<?xml version="1.0" encoding="UTF-8"?><ns2:project xmlns:ns1="http://gtr.rcuk.ac.uk/gtr/api" xmlns:ns2="http://gtr.rcuk.ac.uk/gtr/api/project" xmlns:ns3="http://gtr.rcuk.ac.uk/gtr/api/fund" xmlns:ns4="http://gtr.rcuk.ac.uk/gtr/api/person" xmlns:ns5="http://gtr.rcuk.ac.uk/gtr/api/project/outcome" xmlns:ns6="http://gtr.rcuk.ac.uk/gtr/api/organisation" ns1:created="2026-06-03T15:52:43Z" ns1:href="http://gtr.ukri.org/gtr/api/projects/F6C23D4A-C305-4F90-873E-A08956F801DA" ns1:id="F6C23D4A-C305-4F90-873E-A08956F801DA"><ns1:links><ns1:link ns1:href="http://gtr.ukri.org/gtr/api/organisations/6050F982-3735-48E0-A2CE-EC093D1AD4B6" ns1:rel="LEAD_ORG"/><ns1:link ns1:href="http://gtr.ukri.org/gtr/api/organisations/6050F982-3735-48E0-A2CE-EC093D1AD4B6" ns1:rel="PARTICIPANT_ORG"/><ns1:link ns1:href="http://gtr.ukri.org/gtr/api/organisations/0D5B973D-D12B-4108-B017-F0EA0BB53120" ns1:rel="PARTICIPANT_ORG"/><ns1:link ns1:href="http://gtr.ukri.org/gtr/api/organisations/46464025-B015-4EE4-BD77-025D36CAC9C9" ns1:rel="PARTICIPANT_ORG"/><ns1:link ns1:href="http://gtr.ukri.org/gtr/api/organisations/327EF06C-0C29-434A-B7DA-4B2E18965006" ns1:rel="PARTICIPANT_ORG"/><ns1:link ns1:href="http://gtr.ukri.org/gtr/api/organisations/52803F4E-D557-4B2C-93C1-9E56BE30B03A" ns1:rel="PARTICIPANT_ORG"/><ns1:link ns1:href="http://gtr.ukri.org/gtr/api/organisations/ABD9BEBC-5EDF-432E-920D-ACE555E77DFC" ns1:rel="PARTICIPANT_ORG"/><ns1:link ns1:end="2018-03-30T23:00:00Z" ns1:href="http://gtr.ukri.org/gtr/api/funds/300C7DE8-99F7-4575-A097-637C410BB38C" ns1:rel="FUND" ns1:start="2015-09-30T23:00:00Z"/></ns1:links><ns2:identifiers><ns2:identifier ns2:type="RCUK">102371</ns2:identifier></ns2:identifiers><ns2:title>Diffusion Bonded Aero Heat Exchanger</ns2:title><ns2:status>Closed</ns2:status><ns2:grantCategory>Collaborative R&amp;D</ns2:grantCategory><ns2:leadFunder>Innovate UK</ns2:leadFunder><ns2:abstractText>The Diffusion Bonded Aero Heat Exchanger project will bring new technology to heat exchangers for aeronautical applications. A collaboration including Meggitt Control Systems, Heatric, Precision Micro, S&amp;amp;C Thermofluids, Vacuum Furnace Engineering, and The Open University will develop the technologies required to conduct deep chemical etching of aluminium alloy plates, and to solid-state diffusion bond the etched plates to produce a novel heat exchanger. 
Precision Micro will develop deep aluminium etching to produce the required fluid flow patterns and other features; Heatric and The Open University will collaborate to develop industrially viable diffusion bonding methods; S&amp;amp;C Thermofluids will develop modelling and simulation using modern CFD methods for design optimisation; Meggitt Control Systems will design the heat exchanger and validate performance; and Vacuum Furnace Engineering will investigate manufacturing equipment to industrialise the process.</ns2:abstractText></ns2:project>