Ralph Lindeboom
Ghent University
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Featured researches published by Ralph Lindeboom.
Environmental Science & Technology | 2012
Ralph Lindeboom; Jan Weijma; Jules B. van Lier
Autogenerative high pressure digestion (AHPD) is a novel configuration of anaerobic digestion, in which micro-organisms produce autogenerated biogas pressures up to 90 bar with >90% CH(4)-content in a single step reactor. (1) The less than 10% CO(2)-content was postulated to be resulting from proportionally more CO(2) dissolution relative to CH(4) at increasing pressure. However, at 90 bar of total pressure Henrys law also predicts dissolution of 81% of produced CH(4). Therefore, in the present research we studied whether CO(2) can be selectively retained in solution at moderately high pressures up to 20 bar, aiming to produce high-calorific biogas with >90% methane. Experiments were performed in an 8 L closed fed-batch pressure digester fed with acetate as the substrate. Experimental results confirmed CH(4) distribution over gas and liquid phase according to Henrys law, but the CO(2)-content of the biogas was only 1-2%, at pH 7, that is, much lower than expected. By varying the ratio between acid neutralizing capacity (ANC) and total inorganic carbon (TIC(produced)) of the substrate between 0 and 1, the biogas CO(2)-content could be controlled independently of pressure. However, by decreasing the ANC relative to the TIC(produced) CO(2) accumulation in the aqueous medium caused acidification to pH 5, but remarkably, acetic acid was still converted into CH(4) at a rate comparable to neutral conditions.
Bioresource Technology | 2016
Joeri Coppens; Ralph Lindeboom; Maarten Muys; Wout Coessens; Abbas Alloul; Ken Meerbergen; Bart Lievens; Peter Clauwaert; Nico Boon; Siegfried Vlaeminck
Urine contains the majority of nutrients in urban wastewaters and is an ideal nutrient recovery target. In this study, stabilization of real undiluted urine through nitrification and subsequent microalgae cultivation were explored as strategy for biological nutrient recovery. A nitrifying inoculum screening revealed a commercial aquaculture inoculum to have the highest halotolerance. This inoculum was compared with municipal activated sludge for the start-up of two nitrification membrane bioreactors. Complete nitrification of undiluted urine was achieved in both systems at a conductivity of 75mScm(-1) and loading rate above 450mgNL(-1)d(-1). The halotolerant inoculum shortened the start-up time with 54%. Nitrite oxidizers showed faster salt adaptation and Nitrobacter spp. became the dominant nitrite oxidizers. Nitrified urine as growth medium for Arthrospira platensis demonstrated superior growth compared to untreated urine and resulted in a high protein content of 62%. This two-stage strategy is therefore a promising approach for biological nutrient recovery.
Water Research | 2018
Jolien De Paepe; Ralph Lindeboom; Marjolein Vanoppen; Kim De Paepe; Dries Demey; Wout Coessens; Brigitte Lamaze; Arne Verliefde; Peter Clauwaert; Siegfried Vlaeminck
Human urine is a valuable resource for nutrient recovery, given its high levels of nitrogen, phosphorus and potassium, but the compositional complexity of urine presents a challenge for an energy-efficient concentration and refinery of nutrients. In this study, a pilot installation combining precipitation, nitrification and electrodialysis (ED), designed for one person equivalent (1.2 Lurine d-1), was continuously operated for ∼7 months. First, NaOH addition yielded calcium and magnesium precipitation, preventing scaling in ED. Second, a moving bed biofilm reactor oxidized organics, preventing downstream biofouling, and yielded complete nitrification on diluted urine (20-40%, i.e. dilution factors 5 and 2.5) at an average loading rate of 215 mg N L-1 d-1. Batch tests demonstrated the halotolerance of the nitrifying community, with nitrification rates not affected up to an electrical conductivity of 40 mS cm-1 and gradually decreasing, yet ongoing, activity up to 96 mS cm-1 at 18% of the maximum rate. Next-generation 16S rRNA gene amplicon sequencing revealed that switching from a synthetic influent to real urine induced a profound shift in microbial community and that the AOB community was dominated by halophilic species closely related to Nitrosomonas aestuarii and Nitrosomonas marina. Third, nitrate, phosphate and potassium in the filtered (0.1 μm) bioreactor effluent were concentrated by factors 4.3, 2.6 and 4.6, respectively, with ED. Doubling the urine concentration from 20% to 40% further increased the ED recovery efficiency by ∼10%. Batch experiments at pH 6, 7 and 8 indicated a more efficient phosphate transport to the concentrate at pH 7. The newly proposed three-stage strategy opens up opportunities for energy- and chemical-efficient nutrient recovery from urine. Precipitation and nitrification enabled the long-term continuous operation of ED on fresh urine requiring minimal maintenance, which has, to the best of our knowledge, never been achieved before.
