901 resultados para Computer Graphics and Computer-Aided Design


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The possibility of manufacturing textured materials and devices, with surface properties controlled from the design stage, instead of being the result of machining processes or chemical attacks, is a key factor for the incorporation of advanced functionalities to a wide set of micro and nanosystems. Recently developed high-precision additive manufacturing technologies, together with the use of fractal models linked to computer-aided design tools, allow for a precise definition and control of final surface properties for a wide set of applications, although the production of larger series based on these resources is still an unsolved challenge. However, rapid prototypes, with controlled surface topography, can be used as original masters for obtaining micromold inserts for final large-scale series manufacture of replicas using microinjection molding. In this study, an original procedure is presented, aimed at connecting rapid prototyping with microinjection molding, for the mass production of two different microtextured microsystems, linked to tissue engineering tasks, using different thermoplastics as ultimate materials.

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La presente investigación se inicia planteando el objetivo de identificar los parámetros geométricos que son exclusivos del proceso de generación de la Forma y relacionarlos con los invariantes relacionados con la Fabricación digital aplicada a la Arquitectura. Con ello se pretende recuperar la geometría como herramienta principal del proceso de Proyecto ampliando su ámbito de actuación al encontrar una relación con los procesos de fabricación digital. El primer capítulo describe los antecedentes y contexto histórico centrándose especialmente en la influencia de la capacidad de definir geometrías complejas digitalmente mediante la aplicación de algoritmos. En los primeros ejemplos la aproximación del Arquitecto a proyectos con geometrías complejas no euclídeas aún se emplea sin precisión en la comunicación de la geometría ideada para su puesta en obra. Las técnicas constructivas obligan a asumir una tolerancia de desviación entre proyecto y obra y la previsión del comportamiento de esa geometría no permite asegurar su comportamiento final. No será hasta la introducción de herramientas CAD en el proceso de ideación arquitectónica cuando el Arquitecto se capacite para generar geometrías no representables de forma analógica. Sin embargo, la imposibilidad de trasladar la geometría proyectada a la praxis constructiva impedirá la plasmación de un proceso completo, salvo en las contadas ocasiones que se recogen en este texto. “El análisis cronológico de las referencias establece como aspecto esencial para la construcción de geometrías complejas la capacidad primero para definir y comunicar de forma precisa e inequívoca la geometría y después la capacidad de analizar el desempeño prestacional de dicha propuesta geométrica”. La presente investigación se inicia planteando el objetivo de identificar los parámetros geométricos que son exclusivos del proceso de generación de la Forma y relacionarlos con los invariantes relacionados con la Fabricación digital aplicada a la Arquitectura. Con ello se pretende recuperar la geometría como herramienta principal del proceso de Proyecto ampliando su ámbito de actuación al encontrar una relación con los procesos de fabricación digital. El primer capítulo describe los antecedentes y contexto histórico centrándose especialmente en la influencia de la capacidad de definir geometrías complejas digitalmente mediante la aplicación de algoritmos. En los primeros ejemplos la aproximación del Arquitecto a proyectos con geometrías complejas no euclídeas aún se emplea sin precisión en la comunicación de la geometría ideada para su puesta en obra. Las técnicas constructivas obligan a asumir una tolerancia de desviación entre proyecto y obra y la previsión del comportamiento de esa geometría no permite asegurar su comportamiento final. No será hasta la introducción de herramientas CAD en el proceso de ideación arquitectónica cuando el Arquitecto se capacite para generar geometrías no representables de forma analógica. Sin embargo, la imposibilidad de trasladar la geometría proyectada a la praxis constructiva impedirá la plasmación de un proceso completo, salvo en las contadas ocasiones que se recogen en este texto. “El análisis cronológico de las referencias establece como aspecto esencial para la construcción de geometrías complejas la capacidad primero para definir y comunicar de forma precisa e inequívoca la geometría y después la capacidad de analizar el desempeño prestacional de dicha propuesta geométrica”. Establecida la primera conclusión, el capítulo de contexto histórico continúa enfocándose sobre la aplicación de las técnicas digitales en el Proceso de proyecto primero, y en la puesta en obra después. Los casos de estudio identifican claramente como un punto de inflexión para la generación de formas complejas mediante un software CAD el Museo Guggenheim de Bilbao en 1992. El motivo esencial para elegir este proyecto como el primer proyecto digital es el uso de la herramienta de definición digital de la geometría para su reproducción inequívoca en obra. “La revolución digital ha aportado al Arquitecto la posibilidad de abandonar las tipologías arquitectónicas basados en restricciones geométricas-constructivas. La aplicación de técnicas de fabricación digital ha permitido la capacidad de diseñar con independencia del sistema constructivo y libertad formal. En este nuevo contexto las prestaciones suponen los nuevos límites conceptuales, ya que el acceso y disposición de la información del comportamiento de las alternativas que cada geometría conlleva demanda del Arquitecto