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         "journal": "BIT Numerical Mathematics","publisher":"Springer Netherlands",
         "year": "2015", 
         "url": "http://dx.doi.org/10.1007/s10543-014-0537-6", 
         
         "author": [ 
            "Stefano De Marchi","Gabriele Santin"
         ],
         "authors": [
         	
            	{"first" : "Stefano",	"last" : "De Marchi"},
            	{"first" : "Gabriele",	"last" : "Santin"}
         ],
         "volume": "55","number": "4","pages": "949--966","abstract": "In recent years, in the setting of radial basis function, the study\n\tof approximation algorithms has particularly focused on the construction\n\tof (stable) bases for the associated Hilbert spaces. One of the ways\n\tof describing such spaces and their properties is the study of a\n\tparticular integral operator and its spectrum. We proposed in a recent\n\twork the so-called WSVD basis, which is strictly connected to the\n\teigen-decomposition of this operator and allows to overcome some\n\tproblems related to the stability of the computation of the approximant\n\tfor a wide class of radial kernels. Although effective, this basis\n\tis computationally expensive to compute. In this paper we discuss\n\ta method to improve and compute in a fast way the basis using methods\n\trelated to Krylov subspaces. After reviewing the connections between\n\tthe two bases, we concentrate on the properties of the new one, describing\n\tits behavior by numerical tests.",
         "issn" : "0006-3835",
         
         "file" : ":http\\://www.mathematik.uni-stuttgart.de/fak8/ians/publications/files/DeMSa2015_www_Fast_computation_onb_RBF.pdf:PDF",
         
         "owner" : "santinge",
         
         "language" : "English",
         
         "doi" : "10.1007/s10543-014-0537-6",
         
         "bibtexKey": "demarchi2015computation"

      }
,
      {
         "type" : "Publication",
         "id"   : "https://puma.ub.uni-stuttgart.de/bibtex/27ae233f38758c480db193ed5e7bbf7f7/bastian",         
         "tags" : [
            "(propylene","1,2-propanediol","Bioeconomy,","Biorefinery,","Corynebacterium","Fast","Growth-coupled","Lignocellulose,","Metabolic","Pyrolysis","biotransformation,","engineering,","glutamicum,","glycol),","myown","pyrolysis,","water"
         ],
         
         "intraHash" : "7ae233f38758c480db193ed5e7bbf7f7",
         "interHash" : "dc474d4c00bd416fa2ec00ea366a50da",
         "label" : "Valorization of pyrolysis water: a biorefinery side stream, for 1,2-propanediol production with engineered Corynebacterium glutamicum",
         "user" : "bastian",
         "description" : "",
         "date" : "2018-02-09 13:18:17",
         "changeDate" : "2018-02-09 12:18:56",
         "count" : 5,
         "pub-type": "article",
         "journal": "Biotechnol Biofuels",
         "year": "2017", 
         "url": "", 
         
         "author": [ 
            "Julian Lange","Felix Müller","Kerstin Bernecker","Nicolaus Dahmen","Ralf Takors","Bastian Blombach"
         ],
         "authors": [
         	
