Produktionsmanagement
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Due to shorter product life cycles the number of production ramp-ups is increasing, while customers have a soaring demand for more variable and individualized products. In the future, optimizing the production ramp-up will become an important differentiation criterion for companies. Considering the whole supply chain in the ramp-up process becomes therefore indispensable. This is what the presented research in this paper concentrates on. The intention of the research project is to develop a model of a supply chain in the production ramp-up stage. Through this model, approaches for optimizing the production ramp-up in the whole supply chain will be derived.
Further the research project concentrates on measuring the production ramp-up performance in the supply chain, showing the impact on economic and financial measures. The result of this research is an approach to align the tasks and objectives of Supply Chain Management with the tasks and objectives of ramp-up management in order to optimize the whole supply chain in the ramp-up stage.
Rebound Logistics
(2009)
Today, the flow of product returns is becoming a significant concern for many manufacturing companies. In this research area, three fundamental aspects of product returns need to be taken into consideration: First, companies become increasingly aware of the fact that product returns may offer an opportunity for enormous profit generation and for improving the competitive advantage of a manufacturing company when taking into account the accretive value of the products and technology. Second, the impact of green laws, legislative provisions and the increasing impact of a sustainable production management due to marketing aspects force companies to design and manage the reverse supply chain actively. Third, the importance of managing the reverse supply chains effectively will be enforced by the currently volatile economic climate. This paper outlines first results of designing a methodological framework for implementing an integrative reverse supply chain for manufacturing companies based on a type-specific Reverse Supply Chain Reference Model.
Within each of the three design fields numerous design elements exist (e.g. degree of centralization, number of warehouses etc. in the field network design). Hence, the interdependencies of all design elements have to be analyzed to allow optimal decisions for the design of an efficient and effective spare parts logistics. Nevertheless, the complexity among all interdependencies can hardly be understood. Therefore it is necessary to reduce the complexity of design decisions by focusing on the most important design elements according to the logistical requirements of different spare part categories. In order to achieve this goal, a classification of spare parts in terms of their key characteristics has been developed. For different spare part categories only a smaller set of design elements and their interdependencies has to be taken into account. The reduced number of key design elements per spare part category can be analyzed and understood in depth. Thus a Systems Dynamics approach is used to allow a better configuration of network design, cooperation concepts and inventory management in spare parts Supply Chains on the basis of specific logistics requirements of different spare part categories.
In dynamic markets flexible and efficient production systems are the main success factor for companies. The production system in this context includes all five phases of the SCOR-Model: Source, Make, Deliver, Plan and Return. In a subproject of the cluster of excellence "Integrative Production Technology for High-Wage Countries" at RWTH Aachen University, a configuration logic is being developed that enables companies to configure their production system according to the dynamic requirements of the market. As a major intermediate result, a holistic description model for production systems has been defined. In combination with numerous attributes in the sub-models, a detailed characterization of the production system is possible.
The sub-model for the design of the Supply Chain (mainly Deliver) will be depicted in detail in this paper. Representative for the design of a Supply Chain, spare parts logistics - as one of the most challenging tasks in logistics planning - is analyzed in depth. For this purpose spare parts logistics is divided into three design fields: network design, cooperation concepts (e.g. with logistics providers, customers, suppliers) and inventory management. Decisions in the design fields are highly interdependent, any spare parts logistics configuration has to take these interdependencies into account.
Dynamische Märkte verlangen nach effizienten Produktionssystemen. Um Unternehmen in die Lage zu versetzen, ihre Produktionssysteme auf diese Anforderungen einzustellen, entwickelt der Exzellenzcluster „Integrative Production Technology for High-Wage Countries“ an der RWTH Aachen im Rahmen eines Unterprojekts eine Konfigurationslogik, die eine ganzheitliche und gleichzeitig detaillierte Beschreibung des Produktionssystems erlaubt.
Dieser Artikel stellt das entwickelte Modell zur Gestaltung der Supply-Chain detailliert dar. Als Betrachtungsgegenstand wird die distributionsseitige Lieferkette der Ersatzteillogistik gewählt, da deren Gestaltung und Betrieb eine der größten Herausforderungen der logistischen Planung bilden. Die Ersatzteillogistik wird dazu in drei wesentliche Gestaltungsfelder aufgeteilt: Netzwerkdesign, Kooperationskonzepte und Bestandsmanagement. Im Fokus der Betrachtungen stehen die Interdependenzen zwischen den Gestaltungsfeldern und ihren Elementen, da sie die Entscheidungsfindung häufig erschweren.
