer from the SMA and compressive stability, where the structure is stable enough to allow sufficient stack height to be practically useful, so that a plurality of the SMA structures can be stacked together. An ideal/optimised range of 0.75 mm-1.25 mm can be selected to implement superelastic SMA structure with enhanced power density and compressive stability. It will be appreciated that by going smaller than this range value and keeping stack stability means that small fluid channels must be used, and these create significant pressure drop in the system and so reduce efficiency due to pumping losses during operation.
[0049] The hydraulic diameter affects heat transfer rate and pressure drop during operation. The hydraulic diameter varies with internal passage geometry. The example given in
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[0053] It will be appreciated that in the context of the present invention the following definitions apply throughout this specification: [0054] Segmenta section of a plate that is so arranged to allow efficient cutting, nesting or stacking of two or more segments to then bring together and form a plate of planar form. [0055] Plateindividual SMA element with one or more fluid passageways created to allow fluid flow through the plates to facilitate heat transfer. [0056] Stack-plurality of SMA plates, comprising a minimum of two plates which are assembled together. [0057] Housingcontainment for a stack of plates. Provides thermal isolation and fluid inlet/outlet. [0058] Corecan consist of a single stack or multiple stacks which are mechanically aligned axially in series and loaded. [0059] FluidThe heat transfer medium used to accept or reject heat into and out of the SMA plates during operation. This fluid can be a gas, liquid, or in a transitionary phase change state between solid-liquid or liquid-gas. [0060] Wall thicknessthe total distance from one fluid channel to an adjacent fluid channel, normal to the wall. This is in effect twice the material mid-point to fluid distance. [0061] Hydraulic diameterUsed for non-circular fluid channels and can be defined as four times the cross sectional area divided by the wetted perimeter of the channel.
[0062] In the specification the terms comprise, comprises, comprised and comprising or any variation thereof and the terms include, includes, included and including or any variation thereof are considered to be totally interchangeable and they should all be afforded the widest possible interpretation and vice versa.
[0063] The invention is not limited to the embodiments hereinbefore described but may be varied in both construction and detail.