            	{"first" : "Julian",	"last" : "Lange"},
            	{"first" : "Felix",	"last" : "Müller"},
            	{"first" : "Kerstin",	"last" : "Bernecker"},
            	{"first" : "Nicolaus",	"last" : "Dahmen"},
            	{"first" : "Ralf",	"last" : "Takors"},
            	{"first" : "Bastian",	"last" : "Blombach"}
         ],
         "volume": "10","pages": "277","abstract": "Background: A future bioeconomy relies on the efficient use of renewable resources for energy and material product supply. In this context, biorefineries have been developed and play a key role in converting lignocellulosic residues. Although a holistic use of the biomass feed is desired, side streams evoke in current biorefinery approaches. To ensure profitability, efficiency, and sustainability of the overall conversion process, a meaningful valorization of these materials is needed. Here, a so far unexploited side stream derived from fast pyrolysis of wheat straw-pyrolysis water-was used for production of 1,2-propanediol in microbial fermentation with engineered Corynebacterium glutamicum.\nResults: A protocol for pretreatment of pyrolysis water was established and enabled growth on its major constituents, acetate and acetol, with rates up to 0.36 ± 0.04 h-1. To convert acetol to 1,2-propanediol, the plasmid pJULgldA expressing the glycerol dehydrogenase from Escherichia coli was introduced into C. glutamicum. 1,2-propanediol was formed in a growth-coupled biotransformation and production was further increased by construction of C. glutamicum Δpqo ΔaceE ΔldhA Δmdh pJULgldA. In a two-phase aerobic/microaerobic fed-batch process with pyrolysis water as substrate, this strain produced 18.3 ± 1.2 mM 1,2-propanediol with a yield of 0.96 ± 0.05 mol 1,2-propanediol per mol acetol and showed an overall volumetric productivity of 1.4 ± 0.1 mmol 1,2-propanediol L-1 h-1.\nConclusions: This study implements microbial fermentation into a biorefinery based on pyrolytic liquefaction of lignocellulosic biomass and accesses a novel value chain by valorizing the side stream pyrolysis water for 1,2-PDO production with engineered C. glutamicum. The established bioprocess operated at maximal product yield and accomplished the so far highest overall volumetric productivity for microbial 1,2-PDO production with an engineered producer strain. Besides, the results highlight the potential of microbial conversion of this biorefinery side stream to other valuable products.",
         "pmid" : "29201141",
         
         "issn" : "1754-6834",
         
         "pmcid" : "PMC5697356",
         
         "shorttitle" : "Valorization of pyrolysis water",
         
         "language" : "eng",
         
         "doi" : "10.1186/s13068-017-0969-8",
         
         "bibtexKey": "lange_valorization_2017"

      }
,
      {
         "type" : "Publication",
         "id"   : "https://puma.ub.uni-stuttgart.de/bibtex/234be0f88e4f683875694694cce681766/isw-bibliothek",         
         "tags" : [
            "ISW","equation","fast","integral","isw-2007","method,","multipole","post-processing,","streamlines"
         ],
         
         "intraHash" : "34be0f88e4f683875694694cce681766",
         "interHash" : "e667eaaddb80b261c1428378c19ba16f",
         "label" : "Efficient Post-Processing with the Integral Equation Method; COMPEL, vol. 26, no. 3, pp. 873-887, 2007: Efficient Post-Processing with the Integral Equation Method; COMPEL, vol. 26, no. 3, pp. 873-887, 2007",
         "user" : "isw-bibliothek",
         "description" : "",
         "date" : "2016-03-03 09:53:12",
         "changeDate" : "2016-03-03 13:23:11",
         "count" : 1,
         "pub-type": "misc",
         
         "year": "2007", 
         "url": "", 
         
         "author": [ 
            "A. Bardakcioglu André Buchau Wolfgang M. Rucker Wolfgang Hafla, Andreas Weinläder"
         ],
         "authors": [
         	
            	{"first" : "A. Bardakcioglu André Buchau Wolfgang M. Rucker",	"last" : "Wolfgang Hafla, Andreas Weinläder"}
         ],
         "pages": "--","abstract": "A handy advantage of the integral equationmethod (IEM) is that it does not require a mesh in the airdomain to solve magnetostatic problems. Field values areobtained after the solution variables have been computed ina so-called post-processing step. Unfortunately, this step canbe very time-consuming. In this paper it is shown how thefast multipole method can be used to speed up thiscomputation. This allows for drawing streamlines since thisoften requires a high number of evaluation points.Therefore, an approach to accurate drawing of streamlinesin combination with specially tailored meshes is presented.",
         "__markedentry" : "[xtl:6]",
         
         "bibtexKey": "WolfgangHafla2007a"

      }
	  
   ]
}
