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27 June 2018 Photo Supplied
Kovsie netball out to break drought
Former South African Under-21 representative in her fourth year as Kovsie player, Lefébre Rademan, is the new Kovsie captain for the upcoming national student champions

The Kovsie netball team is out to claim back its title at the University Sport South Africa (USSA) tournament in 2018. 

The tournament takes place from 2 to 6 July 2018 on the Bloemfontein Campus of the University of the Free State (UFS). It has been exactly 20 years since the event was last staged in the City of Roses. The last time the Kovsies were able to win the trophy was in 2013. Tanya Mostert, Kovsie netball goal defender who will play her sixth USSA tournament this coming July, is the only remaining member from the previous squad.

The Kovsie netball squad field a strong team comprising 12 players who have represented the province, and they are also considered the strongest contenders in the upcoming championships. The Free State Crinums are the only university team to field 12 players with senior provincial experience. Khanyisa Chawane, who was named Player of the Tournament at the conclusion of the Premier League, recovered sufficiently from her ankle injury and has been appointed as the team’s vice-captain.

Taking the reigns as the new Kovsie netball team captain is the versatile Lefébre Rademan.
 
The six teams in the Super league will compete from Monday 2 July to Wednesday 4 July, with the semi-final and final matches following on Thursday 5 July and Friday 6 July 2018.

The following players will form the team for the USSA tournament: Alicia Puren, Ané Retief, Gertriana Retief, Jana Scholtz, Khanyisa Chawane, Khomotso Mamburu, Lefébre Rademan (captain), Marétha van Heerden, Marna Claassens, Meagan Roux, Sikholiwe Mdletshe, Tanya Mostert.

News Archive

UFS research could light up South African homes
2016-01-21

Reitumetse Maloa, postgraduate student and researcher at the UFS Department of Microbial, Biochemical and Food Biotechnology, is using her research to provide solutions to the energy crises in South Africa.

A young researcher at the university is searching for the solution to South Africa’s energy and electricity problems from a rather unlikely source: cow dung.

“Cow dung could help us power South Africa,” explains Reitumetse Maloa, postgraduate student and researcher at the UFS Department of Microbial, Biochemical and Food Biotechnology.

Reitumetse’s research is trying to understand how the bacteria works that is responsible for producing biogas.

“Biogas can be used for cooking, heating, lighting and powering generators and turbines to make electricity. The remaining liquid effluent can fertilise crops, as it is high in nitrogen, phosphorus and potassium.”

By using cow dung and food waste to produce biogas, we will be able to lower greenhouse gases.

Biogas is produced in a digester - an oxygen-free space in which bacteria break down or digest organic material fed into the system. This process naturally produces biogas, which is mainly a mixture of methane and carbon dioxide.

“Many countries, such as Germany and the United States, have begun generating electricity from cow dung and food waste, through a process known as biogas production. In South Africa, a number of industries, including waste-water treatment facilities and farms, have caught on to this technology, using it to generate heat and to power machines.”

Until recently the world has relied heavily on electricity derived from fossil fuels such as coal, natural gas and oil. Once these fuels have been extracted from underground reservoirs, they are treated or cleaned, transported to power plants and transformed into the electricity that will reach your house. Fossil fuels are considered a ‘dirty’ energy source which gives off greenhouse gases when burned. Those gases are the major contributing factor to climate change.

“We know very little about the interaction of the bacteria inside the biogas digester. To use biogas as a sustainable fuel source, we need to understand and describe the bacteria population and growth dynamics inside the digester to produce biogas optimally. Currently we are testing a variety of feedstock, including bran, maize and molasses, for biogas production potential, as well as optimising the conditions leading to maximum biogas production. We are also exploring the potential to use the effluent as fertiliser on local farms. The ultimate goal is to have biogas systems that will supply our university with clean energy.”


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