la jerarquización de los objetivos y la formulación en un conjunto coherente de parámetros”. Los proyectos que emplean herramientas digitales para la resolución de las distintas etapas del proceso proyectual se verán incrementados de forma exponencial desde 1992 hasta nuestros días. A pesar del importante auge de las técnicas de diseño asistido por ordenador el principal desafío sigue siendo la vinculación de las geometrías y materiales propuestos con las capacidades de las técnicas de manufactura y puesta en obra. El proceso de diseño para fabricación en un entorno digital es una tecnología madura en otras industrias como la aeroespacial o la automovilística, incluso la de productos de consumo y decoración, sin embargo en el sector de Construcción es un sistema inmaduro e inconexo. Las particularidades de la industria de la construcción aún no han sido abordadas en su totalidad y las propuestas de investigación realizadas en este ámbito se han centrado hasta 2015 en partes del proceso y no en el proceso total. “El principal obstáculo para la estandarización e implantación globalizada de un proceso digital desde el origen de la forma hasta la construcción es la inexistencia de un protocolo integrado que integre las limitaciones de fabricación, económicas y de puesta en obra junto a la evaluación de desempeño prestacional durante la fases iniciales de proyecto”. En el capítulo número 3 se estudian los distintos procesos de generación de la forma. Se propone una definición específica para el ámbito de la investigación de “forma” en el entendemos que se incluye la envolvente exterior y el conjunto organizativo de espacios interiores conectados. Por lo tanto no es excluyente del interior. El objetivo de este estudio es analizar y clasificar los procesos para la generación digital de formas en los distintos proyectos seleccionados como emblemáticos de cada tipología. Se concluye que la aproximación a este proceso es muy variada y compleja, con aplicación segregada y descoordinada entre los distintos agentes que han intervenir. En un proceso de generación formal analógico los parámetros que intervienen son en parte conscientes y en parte inconscientes o aprendidos. El Arquitecto sólo tiene control sobre la parte consciente de los parámetros a integrar en el diseño, de acuerdo a sus conocimientos y capacidades será capaz de manejar un número limitado de parámetros. La parte aprendida permanece en el inconsciente y dirige el proceso analógico, aportando prejuicios estéticos incorporados durante el proceso formativo y propio del entorno cultural. “El empleo de herramientas digitales basadas en la evaluación prestacional durante el proceso de selección formal permite al Arquitecto conocer “en tiempo real” el desempeño en el conjunto de prestaciones evaluadoras del conjunto de alternativas geométricas a la propuesta previamente definida por la intuición arquitectónica. El proceso definido no persigue identificar una solución óptima sino asistir al Arquitecto en el proceso de generación de la forma mediante la evaluación continua de los vectores direccionales más idóneos que el procedimiento generativo plantea”. La definición de complejidad en generación y producción de formas en relación con el proceso de diseño digital paramétrico global o integrado, es esencial para establecer un protocolo que optimice su gestión. “Se propone como definición de complejidad como factor resultante de multiplicar el número de agentes intervinientes por el número de parámetros e interacciones comunes que intervienen en el proceso de generación de la forma, dividido por la complejidad de intercambio de información digital desde el origen hasta la fase de fabricación y construcción”. Una vez analizados los procesos de generación digital de Arquitectura se propone identificar los parámetros geométricos que definen el proceso de Diseño digital, entendiendose por Diseño el proceso que engloba desde la proposición de una forma inicial basada en la intuición del Arquitecto, la generación y evaluación de variantes y posterior definición digital para producción, tanto de un objeto, un sistema o de la totalidad del Proyecto. En la actualidad el proceso de Diseño es discontinuo y lineal organizandose los parámetros por disciplinas en las que está estructurada las atribuciones profesionales en la industria de la construcción. Para simplificar la identificación y listado se han agrupado siguiendo estos grupos de conocimiento. Entendemos parametros invariables aquellos que son independientes de Tipologías arquitectónicas o que dependen del mismo proceso de generación de la Forma. “El listado de los parámetros que intervienen en un proceso de generación formal es una abstracción de una realidad compleja. La parametrización de las decisiones que intervienen en la selección de una forma determinada mediante “well defined problems” es imposible. El proceso que esta tesis describe entiende esta condición como un elemento que pone en valor el propio procedimiento generativo por la riqueza que la subjetividad que el equipo de diseño aporta”. La segunda parte esencial de esta investigación pretende extraer las restricciones propias del estado del arte de la fabricación digital para posteriormente incorporarlos en los procesos digitales de definición de la Forma arquitectónica. “La integración de las restricciones derivadas de las técnicas de fabricación y construcción digitales en el proceso de generación de formas desde el ámbito de la Arquitectura debe referirse a los condicionantes geométricos asociados a cada sistema constructivo, material y técnica de fabricación. La geometría es además el vínculo que permite asociar el conjunto de parámetros prestacionales seleccionados para un Proyecto con los sistemas de fabricación digital”. A estos condicionantes geométricos obtenidos del análisis de cada sistema de fabricación digital