<?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="2026-06-22T07:57:45Z" ns1:href="http://gtr.ukri.org/gtr/api/projects/2D11155E-BB9F-4D76-AC12-D8B1C9F4EF9D" ns1:id="2D11155E-BB9F-4D76-AC12-D8B1C9F4EF9D"><ns1:links><ns1:link ns1:href="http://gtr.ukri.org/gtr/api/persons/3D111817-55B5-4E4B-9434-4ACA662F54B2" ns1:rel="PM_PER"/><ns1:link ns1:href="http://gtr.ukri.org/gtr/api/organisations/CA9008F6-0B46-40D4-98CD-DFC767CF8F50" ns1:rel="LEAD_ORG"/><ns1:link ns1:href="http://gtr.ukri.org/gtr/api/organisations/C9206FC2-3961-46D6-8438-529EA4CE9D9E" ns1:rel="PARTICIPANT_ORG"/><ns1:link ns1:href="http://gtr.ukri.org/gtr/api/organisations/CA9008F6-0B46-40D4-98CD-DFC767CF8F50" ns1:rel="PARTICIPANT_ORG"/><ns1:link ns1:end="2022-11-30T00:00:00Z" ns1:href="http://gtr.ukri.org/gtr/api/funds/3C497E3F-4E2C-44D5-A98B-52D1B094D1E0" ns1:rel="FUND" ns1:start="2021-05-31T23:00:00Z"/></ns1:links><ns2:identifiers><ns2:identifier ns2:type="RCUK">10004700</ns2:identifier></ns2:identifiers><ns2:title>Development of a highly efficient &amp;amp; commercially available vibro-peening system</ns2:title><ns2:status>Closed</ns2:status><ns2:grantCategory>Collaborative R&amp;D</ns2:grantCategory><ns2:leadFunder>Innovate UK</ns2:leadFunder><ns2:abstractText>Surface engineering plays a critical role in high-value manufacturing by improving product quality, performance, and life-cycle costs. Shot peening is an established surface engineering method used to impart compressive stresses into the surface layer of a part, thereby improving the durability and extending the service life. Unfortunately, shot peening is a line-of-slight process limiting its effectiveness for increasing complex engineering components, particularly those produced by additive manufacturing.

The VibroPeen project a new process will be developed which is cost-effective, flexible, and readily automated, enabling high throughput of parts, including those produced by additive manufacturing, leading to rapid, widespread commercialization within key high-performance engineering sectors (including motorsport, aerospace, space sectors) as well the wider additive manufacturing user community within the next 5 years. This important development will provide a reliable, cost-effective, automated finishing process, which can be applied to a wide range of components, many of which are currently untreated. Extending their service life will yield significant economic benefits to end-users as well as increasing safety and sustainability.

The project addresses the urgent requirement for UK companies to adopt higher productivity, sustainable, knowledge-intensive processes and, moreover, show global technical leadership in a post-Brexit world.</ns2:abstractText></ns2:project>