Die volle Bandbreite aller Abhängigkeiten ist in der Regel nicht zu erfassen. Daher erfolgt eine Reduzierung der Komplexität durch eine Fokussierung der für verschiedene Ersatzteilkategorien wesentlichen Gestaltungselemente. Hierzu wird zunächst eine Klassifizierung der Ersatzteile im Hinblick auf ihre Schlüsselcharakteristiken durchgeführt. Für jede Kategorie muss im Anschluss nur eine reduzierte Menge von Gestaltungselementen berücksichtigt werden, sodass eine vertiefte Analyse dieser relevanten Elemente möglich wird. Mithilfe eines systemdynamischen Ansatzes wird schließlich eine verbesserte Konfiguration des Netzwerkdesigns, des Kooperationskonzepts und des Bestandsmanagements der Ersatzteillieferkette auf der Basis spezifischer logistischer Anforderungen für die entsprechenden Ersatzteilkategorien erreicht.
In a subproject of the cluster of excellence “Integrative Production Technology for High-Wage Countries” at RWTH Aachen University a configuration logic is under development that enables companies to configure their production system according to the dynamic requirements of the market. As a result of this project, a holistic description model for production systems has been defined. With numerous attributes in the sub-models a detailed characterization of the production system is possible.
The sub-model for the design of the supply chain will be depicted in detail in this paper. Representative for the design of a supply chain, the spare parts logistics of the wind energy industry is analyzed in depth. Designing this supply chain is not only one of the most challenging tasks in logistics. Only a responsive but also cost efficient design of the spare parts supply chain guarantees high productivity, extended life spans of the wind turbines as well as the expected profit for all companies in the supply chain.
Die Hauptherausforderung bei der Entwicklung einer produktionstechnisch geprägten Produktionstheorie darin, eine Verbindung der (produktions-)technischen Teildisziplinen zu einem theoretischen Beschreibungsmodell zu erreichen. Dieses gilt es unter Berücksichtigung der bestehenden Produktionstheorien um eine ökonomische Input-Output-Betrachtung zu erweitern.
Dieser bedarf einer theoretischen Betrachtung des Einflusses von Stellgrößen in verschiedenen Bewertungsdimensionen auf die Wirtschaftlichkeit eines Produktionssystems. Hierzu gilt es die relevanten Einflussgrößen und deren wechselseitigen Abhängigkeiten in einem Modell zu verknüpfen, welches die Grundlage zur Bestimmung des optimalen Betriebspunktes des Produktionssystems darstellt. In diesem Modell sollen formale Submodelle aus unterschiedlichen Fachdisziplinen analysiert und integriert werden, wodurch sichergestellt wird, dass der Stand der Forschung aus den produktionstechnischen Fachbereichen, wie der Fertigungstechnik, Werkzeugmaschinen, Logistik und Produktionsplanung und -steuerung (PPS), genutzt wird, um den ökonomischen Einfluss der Einflussgrößen zu quantifizieren.
Das (volks-)wirtschaftliche Umfeld produzierender Unternehmen wird aktuell mehr denn je durch unvorhersehbare und tiefgreifende Veränderungen geprägt. Die deutsche Industrie muss die Dynamik zukünftig aus eigener Kraft beherrschen. Teilweise nachteilige Standortfaktoren müssen kompensiert werden, um die Produktion in Deutschland langfristig zu sichern. Wandlungs- und Echtzeitfähigkeit in Prozessen und Strukturen stellen die zentralen Enabler zur Beherrschung des Produkt-Produktionssystems dar.
Companies in the manufacturing sector are confronted with an increasingly dynamic environment. Thus, corporate processes and, consequently, the supporting IT landscape must change. This need is not yet fully met in the development of information systems. While best-of-breed approaches are available, monolithic systems that no longer meet the manufacturing industry's requirements are still prevalent in practical use. A modular structure of IT landscapes could combine the advantages of individual and standard information systems and meet the need for adaptability. At present, however, there is no established standard for the modular design of IT landscapes in the field of manufacturing companies' information systems. This paper presents different ways of the modular design of IT landscapes and information systems and analyzes their objects of modularization. For this purpose, a systematic literature research is carried out in the subject area of software and modularization. Starting from the V-model as a reference model, a framework for different levels of modularization was developed by identifying that most scientific approaches carry out modularization at the data structure-based and source code-based levels. Only a few sources address the consideration of modularization at the level of the software environment-based and software function-based level. In particular, no domain-specific application of these levels of modularization, e.g., for manufacturing, was identified. (Literature base: https://epub.fir.de/frontdoor/index/index/docId/2704)