Wednesday, October 24, 2018

Fatbergs: the beasts beneath

On 13th October 2018, STREAM researchers Natalia Jawiarczyk (Cohort IX) and Thomas Collin (Cohort VII) participated in the IF Science and Ideas Festival in Oxford to engage the public with their research relating to fatbergs. Their hands-on exhibit, entitled ‘Fatbergs: the beasts beneath' took the festival attendees on a fatberg journey, from how fatbergs form to what can be done to prevent them and how their research is solving the fatberg problem.

STREAM researchers at IF Science and Ideas Festival Oxford


What are fatbergs?

Fatberg deposit in sewer

Fatbergs are solid, fatty deposits that form in the sewers a result of fats, oils and greases (FOG) and non-biodegradable substances entering the sewage system. The worst culprits are cooking fats/oils, leftover food, supposedly ‘flushable’ toilet wipes and wet wipes. Fatbergs block sewage pipes and cause floods, resulting in huge problems for water companies and the public alike. A recent example of this is the infamous Whitechapel fatberg found in the London sewers. This fatberg weighed the equivalent of 11 double decker buses and was more than 250 metres long, a small sample of which Natalia and Thomas brought along to the festival to show members of the public. Currently, water companies deal with fatbergs by regular cleaning of the sewers and by monitoring water networks; however, fatbergs are able to build up quickly. Once they are found, water companies must spend a lot of time and effort digging the fatberg out, which is then disposed of in landfill. Fatbergs are an expensive problem for water companies and pose health concerns to the general public if they are not detected and removed quickly enough to prevent flooding.

How you can fight back


There are a number of things that everybody can do to help the UK’s growing fatberg problem. Here are a few key tips to help fight fatbergs:

·     Scrape leftover food into the bin rather than into the sink
·     Use strainers to collect any food waste in the sink and empty this into the bin
·     Collect cooking oils, fats and greases and dispose of in general waste – do not pour these down the sink
·     Wipe dishes with kitchen roll to keep oils and greases out of your dirty dishwater
·     Dispose of wet wipes, plasters, condoms, feminine hygiene items, face wipes, toilet wipes, cotton wool, nappies and kitchen roll in bins, even if the packaging says they are flushable


Tips to fight fatbergs

Fighting fatbergs through bio-augmentation


STREAM researcher Natalia Jawiarczyk, sponsored by Cranfield University and Severn Trent Water, is looking at the use of bio-augmentation to both prevent fatbergs from forming and break them down once they begin to form. Bio-augmentation is the addition of a bacteria culture to sewage pipes, which perform two processes: inhibition (preventing deposits from forming) and degradation (breaking down deposits). Natalia is working to improve the efficiency of these processes, by looking at both the composition of fatbergs and the sewer microclimate (e.g. temperature and pH) and how these affect the inhibition and degradation processes performed by bacterial cultures. She is looking at this first in the laboratory and then at a larger scale, using Cranfield University’s Pilot Hall. 

STREAM researcher Natalia Jawiarczyk's work 


Using fatbergs to produce energy


STREAM researcher Thomas Collin, sponsored by Cranfield University and Thames Water, is looking at using anaerobic co-digestion to use the fatbergs that are removed from our sewers to produce energy. This prevents them from entering landfill and adding to our growing waste problem, while providing an alternative source of energy and fuel. In anaerobic digestion, organic material, including sludge waste from wastewater treatment plants, is added to a digestion tank. In this digestion tank, the organic material is digested by bacteria in the absence of oxygen to produce biogas and co-products. The biogas can be used as fuel, electricity production and for heating, while co-products include compost, nutrients and fertiliser. Thomas is looking at adding fats, oils and greases to this process. So far, Thomas has found that fats, oils and greases have a high energy content: 1kg of fats, oils and greases has the same energy content as 14 cans of cola or 88 hamburgers. His research means that, in the future, we may be able to turn the fatberg problem into something more positive for society, while recovering value for water companies. 

 
STREAM researcher Thomas Collin's work


The public engagement experience



STREAM researchers engaging the public with their work
Aligned with the water industry insights blog, the STREAM IDC is committed to engaging the public in water industry issues and water research. Scientific research is not just for scientists as the aim of the work is to solve real-world problems, problems that are relevant to everyone.

