GREENCOST · Reduced GREENhouse gas emissions and sustainable wastewater treatment by integrated Control and Operational STrategies
7РП — „Хора“ (Действия „Мария Кюри“)
- Период
- 2014-11-07 → 2016-11-06
- Финансиране от ЕС
- 166 336 €
- Участници
- 1
- Схема
- MC-IEF
Линиите свързват координатора с партньорите.
Накратко на български
Интегрирани стратегии за управление на пречистните станции помагат за намаляване на вредните емисии от метан и азотен оксид. Това е важно, защото тези газове допринасят за глобалното затопляне и разрушаването на озоновия слой.
Кратко обяснение, генерирано от езиков модел по текста на CORDIS. Оригиналът е по-долу.
Резултати накратко
Reduced GREENhouse gas emissions and sustainable wastewater treatment by integrated Control and Operational STrategies.
Ensuring the supply of quality water for human consumption, irrigation and industrial operations is commonly regarded as one of the major challenges of this century. As stated by EU water policy “Waters [...] are under increasing pressure from the continuous growth in demand for sufficient quantities of good quality water for all purposes”. Therefore, the number of wastewater treatment plants (WWTP) is expected to keep increasing and to be intentionally designed to match up- and downstream requirements, i.e. to match the characteristics of the influent with the requirements for the effluent. As the number of WWTP increases, so does their environmental impact. The main identified negative impacts of WWTP include sludge disposal, electricity and chemicals consumption for operation and direct greenhouse gas (GHG) emissions. The reduction of GHG emissions has only recently been tackled in the last years due to the difficulty in quantifying and modelling those emissions. It has been estimated that CH4 produced from sewage treatment represented about 5% of the global methane sources, and together with the emissions of N2O this accounts for the 1.6% of GHG emissions in CO2 eq. Besides, N2O has been identified as the most important agent of ozone depletion for the 21st century. Running a WWTP at low GHG emissions is admittedly not an easy task, especially while respecting the effluent limits and keeping the operating costs controlled. This task becomes even more complex given the common structure of incentives and objectives in a WWTP: operators are evaluated for keeping the process running and respecting the effluent limits while, it is the plant manager and/or chief operator who must focus on minimising the operating costs GREENCOST addresses these challenges by using mathematical modelling in order to combine the available information and provide a clear guide for WWTP management. To increase the credibility of this research, we have used as a case-study an innovative process patented at the University of Santiago de Compostela (Integrated system of methanogenic anaerobic reactor and membrane bioreactor for COD and nitrogen removal in wastewater). In order to properly account for the environmental impacts of WWTP operation, a life-cycle assessment of the prototype was carried out. As a result thereof, the global warming potential and eutrophication potential were identified as the main impacts associated with the plant operation. Several objectives were then formulated for the plant operation, i.e. i) minimise the release of nutrients; ii) minimise the carbon footprint and iii) minimise the carbon footprint used to remove nutrients. Through simulation and mathematical programming it was established which operational strategies would lead to optimal performance according to each of the objectives. These operational strategies would involve changes design variables such as the hydraulic residence time (HRT), the anoxic volume of the plant, the solids retention time (SRT), the aeration flowrate and the recirculation rate. Furthermore, the model allowed identifying which microbial groups thrived in each of the operational strategies, thereby providing major insight about the process to the managing operators. As a result, it was demonstrated that mathematical modelling is a well-adapted and useful tool to reduce the environmental impact and especially the global warming potential of complex WWTPs, while maintaining the main function of the plant, i.e. to produce a clean effluent from a wastewater influent. The data obtained from the mathematical analysis were also used to design a fully operational control system which will be eventually installed in the plant prototypes. A major benefit of this controller is that it regulates the plant carbon footprint as well as the effluent quality. Additionally, data analysis tools were prepared in this project to assist the evaluation and benchmarking of energy consumption in real WWTPs. This task was carried out in collaboration with H2020 collaboration and support action ENERWATER. It was seen that the main methods used for benchmarking WWTPs energy consumption could be classified into three classes: normalization, statistical techniques and programming techniques. Advantages and disadvantages were identified for each one including the simplicity of use, clarity of results and robustness to measurement errors. These findings were instrumental in developing the ENERWATER methodology for measurement and reduction of energy expenditure in WWTPs.
Текст от CORDIS, на английски · Данни: CORDIS, © Европейски съюз
Цел на проекта
In order to ensure the supply of quality water for human consumption, irrigation and industrial operations, the number of wastewater treatment plants (WWTP) is expected to increase, simultaneously becoming ever more complex. One of the negative impacts that would involve the proliferation of WWTP is the emission of greenhouse gases, responsible for global warming. The main scientific objective of this project is to produce a generic methodology to design a control structure intended to reduce the emissions of greenhouse gases from wastewater treatment. To demonstrate the methodology, an advanced control system aimed at low greenhouse gases emission will be instrumented in a novel and complex WWTP pilot plant at the hosting group featuring an anaerobic stage, an aerobic/anoxic stage and a filtration stage. To achieve the reduction of greenhouse gas emissions and the control of the plant, the use of incomplete knowledge and models will be considered in the control system. The success of the methodology and control system will be evaluated on the operation of the pilot plant.The reduction of greenhouse gas emissions will be also tackled with an operational approach as a secondary objective. Guidelines and alternatives to run anaerobic-aerobic systems will be explored, in order to improve their efficiency and reducing GHG emissions.This project has also been planned with objectives to enhance the applicant’s career integration. It will serve to complete his training on process control with the practical set-up of a control system and to specialise in an important field as the control and modelling of bioreactors/WWTP. Transversal skills will also be cultivated with responsibility on student supervision, project management and cooperation with the industrial sector helping to achieve a position of professional maturity.
Оригинален текст от CORDIS (на английски).
Участници
- UNIVERSIDAD DE SANTIAGO DE COMPOSTELA · Santiago De CompostelaКоординаторИспания
Връзки
Данни: CORDIS, © Европейски съюз
