TY - CHAP A1 - Chico Caminos, Ricardo Alexander A1 - Schmitz, Pascal A1 - Atti, Vikrama A1 - Mahdi, Zahra A1 - Teixeira Boura, Cristiano José A1 - Sattler, Johannes Christoph A1 - Herrmann, Ulf A1 - Hilger, Patrick A1 - Dieckmann, Simon T1 - Development of a micro heliostat and optical qualification assessment with a 3D laser scanning method T2 - SOLARPACES 2020 N2 - The Solar-Institut Jülich (SIJ) and the companies Hilger GmbH and Heliokon GmbH from Germany have developed a small-scale cost-effective heliostat, called “micro heliostat”. Micro heliostats can be deployed in small-scale concentrated solar power (CSP) plants to concentrate the sun's radiation for electricity generation, space or domestic water heating or industrial process heat. In contrast to conventional heliostats, the special feature of a micro heliostat is that it consists of dozens of parallel-moving, interconnected, rotatable mirror facets. The mirror facets array is fixed inside a box-shaped module and is protected from weathering and wind forces by a transparent glass cover. The choice of the building materials for the box, tracking mechanism and mirrors is largely dependent on the selected production process and the intended application of the micro heliostat. Special attention was paid to the material of the tracking mechanism as this has a direct influence on the accuracy of the micro heliostat. The choice of materials for the mirror support structure and the tracking mechanism is made in favor of plastic molded parts. A qualification assessment method has been developed by the SIJ in which a 3D laser scanner is used in combination with a coordinate measuring machine (CMM). For the validation of this assessment method, a single mirror facet was scanned and the slope deviation was computed. KW - Concentrated solar power KW - Electricity generation KW - Measuring instruments KW - Heliostats KW - Global change Y1 - 2022 SN - 978-0-7354-4195-8 U6 - https://doi.org/10.1063/5.0086262 SN - 1551-7616 (online) SN - 0094-243X (print) N1 - SOLARPACES 2020: 26th International Conference on Concentrating Solar Power and Chemical Energy Systems, 28 September–2 October 2020, Freiburg, Germany IS - 2445 / 1 PB - AIP conference proceedings / American Institute of Physics CY - Melville, NY ER - TY - CHAP A1 - Buck, R. A1 - Wurmhöringer, K. A1 - Lehle, R. A1 - Pfahl, A. A1 - Göttsche, Joachim A1 - Meyr, T. T1 - Development of a 30m2 heliostat with hydraulic drive T2 - SolarPACES 2010 : the CSP Conference: electricity, fuels and clean water from concentrated solar energy ; 21 to 24 September 2010, Perpignan, France Y1 - 2010 SP - 74 EP - 75 PB - Soc. OSC CY - Saint Maur ER - TY - JOUR A1 - Buck, H. A1 - Schwarzer, Klemens A1 - Meliß, Michael A1 - Faber, Christian T1 - Aus- und Weiterbildung am Solar-Institut Jülich JF - Energiewirtschaftliche Tagesfragen. 44 (1994), H. 9 Y1 - 1994 SN - 0720-6240 SP - 65 EP - 68 ER - TY - JOUR A1 - Buck, H. A1 - Faber, Christian A1 - Meliß, Michael A1 - Schwarzer, Klemens T1 - Aus- und Weiterbildung am Solar-Institut Jülich JF - Energie für die Zukunft : 28. Juni bis 1. Juli 1994 ; [Tagungsbericht 2] / 9. Internationales Sonnenforum '94. [Hrsg. Deutsche Gesellschaft für Sonnenenergie e.V. - DGS. Red. A. Hohmann ; H. H. Hohmann]. - (Internationales Sonnenforum ; 9,2) Y1 - 1995 N1 - Internationales Sonnenforum <9, 1994, Stuttgart> ; Deutsche Gesellschaft für Sonnenenergie SP - 1779 EP - 1785 PB - DGS-Sonnenenergie CY - München ER - TY - CHAP A1 - Breitbach, Gerd A1 - Alexopoulos, Spiros A1 - May, Martin A1 - Teixeira Boura, Cristiano José A1 - Herrmann, Ulf T1 - Analysis of volumetric solar radiation absorbers made of wire meshes T2 - AIP Conference Proceedings Y1 - 2019 U6 - https://doi.org/10.1063/1.5117521 SN - 0094243X VL - 2126 SP - 030009-1 EP - 030009-6 ER - TY - CHAP A1 - Breitbach, Gerd A1 - Alexopoulos, Spiros A1 - Hoffschmidt, Bernhard T1 - Fluid flow in porous ceramic multichannel crossflower filter modules Y1 - 2007 PB - COMSOL Inc. CY - Burlington, Mass. ER - TY - RPRT A1 - Breitbach, Gerd T1 - Endbericht für das Projekt FilterCaps : Vorhabensbezeichnung: Entwicklung eines Wärmespeichers für strömungsrichtungsinvertierende Lüftungssysteme mit integrierter Filterwirkung : Förderkennzeichen: 1752X06 Y1 - 2009 ER - TY - BOOK A1 - Bostel, Jörg A1 - Kleemann, Manfred A1 - Meliß, Michael A1 - Sharan, H. N. T1 - Die Nutzung neuer und erneuerbarer Energiequellen in Entwicklungsländern. Bd. 1: Auswertung der Länderpapiere für die Konferenz der Vereinten Nationen über neue und erneuerbare Energiequellen, Nairobi 1981. - (Aktuelle Beiträge zur Energiediskussion ; Nr. 7,1. Spezielle Berichte der Kernforschungsanlage Jülich ; 177,1. Y1 - 1981 PB - Zentralbibliothek der Kernforschungsanlage Jülich CY - Jülich ER - TY - BOOK A1 - Bonnet, Dieter A1 - Feustel-Büechl, Jörg E. A1 - Fritzsche, Albert A1 - Gieseler, Gernot A1 - Kappelmeyer, Oskar A1 - Koske, Peter H. A1 - Meliß, Michael A1 - Rickus, Edmund A1 - Rohde, F. G. T1 - Nutzung regenerativer Energie. (Handbuchreihe Energie. Bd. 13) Y1 - 1988 SN - 3-87806-110-2 PB - Resch; TÜV Rheinland CY - Köln ER - TY - CHAP A1 - Blanke, Tobias A1 - Schmidt, Katharina S. A1 - Göttsche, Joachim A1 - Döring, Bernd A1 - Frisch, Jérôme A1 - van Treeck, Christoph ED - Weidlich, Anke ED - Neumann, Dirk ED - Gust, Gunther ED - Staudt, Philipp ED - Schäfer, Mirko T1 - Time series aggregation for energy system design: review and extension of modelling seasonal storages T2 - Energy Informatics N2 - Using optimization to design a renewable energy system has become a computationally demanding task as the high temporal fluctuations of demand and supply arise within the considered time series. The aggregation of typical operation periods has become a popular method to reduce effort. These operation periods are modelled independently and cannot interact in most cases. Consequently, seasonal storage is not reproducible. This inability can lead to a significant error, especially for energy systems with a high share of fluctuating renewable energy. The previous paper, “Time series aggregation for energy system design: Modeling seasonal storage”, has developed a seasonal storage model to address this issue. Simultaneously, the paper “Optimal design of multi-energy systems with seasonal storage” has developed a different approach. This paper aims to review these models and extend the first model. The extension is a mathematical reformulation to decrease the number of variables and constraints. Furthermore, it aims to reduce the calculation time while achieving the same results. KW - Energy system KW - Renewable energy KW - Mixed integer linear programming (MILP) KW - Typical periods KW - Time-series aggregation Y1 - 2022 U6 - https://doi.org/10.1186/s42162-022-00208-5 SN - 2520-8942 N1 - 11th DACH+ Conference on Energy Informatics, 15-16 September 2022, Freiburg, Germany VL - 5 IS - 1, Article number: 17 PB - Springer Nature ER -