Science and Technology Impact Officer at Cranfield University, Zoe Griffiths, says,
“engaging people in scientific research is critical. It ensures that research is relevant to public needs and ensures that people are at the forefront of scientific research. Science should not just be left to scientists; everyone can make a real difference”
The STREAM IDC encourages its researchers to get involved in public engagement and outreach to aid their professional and personal development. STREAM IDC Programme Director Paul Jeffrey says,
“Learning to communicate your work effectively and to different audiences is important to be successful in any career. By offering opportunities for our researchers to gain these vital communication skills, we are preparing them to be successful water professionals”

Further information on STREAM IDC outreach activities can be found here.

Wednesday, October 3, 2018

STREAM alumnus wins gold at IWA World Congress

The International Water Association (IWA) World Water Congress is, arguably, the biggest event in the water sector’s calendar. Attracting water professionals from over 100 countries, the event connects people working in the water sector from all over the world to share knowledge about the latest trends, innovative technologies and leading practices. A highlight of the programme is the biennial IWA Project Innovation Awards, which recognise and promote excellence and innovation in water management, research and technology. The 2018 IWA Project Innovation Award winners, announced on 17thSeptember, included Severn Trent Water, who received a gold award for their Smart Abstraction Management under the innovation category of Smart Systems and the Digital Water Economy. This award-winning work is based on the research of STREAM alumnus (and current Severn Trent employee) Alemayehu Shitaye Asfaw’s, whose EngD project developed a real-time surface water abstraction management tool. 

Severn Trent Water winning Gold Award for Smart Systems and the Digital Water Economy at  the IWA World Congress

The project

The focus of Alemayehu’s EngD project was to develop new approaches to inform and aid the management of surface water abstraction, with a specific focus on tackling the management challenges associated with increasing demand and diffuse pollution. The project combined the development of a real-time water resources management model with the development of a pollutant prediction model. The project was undertaken at the University of Sheffield, sponsored by Severn Trent Water

Abstraction management: water resources

Variability in the distribution of water spatially and over time poses challenges when supplying drinking water to meet rising demands while protecting the environment. These challenges are particularly potent in the face of a rapidly increasing population and climate change. Surface water is the primary source of drinking water in the UK, supplying two-thirds of the drinking water in England and Wales, which puts these water resources under pressure. UK environmental regulators are working with the water industry to implement environmental improvement schemes to ensure that UK water courses meet national and European targets. Therefore, the careful management of these water resources is necessary to enable their efficient and sustainable utilisation. Current abstraction management tools and decision-making processes are not supported by real-time data on river flow levels, which affect the daily availability of water, and so opportunities to abstract more water are missed. The use of real-time river flow data will also reduce the need to trigger drought management actions, improving the resilience of water resource production systems.

Abstraction management: diffuse pollution

Pesticide use in agriculture
Diffuse pollutants, such as pesticides from farming, are a significant threat to the quality of water resources, with ever increasing levels being found in raw water sources. The cost of water pollution is estimated at £700million to £1.3 billion per year. Water pollution increases the industry’s carbon footprint due to the need to further treat water to meet drinking water standards. Metaldehyde, a pesticide used globally in agriculture, is a pollutant of particular concern due to recently observed high levels. Therefore, a model capable of predicting short-term fluctuations in metaldehyde concentrations in surface waters will enable informed decision-making to improve water quality.

Outcomes

Alemayehu’s work integrated these two aspects through a combined modelling approach. The project was able to show that an integrated modelling framework can be used to develop a flow forecast model that is suitable for surface water abstraction management purposes. Such schemes can play a significant role in recharging reservoir levels during dry periods, which increases the resilience of drinking water supplies. The pollutant model was effective in predicting variability in pollutant concentrations for operational decision-making purposes. Importantly, the predictive model allows abstraction to be suspended up to 48 hours in advance of high metaldehyde concentrations occurring. 

Winning the IWA Smart Systems and Digital Water Economy Gold Award highlights the incredible potential of Alemayehu’s STREAM project for solving water industry issues through environmentally friendly methods. The implementation of his EngD work is ongoing, showing how a STREAM EngD can really make a difference in practice.