se les ha denominado “invariantes geométricos”. Bajo este término se engloban tanto límites dimensionales de fabricación, como materiales compatibles, tolerancias de manufactura e instalación y cualidades prestacionales asociadas. El objetivo de esta propuesta es emplear la geometría, herramienta fundamental y propia del Arquitecto, como nexo de unión entre el conjunto complejo y heterogéneo de parámetros previamente listados y analizados. Para ello se han simplificado en tablas específicas para cada parámetro prestacional los condicionantes geométricos que se derivan de los Sistemas de fabricación digital compatibles (ver apéndice 1). El estudio y evaluación de las capacidades y objetivos de las distintas plataformas de software disponibles y de las experiencias profesionales evaluadas en los proyectos presentados, permiten concluir que la propuesta de plataforma digital de diseño integral multi-paramétrico de formas arquitectónicas requiere de un protocolo de interoperatibilidad específico aún no universalmente establecido. Actualmente el enfoque de la estrategia para normalizar y universalizar el contexto normativo para regular la interoperatibilidad se centra en figura del gestor denominado “BIM manager”. Las atribuciones y roles de esta figura se enfocan a la gestión del continente y no del contenido (Definición de los formatos de intercambio, niveles de desarrollo (LOD) de los componentes o conjuntos constructivos, detección de interferencias y documentación del propio modelo). Siendo este ámbito un desarrollo necesario para la propuesta de universalización del sistema de diseño para fabricación digital integrado, la presente investigación aporta un organigrama y protocolo asociado. El protocolo: 1. Establece la responsabilidad de identificar y definir la Información que debe determinar el proceso de generación y desarrollo de la forma arquitectónica. 2. Define la forma digital apropiada para generar la geometría del Proyecto, incluyendo la precisión necesaria para cada componente y el nivel de detalle necesario para su exportación inequívoca al proceso de fabricación. 3. Define el tempo de cada etapa de diseño identificando un nivel de detalle acorde. 4. Acopla este organigrama dentro de las estructuras nuevas que se proponen en un entorno BIM para asegurar que no se producen solapes o vacíos con las atribuciones que se identifican para el BIM Manager. “El Arquitecto debe dirigir el protocolo de generación coordinada con los sistemas de producción digital para conseguir que la integración completa. El protocolo debe asistir al proceso de generación de forma mediante la evaluación del desempeño prestacional de cada variante en tiempo real. La comunicación entre herramientas digitales es esencial para permitir una ágil transmisión de información. Es necesario establecer un protocolo adaptado a los objetivos y las necesidades operativas de cada proyecto ya que la estandarización de un protocolo único no es posible”. Una decisión estratégica a la hora de planificar una plataforma de diseño digital común es establecer si vamos a optar por un Modelo digital único o diversos Modelos digitales federados. Cada uno de los modos de trabajo tiene fortalezas y debilidades, no obstante en el ámbito de investigación se ha concluido que un proceso integrado de Diseño que incorpore la evaluación prestacional y conceptual definida en el Capítulo 3, requiere necesariamente de varios modelos de software distintos que han de relacionarse entre sí mediante un protocolo de comunicación automatizado. Una plataforma basada en un modelo federado consiste en establecer un protocolo de comunicación entre los programas informáticos empleados por cada disciplina. En este modelo de operación cada equipo de diseño debe establecer las bases de comunicación en función del número y tipo de programas y procesos digitales a emplear. En esta investigación se propone un protocolo basado en los estándares de intercambio de información que estructura cualquier proceso de generación de forma paramétrico “La investigación establece el empleo de algoritmos evolutivos como el sistema actual óptimo para desarrollar un proceso de generación de formas basadas en la integración y coordinación de invariantes geométricos derivados de un conjunto de objetivos prestacionales y constructivos. No obstante, para la aplicación en el caso práctico realizado se ha podido verificar que la evaluación del desempeño aún no puede realizarse en una única herramienta y por lo tanto el proceso de selección de las variantes genéticas óptimas ha de ejecutarse de forma manual y acumulativa. El proceso debe realizarse de manera federada para la selección evolutiva de los invariantes geométricos dimensionales”. La evaluación del protocolo de integración y los condicionantes geométricos obtenidos como parámetros geométricos que controlan las posibles formas compatibles se realiza mediante su aplicación en un caso práctico. El ejercicio simula la colaboración multidisciplinar con modelos federados de plataformas distintas. La elección del tamaño y complejidad constructiva del proyecto se ha modulado para poder alcanzar un desarrollo completo de cada uno de los parámetros prestacionales seleccionados. Continuando con el mismo objetivo propuesto para los parámetros prestacionales, la tipología constructiva-estructural seleccionada para el ejercicio permite la aplicación la totalidad de invariantes geométricos asociados. El objetivo de este caso práctico es evaluar la capacidad alterar la forma inicialmente propuesta mediante la evaluación del desempeño prestacional de conjunto de variantes geométricas generadas a partir de un parámetro dimensional determinado. Para que este proceso tenga sentido, cada una de las variantes debe ser previamente validada conforme a las limitaciones geométricas propias de cada sistema de fabricación y montaje previstos. El