Scientific Reports | 2018
Ralph Lindeboom; Chiara Ilgrande; José M. Carvajal-Arroyo; Ilse Coninx; Olivier Van Hoey; Hugo Roume; Julia Morozova; Kai M. Udert; Benedikt Sas; Christel Paille; Christophe Lasseur; Vyacheslav Ilyin; Peter Clauwaert; Natalie Leys; Siegfried Vlaeminck
Long-term human Space missions depend on regenerative life support systems (RLSS) to produce food, water and oxygen from waste and metabolic products. Microbial biotechnology is efficient for nitrogen conversion, with nitrate or nitrogen gas as desirable products. A prerequisite to bioreactor operation in Space is the feasibility to reactivate cells exposed to microgravity and radiation. In this study, microorganisms capable of essential nitrogen cycle conversions were sent on a 44-days FOTON-M4 flight to Low Earth Orbit (LEO) and exposed to 10−3–10−4 g (gravitational constant) and 687 ± 170 µGy (Gray) d−1 (20 ± 4 °C), about the double of the radiation prevailing in the International Space Station (ISS). After return to Earth, axenic cultures, defined and reactor communities of ureolytic bacteria, ammonia oxidizing archaea and bacteria, nitrite oxidizing bacteria, denitrifiers and anammox bacteria could all be reactivated. Space exposure generally yielded similar or even higher nitrogen conversion rates as terrestrial preservation at a similar temperature, while terrestrial storage at 4 °C mostly resulted in the highest rates. Refrigerated Space exposure is proposed as a strategy to maximize the reactivation potential. For the first time, the combined potential of ureolysis, nitritation, nitratation, denitrification (nitrate reducing activity) and anammox is demonstrated as key enabler for resource recovery in human Space exploration.
Progress in Aerospace Sciences | 2017
Peter Clauwaert; Maarten Muys; Abbas Alloul; Jolien De Paepe; Amanda Luther; Xiaoyan Sun; Chiara Ilgrande; Marlies Christiaens; Xiaona Hu; Dongdong Zhang; Ralph Lindeboom; Benedikt Sas; Korneel Rabaey; Nico Boon; Frederik Ronsse; Danny Geelen; Siegfried Vlaeminck
Biotechnology for Biofuels | 2016
Ralph Lindeboom; Seung Gu Shin; Jan Weijma; Jules B. van Lier; Caroline M. Plugge
Cospar | 2018
Siegfried Vlaeminck; Ralph Lindeboom; Jolien De Paepe; Dries Demeyere; Marjolein Vanoppen; Alonso Farinas; Wout Coessens; Marlies Christiaens; Chiara Ilgrande; Kim De Paepe; Benedikt Sas; Abbas Alloul; Chris Dotremont; Herman Beckers; P. Magnes; J.-C. Lasserre; Ilse Coninx; Olivier Van Hoey; Julia Morozova; Vyacheslav Ilyin; Natalie Leys; Arne Verliefde; Francesc Gòdia; Christel Paille; Christophe Lasseur; Brigitte Lamaze; Peter Clauwaert
Cospar | 2018
Chiara Ilgrande; Ralph Lindeboom; Felice Mastroleo; Marlies Christiaens; Delphine Prat; Ilse Coninx; Wietse Heylen; Olivier Van Hoey; Hugo Roume; Julia Morozova; Kai M. Udert; Benedikt Sas; Christel Paille; Christophe Lasseur; Vyacheslav Ilyin; Nico Boon; Natalie Leys; Siegfried Vlaeminck; Peter Clauwaert
COSPAR, 42nd Scientific assembly, Abstracts | 2018
Peter Clauwaert; Maarten Muys; Abbas Alloul; Jolien De Paepe; Amanda Luther; Xiaoyan Sun; Chiara Ilgrande; Marlies Christiaens; Xiaona Hu; Dongdong Zhang; Ralph Lindeboom; Benedikt Sas; Korneel Rabaey; Nico Boon; Frederik Ronsse; Danny Geelen; Siegfried Vlaeminck
COSPAR, 42nd Scientific assembly, Abstracts | 2018
Jolien De Paepe; Ralph Lindeboom; Marjolein Vanoppen; Kim De Paepe; Wout Coessens; Dries Demey; Brigitte Lamaze; Arne Verliefde; Peter Clauwaert; Siegfried Vlaeminck