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04 April 2018 Photo SASCOC
Large Kovsie contingent at Commonwealth Games
Elmé de Villiers (badminton) is one of several former or current Kovsies who will be in action at the Commonwealth Games between 5 and 15 April.

The University of the Free State (UFS) will be well represented at the Commonwealth Games with 11 current or former Kovsies participating in Australia.

The Games take place from 5 to 15 April on the Gold Coast. For many of the sporting codes, this is the second biggest sporting stage after the Olympic Games.

The eight athletes are Ts’epang Sello, Juanelie Meijer and Karla Pretorius (current students) and former Kovsies Juanré Jenkinson, Elmé de Villiers, Nicole Walraven, Maryka Holtzhausen and Philip Snyman. 

In addition, three members of the management team, Neil Powell, Kate Roberts and Jan Wahl, all previously studied at the UFS. 

Holtzhausen and Powell at their third Games 
Sello will be competing in the 800m in the colours of Lesotho, her country of birth. 

Pretorius is the vice-captain of the netball team and Holtzhausen was the former captain before her serious injury in 2016. Pretorius is doing a postgraduate in Dietetics and Holtzhausen is a contract worker at Kovsiesport. She will be competing at her third Games. 
De Villiers is a member of the South African badminton team and Walraven is with the Protea hockey team. Snyman will captain the rugby team.

Meijer (long jump) and Jenkinson (shot put) will battle in the para-athletic programme.

Powell will coach the Blitzbokke who are the defending champions from 2014. It will be his second Games in charge. He also won the bronze medal as a player in 2010. 

Roberts is the manager of the triathlon team and a participant in 2006. Wahl will act as the manager of the para-athletics team.

News Archive

UFS researcher engineers metal surfaces
2015-03-03

Shaun Cronjé, a PhD student, in a surface characterisation laboratory at the UFS.

It is well known that the surface of a component is much more vulnerable to damage than the interior, and that surface-originated degradation such as wear, corrosion, and fracture will eventually destroy the component.

“Engineering the surface, based on scientific knowledge, is essential to control these damaging processes. It also creates electronic and geometric structures on the surface which opens up a world of new devices, especially considering the properties on the nano-length scale,” said Prof Wiets Roos from the Department of Physics at the University of the Free State (UFS).

At elevated temperatures, atoms are more mobile and can migrate to grain boundaries and surfaces, which have a major influence on material properties. The redistribution of solute atoms between the surface and the bulk of the material is known as segregation. Knowing the behaviour of segregation at the surface/environment interface can be very useful in the development of new materials. As an example materials can be improved higher efficiency and lower fuel consumption, thus reducing environmental pollution.

The main aims of Prof Roos’s research are to understand surface segregation, use it as a tool, and contribute to the various surface engineering fields.

The surface characterisation laboratories at the UFS are well equipped to do high temperature segregation measurements, and have already proven a success, not only in the ability to prepare the specimens for characterisation, but also in developing models and procedures to quantify the segregation parameters.

The most recent results have demonstrated the importance of taking evaporation into account during quantification.” This has laid the foundation for future studies by installing the necessary hardware in a surface characterisation spectrometer, establishing experimental protocols, and improving an existing model (developed in this laboratory) for simulating segregation profiles,” said Prof Roos.

Segregation parameters allow the researcher to predict and utilise the surface concentration behaviour as a function of temperature and time. “This not only contributes to fields involving corrosion, oxidation, sintering, wear, chemical poisoning, powder metallurgy, and lubrication but adds to the development of self-healing devices,” said Prof Roos.

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