interés de las conclusiones obtenidas es la identificación de una variante geométrica distante a la solución simétrica inicialmente como la solución óptima para el conjunto de parámetros seleccionados. Al tiempo se ha comprobado como la participación de un conjunto de parámetros multi-disciplinares que representan la realidad compleja de los objetivos arquitectónicos favorecen la aparición de variaciones genéticas con prestaciones mejoradas a la intuición inicial. “La herencias tipológicas suponen un límite para la imaginación de variantes formales al proceso de ideación arquitectónica. El ejercicio realizado demuestra que incluso en casos donde aparentemente la solución óptima aparenta ser obvia una variante aleatoria puede mejorar su desempeño global. La posibilidad de conocer las condiciones geométricas de las técnicas de fabricación digital compatibles con el conjunto de parámetros seleccionados por el Arquitecto para dirigir el proceso asegura que los resultados del algoritmo evolutivo empleado sean constructivamente viables. La mejora de imaginación humana con la aportación de geometrías realmente construibles supone el objetivo último de esta tesis”. ABSTRACT Architectural form generation process is shifting from analogical to digital. Digital technology has changed the way we design empowering Architects and Engineers to precisely define any complex geometry envisioned. At the same time, the construction industry, following aeronautical and automotive industries, is implementing digital manufacturing techniques to improve efficiency and quality. Consequently construction complexity will no longer be related to geometry complexity and it is associated to coordination with digital manufacturing capacities. Unfortunately it is agreed that non-standard geometries, even when proposed with performance optimization criteria, are only suitable for projects with non-restricted budgets. Furthemore, the lack of coordinated exportation protocol and geometry management between design and construction is avoiding the globalization of emergence process in built projects Present research first objective is to identify exclusive form-generation parameters related to digital manufacturing geometrical restraints. The intention was to use geometry as the form-generation tool and integrate the digital manufacturing capacities at first stages of the project. The first chapter of this text describes the investigation historical context focusing on the influence between accurate geometry definition at non-standard forms and its construction. At first examples of non-Euclidean geometries built the communication between design and construction were based on analogical partial and imprecise documentation. Deficient communication leads to geometry adaptation on site leaving the final form uncontrolled by the Architect. Computer Aided Design enable Architects to define univocally complex geometries that previously where impossible to communicate. “The univocally definition of the Form, and communication between design and construction is essential for complex geometry Projects”. The second chapter is focused on digital technologies application in form finding process and site construction. The case studies selected identifies a clear inflexion node at 1992 with the Guggenheim Museum in Bilbao. The singularity of this project was the use of Aeronautics software to define digitally the external envelope complex geometry to enable the contractor to build it. “The digital revolution has given the Architect the capacity to design buildings beyond the architectural archetypes driven by geometric-constructive limitations. The application of digital manufacturing techniques has enabled a free-form construction without geometrical limitations. In this new context performance shall be the responsible to set new conceptual boundaries, since the behavior of each possible geometry can be compare and analyze beforehand. The role of the Architect is to prioritize the performance and architectural objectives of each project in a complete and coherent set of parameters”. Projects using digital tools for solving various stages of the design process were increased exponentially since 1992 until today. Despite the significant rise of the techniques of computer-aided design the main challenge remains linking geometries and materials proposed at each design with the capabilities of digital manufacturing techniques. Design for manufacturing in a digital environment is a mature technology in other industries such as aerospace and automotive, including consumer products and decoration, but in the construction sector is an immature and disjointed system. The peculiarities of the construction industry have not yet been addressed in its entirety and research proposals made in this area until 2015 have focused in separate parts of the process and not the total process. “The main obstacle to global standardization and implementation of a complete digital process from the form-finding to construction site is the lack of an integrated protocol that integrates manufacturing, economic and commissioning limitations, together with the performance evaluation of each possible form”. The different form generation processes are studied at chapter number 3. At the introduction of this chapter there is a specific definition of "form" for the research field. Form is identified with the outer envelope geometry, including the organizational set of connected indoor spaces connected to it. Therefore it is not exclusive of the interior. The aim of this study is to analyze and classify the main digital form generation processes using different selected projects as emblematic of each type. The approach to this process is complex, with segregated and uncoordinated different actors have to intervene application. In an analogical form-generation