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17 January 2025 | Story Lunga Luthuli | Photo Supplied
Intsika Food Garden
The newly redeveloped Intsika Garden on the UFS Qwaqwa Campus, designed to promote accessibility, sustainability, and community engagement. The garden's flexible spaces offer opportunities for students to relax, collaborate, and connect with one another.

The UFS Qwaqwa Campus is transforming its landscape to provide more than just a physical connection between buildings. The redevelopment of the garden in front of the Intsika Building marks a shift towards integrating communal spaces that support interaction, inclusivity, and sustainability. 

According to Nico Janse van Rensburg, Senior Director: Facilities Planning at University Estates, the primary aim of the redevelopment is to celebrate the diversity of the university as its ‘greatest asset’ by creating spaces that promote community engagement. “Previously, the garden was underutilised and did not connect properly to the rest of the campus’ circulation network. We identified an opportunity to develop it into a social space where academia and visitors can connect,” Van Rensburg explained.  

Accessibility and sustainability  

The Intsika Garden redevelopment aligns with the broader strategic goals of the institution, particularly in infrastructure planning. The project focuses on making the space universally accessible, ensuring that it caters for people with disabilities while improving overall circulation on the campus. “The development strives to improve the accessibility to different functions on the campus by making the space and circulation routes universally accessible,” said Van Rensburg.  

This initiative is also embedded in the university’s commitment to sustainability, as waterwise plants, artificial grass, and low maintenance finishes have been carefully selected to reduce the environmental footprint. “Artificial grass was used in combination with natural vegetation, which requires minimal water and maintenance,” he added.  

In addition to accessibility, sustainability plays a central role in the redevelopment. The project is designed to contribute to the university’s goal of reducing its carbon footprint by promoting pedestrian-friendly spaces and minimising the reliance on fossil-fuel-driven vehicles.  

Van Rensburg highlighted the efficiency gains in the management of green spaces, noting that the design will reduce the frequency of maintenance, which in turn reduces carbon emissions and energy consumption. “By promoting pedestrian circulation and integration with public transport, the use of vehicles using fossil fuels is minimised,” he said. Walking, he added, is not only a more environmentally friendly option, but also promotes the health and well-being of the campus community.  

Social spaces for collaboration  

The redevelopment introduces six new social nodes across the campus, each offering unique opportunities for student engagement and collaboration. “Smaller pockets have been created, which form part of the larger public space, resulting in a microclimate where people can relax and socialise,” Van Rensburg explained.  

The spaces are designed with flexibility in mind, featuring various seating arrangements, including spaces for meetings and group collaborations. Among the new additions is an amphitheatre, which provides a multifunctional space for lectures, performances, and other activities. “Flexible communal spaces were created for recreational opportunities, resulting in a balanced campus lifestyle,” Van Rensburg added.  

Recognising the increasing reliance on technology, the redevelopment also incorporates features such as charging stations and Wi-Fi connectivity. The spaces are envisioned as ‘information zones’, providing students and staff with convenient access to online resources while they relax or connect outdoors. “With Wi-Fi connectivity, the spaces function as an extension to traditional libraries,” noted Van Rensburg.   

While the Intsika Garden redevelopment is a significant step forward, plans are already underway for further infrastructure and green initiatives. “The soft landscaping and signage contracts were awarded for the Intsika Garden,” Van Rensburg confirmed. He also revealed that much-needed renovations to the front of the Intsika Building are in the pipeline, with a contractor soon to be appointed for the construction work. The planned upgrade will align with the garden’s aesthetics by drawing inspiration from indigenous art and culture, creating a cohesive identity for the campus. 

As these developments progress into 2025, the Qwaqwa Campus will continue to evolve, offering students and staff spaces that not only enhance their academic experience, but also contribute to a more sustainable and connected environment. 

News Archive

Researcher part of project aimed at producing third-generation biofuels from microalgae in Germany
2016-05-09

Description: Novagreen bioreactor  Tags: Novagreen bioreactor

Some of the researchers and technicians among the tubes of the Novagreen bioreactor (Prof Grobbelaar on left)

A researcher from the University of the Free State (UFS), Prof Johan Grobbelaar, was invited to join a group of scientists recently at the Institute for Bio- and Geo-Sciences of the Research Centre Jülich, in Germany, where microalgae are used for lipid (oil) production, and then converted to kerosene for the aviation industry.

The project is probably the first of its kind to address bio-fuel production from microalgae on such a large scale.  

“The potential of algae as a fuel source is undisputed, because it was these photoautotrophic micro-organisms that were fixing sunlight energy into lipids for millions of years, generating the petroleum reserves that modern human civilisation uses today.  However, these reserves are finite, so the challenge is marrying biology with technology to produce economically-competitive fuels without harming the environment and compromising our food security.  The fundamental ability that microalgae have to produce energy-rich biomass from CO2, nutrients, and sunlight through photosynthesis for biofuels, is commonly referred to as the Third-Generation Biofuels (3G),” said Prof Grobbelaar.

The key compounds used for bio-diesel and kerosene production are the lipids and, more particularly, the triacylglyserols commonly referred to as TAGs.  These lipids, once extracted, need to be trans-esterified for biodiesel, while a further “cracking” step is required to produce kerosene.  Microalgae can store energy as lipids and/or carbohydrates. However, for biofuels, microalgae with high TAG contents are required.  A number of such algae have been isolated, and lipid contents of up to 60% have been achieved.

According to Prof Grobbelaar, the challenge is large-scale, high-volume production, since it is easy to manipulate growth conditions in the laboratory for experimental purposes.  

The AUFWIND project (AUFWIND, a German term for up-current, or new impetus) in Germany consists of three different commercially-available photobioreactor types, which are being compared for lipid production.

Description: Lipid rich chlorella Tags: Lipid rich chlorella

Manipulated Chlorella with high lipid contents (yellow) in the Novagreen bioreactor

The photobioreactors each occupies 500 m2 of land surface area, are situated next to one another, and can be monitored continuously.  The three systems are from Novagreen, IGV, and Phytolutions.  The Novagreen photobioreactor is housed in a glass house, and consist of interconnected vertical plastic tubes roughly 150 mm in diameter. The Phytolutions system is outdoors, and consists of curtains of vertical plastic tubes with a diameter of about 90 mm.  The most ambitious photobioreactor is from IGV, and consists of horizontally-layered nets housed in a plastic growth hall, where the algae are sprayed over the nets, and allowed to grow while dripping from one net to the next.

Prof Grobbelaar’s main task was to manipulate growth conditions in such a way that the microalgae converted their stored energy into lipids, and to establish protocols to run the various photobioreactors. This was accomplished in just over two months of intensive experimentation, and included modifications to the designs of the photobioreactors, the microalgal strain selection, and the replacement of the nutrient broth with a so-called balanced one.

Prof Grobbelaar has no illusions regarding the economic feasibility of the project.  However, with continued research, optimisation, and utilisation of waste resources, it is highly likely that the first long-haul flights using microalgal-derived kerosene will be possible in the not-too-distant future.

Prof Grobbelaar from the Department of Plant Sciences, although partly retired, still serves on the editorial boards of several journals. He is also involved with the examining of PhDs, many of them from abroad.  In addition, he assisted the Technology Innovation Agency of South Africa in the formulation of an algae-biotechnology and training centre.  “The chances are good that such a centre will be established in Upington, in the Northern Cape,” Prof Grobbelaar said.

 

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