process parameters involved are partly conscious and partly unconscious or learned. The architect has control only over limited part of the parameters to be integrated into the design, according to their knowledge and. There is also a learned aesthetical prejudice that leads the form generation process to a specific geometry leaving the performance and optimization criteria apart from the decision making process. “Using performance evaluation digital tools during form finding process provides real-time comparative information to the Architect enabling geometry selection based on its performance. The generative form generation process described at this document does not ambition to identify the optimum geometry for each set of parameters. The objective is to provide quick information at each generation of what direction is most favorable for the performance parameters selected”. Manufacturing complexity definition in relation to a global and integral process of digital design for manufacture is essential for establishing an efficient managing protocol. “The definition of complexity associated to design for production in Architecture is proposed as the factor between number of different agents involved in the process by the number of interactions required between them, divided by the percentage of the interchange of information that is standardized and proof of information loss”. Design in architecture is a multi-objective process by definition. Therefore, addressing generation process linked to a set of non-coherent parameters requires the selection of adequate generative algorithm and the interaction of the architect. During the second half of the twentieth century and early twenty-first century it have been developed various mathematical algorithms for multi-parametric digital design. Heuristic algorithms are the most adequate algorithms for architectural projects due to its nature. The advantage of such algorithms is the ability to efficiently handle large scale optimization cases where a large number of design objectives and variables are involved. These generative processes do not pursue the optimum solution, in fact it will be impossible to proof with such algorithm. This is not a problem in architectural design where the final goal is to guide the form finding process towards a better performance within the initial direction provided by the architect. This research has focused on genetic algorithms due to its capacity to generate geometric alternatives in multiple directions and evaluate the fitness against a set of parameters specified in a single process. "Any protocol seeks to achieve standardization. The design to manufacturing protocol aims to provide a coordinated and coherent form generation process between a set of design parameters and the geometrical requirements of manufacturing technique. The protocol also provides an information exchange environment where there is a communication path and the level of information is ensured. The research is focused on the process because it is considered that each project will have its own singularities and parameters but the process will stay the same. Again the development of a specific tool is not a goal for the research, the intention is to provide an open source protocol that is valid for any set of tools”. Once the digital generation processes are being analized and classified, the next step is to identify the geometric parameters that define the digital design process. The definition of design process is including from the initial shape proposal based on the intuition of the architect to the generation, evaluation, selection and production of alternatives, both of an object , system or of the entire project . The current design process in Architecture is discontinuous and linear, dividing the process in disciplines in which the construction industry is structured. The proposal is to unify all relevant parameters in one process. The parameters are listed in groups of knowledge for internal classification but the matrix used for parameter relationship determination are combined. “A multi-parameter determination of the form-finding process is the integration all the measurable decisions laying behind Architect intuition. It is not possible to formulate and solve with an algorithm the design in Architecture. It is not the intention to do so with the proposal of this research. The process aims to integrate in one open protocol a selection of parameters by using geometry as common language. There is no optimum solution for any step of the process, the outcome is an evaluation of performance of all the form variations to assist the Architect for the selection of the preferable solution for the project”. The research follows with the geometrical restrictions of today Digital manufacturing techniques. Once determined it has been integrated in the form-finding process. “Digital manufacturing techniques are integrated in the form-finding process using geometry as common language. Geometric restraints define the boundary for performance parametric form-finding process. Geometrical limitations are classified by material and constructive system”. Choose between one digital model or several federate models is a strategic decision at planning a digital design for manufacturing protocol. Each one of the working models have strengths and weakens, nevertheless for the research purposes federated models are required to manage the different performance evaluation software platforms. A protocol based on federated models shall establish a communication process between software platforms and consultants. The manager shall integrate each discipline requirements defining the communication basis. The proposed protocol is based on standards on information exchange with singularities of the digital manufacturing industry. “The research concludes evolutionary algorithms as current best system to develop a generative form finding process based on the integration and coordination of a set of performance and constructive objectives. However, for application in professional practice and standardize it, the performance evaluation cannot be done in only one tool and therefore the selection of optimal genetic variants must be run in several iterations with a cumulative result. Consequently, the evaluation process within the geometrical restraints shall be carried out with federated models coordinated following the information exchange protocol”. The integration protocol and geometric constraints evaluation is done by applying in a practical case study. The exercise simulates multidisciplinary collaboration across software platforms with federated models. The choice of size and construction complexity of the project has been modulated to achieve the full development of each of the parameters selected. Continuing with the same objective proposed for the performance parameters the constructive and structural type selected for the exercise allows the application all geometric invariants associated to the set of parameters selected. The main goal of the case study is to proof the capacity of the manufacturing integrated form finding process to generate geometric alternatives to initial form with performance improved and following the restrictions determined by the compatible digital manufacturing technologies. The process is to be divided in consecutive analysis each one limited by the geometrical conditions and integrated in a overall evaluation. The interest of this process is the result of a non-intuitive form that performs better than a double symmetrical form. The second conclusion is that one parameter evaluation alone will not justify the exploration of complex geometry variations, but when there is a set of parameters with multidisciplinary approach then the less obvious solution emerge as the better performing form. “Architectural typologies impose limitation for Architects capacity to imagine formal variations. The case study and the research conclusions proof that even in situations where the intuitive solution apparently is the optimum solution, random variations can perform better when integrating all parameters evaluation. The capacity of foreseing the geometrical properties linking each design parameter with compatible manufacturing technologies ensure the result of the form-finding process to be constructively viable. Finally, the propose of a complete process where the geometry alternatives are generated beyond the Architect intuition and performance evaluated by a set of parameters previously selected and coordinated with the manufacturing requirements is the final objective of the Thesis”.

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There is a growing need within the footwear sector to customise the design of the last from which a specific footwear style is to be produced. This customisation is necessary for user comfort and health reasons, as the user needs to wear a suitable shoe. For this purpose, a relationship must be established between the user foot and the last with which the style will be made; up until now, no model has existed that integrates both elements. On the one hand, traditional customised footwear manufacturing techniques are based on purely artisanal procedures which make the process arduous and complex; on the other hand, geometric models proposed by different authors present the impossibility of implementing them in an industrial environment with limited resources for the acquisition of morphometric and structural data for the foot, apart from the fact that they do not prove to be sufficiently accurate given the non-similarity of the foot and last. In this paper, two interrelated geometric models are defined, the first, a bio-deformable foot model and the second, a deformable last model. The experiments completed show the goodness of the model, with it obtaining satisfactory results in terms of comfort, efficiency and precision, which make it viable for use in the sector.

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Mathematical morphology addresses the problem of describing shapes in an n-dimensional space using the concepts of set theory. A series of standardized morphological operations are defined, and they are applied to the shapes to transform them using another shape called the structuring element. In an industrial environment, the process of manufacturing a piece is based on the manipulation of a primitive object via contact with a tool that transforms the object progressively to obtain the desired design. The analogy with the morphological operation of erosion is obvious. Nevertheless, few references about the relation between the morphological operations and the process of design and manufacturing can be found. The non-deterministic nature of classic mathematical morphology makes it very difficult to adapt their basic operations to the dynamics of concepts such as the ordered trajectory. A new geometric model is presented, inspired by the classic morphological paradigm, which can define objects and apply morphological operations that transform these objects. The model specializes in classic morphological operations, providing them with the determinism inherent in dynamic processes that require an order of application, as is the case for designing and manufacturing objects in professional computer-aided design and manufacturing (CAD/CAM) environments. The operators are boundary-based so that only the points in the frontier are handled. As a consequence, the process is more efficient and more suitable for use in CAD/CAM systems.

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Federal Highway Administration, Office of Safety and Traffic Operations, Washington, D.C.

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Turner-Fairbank Highway Research Center, Office of Safety Research and Development, McLean, Va.

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Finding single pair shortest paths on surface is a fundamental problem in various domains, like Geographic Information Systems (GIS) 3D applications, robotic path planning system, and surface nearest neighbor query in spatial database, etc. Currently, to solve the problem, existing algorithms must traverse the entire polyhedral surface. With the rapid advance in areas like Global Positioning System (CPS), Computer Aided Design (CAD) systems and laser range scanner, surface models axe becoming more and more complex. It is not uncommon that a surface model contains millions of polygons. The single pair shortest path problem is getting harder and harder to solve. Based on the observation that the single pair shortest path is in the locality, we propose in this paper efficient methods by excluding part of the surface model without considering them in the search process. Three novel expansion-based algorithms are proposed, namely, Naive algorithm, Rectangle-based Algorithm and Ellipse-based Algorithm. Each algorithm uses a two-step approach to find the shortest path. (1) compute an initial local path. (2) use the value of this initial path to select a search region, in which the global shortest path exists. The search process terminates once the global optimum criteria are satisfied. By reducing the searching region, the performance is improved dramatically in most cases.

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Most object-based approaches to Geographical Information Systems (GIS) have concentrated on the representation of geometric properties of objects in terms of fixed geometry. In our road traffic marking application domain we have a requirement to represent the static locations of the road markings but also enforce the associated regulations, which are typically geometric in nature. For example a give way line of a pedestrian crossing in the UK must be within 1100-3000 mm of the edge of the crossing pattern. In previous studies of the application of spatial rules (often called 'business logic') in GIS emphasis has been placed on the representation of topological constraints and data integrity checks. There is very little GIS literature that describes models for geometric rules, although there are some examples in the Computer Aided Design (CAD) literature. This paper introduces some of the ideas from so called variational CAD models to the GIS application domain, and extends these using a Geography Markup Language (GML) based representation. In our application we have an additional requirement; the geometric rules are often changed and vary from country to country so should be represented in a flexible manner. In this paper we describe an elegant solution to the representation of geometric rules, such as requiring lines to be offset from other objects. The method uses a feature-property model embraced in GML 3.1 and extends the possible relationships in feature collections to permit the application of parameterized geometric constraints to sub features. We show the parametric rule model we have developed and discuss the advantage of using simple parametric expressions in the rule base. We discuss the possibilities and limitations of our approach and relate our data model to GML 3.1. © 2006 Springer-Verlag Berlin Heidelberg.

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Heat pumps are becoming increasingly popular, but poor electricity generating efficiency limits the potential energy savings of electrically powered units. Thus the work reported in this thesis concerns the development of a range of gas engine driven heat pumps for industrial and commercial heating applications, which recover heat from the prime mover, normally rejected to waste. Despite the convenience of using proprietary engine heat recovery packages, investigations have highlighted the necessity to ensure the engine and the heat recovery equipment are compatible. A problem common •to all air source heat pumps is the formation of frost on the evaporator, which must be removed periodically, with the expenditure of energy, to ensure the continued operation of the plant. An original fluidised bed defrosting mechanism is proposed, which prevents the build-up of this frost, and also improves system performance. Criticisms have been levelled against the rotary sliding vane compressor, in particular the effects of lubrication, which is essential. This thesis compares the rotary sliding vane compressor with other machines, and concludes that many of these criticisms are unfounded. A confidential market survey indicates an increasing demand for heat pumps up to and including 1990, and the technical support needed to penetrate this market is presented. Such support includes the development of a range of modular gas engine driven heat pumps, and a computer aided design for the selection of the optimum units. A case study of a gas engine driven heat pump for a swimming pool application which provided valuable experience is included.

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Nanoparticles offer an ideal platform for the delivery of small molecule drugs, subunit vaccines and genetic constructs. Besides the necessity of a homogenous size distribution, defined loading efficiencies and reasonable production and development costs, one of the major bottlenecks in translating nanoparticles into clinical application is the need for rapid, robust and reproducible development techniques. Within this thesis, microfluidic methods were investigated for the manufacturing, drug or protein loading and purification of pharmaceutically relevant nanoparticles. Initially, methods to prepare small liposomes were evaluated and compared to a microfluidics-directed nanoprecipitation method. To support the implementation of statistical process control, design of experiment models aided the process robustness and validation for the methods investigated and gave an initial overview of the size ranges obtainable in each method whilst evaluating advantages and disadvantages of each method. The lab-on-a-chip system resulted in a high-throughput vesicle manufacturing, enabling a rapid process and a high degree of process control. To further investigate this method, cationic low transition temperature lipids, cationic bola-amphiphiles with delocalized charge centers, neutral lipids and polymers were used in the microfluidics-directed nanoprecipitation method to formulate vesicles. Whereas the total flow rate (TFR) and the ratio of solvent to aqueous stream (flow rate ratio, FRR) was shown to be influential for controlling the vesicle size in high transition temperature lipids, the factor FRR was found the most influential factor controlling the size of vesicles consisting of low transition temperature lipids and polymer-based nanoparticles. The biological activity of the resulting constructs was confirmed by an invitro transfection of pDNA constructs using cationic nanoprecipitated vesicles. Design of experiments and multivariate data analysis revealed the mathematical relationship and significance of the factors TFR and FRR in the microfluidics process to the liposome size, polydispersity and transfection efficiency. Multivariate tools were used to cluster and predict specific in-vivo immune responses dependent on key liposome adjuvant characteristics upon delivery a tuberculosis antigen in a vaccine candidate. The addition of a low solubility model drug (propofol) in the nanoprecipitation method resulted in a significantly higher solubilisation of the drug within the liposomal bilayer, compared to the control method. The microfluidics method underwent scale-up work by increasing the channel diameter and parallelisation of the mixers in a planar way, resulting in an overall 40-fold increase in throughput. Furthermore, microfluidic tools were developed based on a microfluidics-directed tangential flow filtration, which allowed for a continuous manufacturing, purification and concentration of liposomal drug products.

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The fractal self-similarity property is studied to develop frequency selective surfaces (FSS) with several rejection bands. Particularly, Gosper fractal curves are used to define the shapes of the FSS elements. Due to the difficulty of making the FSS element details, the analysis is developed for elements with up to three fractal levels. The simulation was carried out using Ansoft Designer software. For results validation, several FSS prototypes with fractal elements were fabricated. In the fabrication process, fractals elements were designed using computer aided design (CAD) tools. The prototypes were measured using a network analyzer (N3250A model, Agilent Technologies). Matlab software was used to generate compare measured and simulated results. The use of fractal elements in the FSS structures showed that the use of high fractal levels can reduce the size of the elements, at the same time as decreases the bandwidth. We also investigated the effect produced by cascading FSS structures. The considered cascaded structures are composed of two FSSs separated by a dielectric layer, which distance is varied to determine the effect produced on the bandwidth of the coupled geometry. Particularly, two FSS structures were coupled through dielectric layers of air and fiberglass. For comparison of results, we designed, fabricated and measured several prototypes of FSS on isolated and coupled structures. Agreement was observed between simulated and measured results. It was also observed that the use of cascaded FSS structures increases the FSSs bandwidths and, in particular cases, the number of resonant frequencies, in the considered frequency range. In future works, we will investigate the effects of using different types of fractal elements, in isolated, multilayer and coupled FSS structures for applications on planar filters, high-gain microstrip antennas and microwave absorbers

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Virtual topology operations have been utilized to generate an analysis topology definition suitable for downstream mesh generation. Detailed descriptions are provided for virtual topology merge and split operations for all topological entities. Current virtual topology technology is extended to allow the virtual partitioning of volume cells and the topological queries required to carry out each operation are provided. Virtual representations are robustly linked to the underlying geometric definition through an analysis topology. The analysis topology and all associated virtual and topological dependencies are automatically updated after each virtual operation, providing the link to the underlying CAD geometry. Therefore, a valid description of the analysis topology, including relative orientations, is maintained. This enables downstream operations, such as the merging or partitioning of virtual entities, and interrogations, such as determining if a specific meshing strategy can be applied to the virtual volume cells, to be performed on the analysis topology description. As the virtual representation is a non-manifold description of the sub-divided domain the interfaces between cells are recorded automatically. This enables the advantages of non-manifold modelling to be exploited within the manifold modelling environment of a major commercial CAD system, without any adaptation of the underlying CAD model. A hierarchical virtual structure is maintained where virtual entities are merged or partitioned. This has a major benefit over existing solutions as the virtual dependencies are stored in an open and accessible manner, providing the analyst with the freedom to create, modify and edit the analysis topology in any preferred sequence, whilst the original CAD geometry is not disturbed. Robust definitions of the topological and virtual dependencies enable the same virtual topology definitions to be accessed, interrogated and manipulated within multiple different CAD packages and linked to the underlying geometry.

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This paper examines the integration of a tolerance design process within the Computer-Aided Design (CAD) environment having identified the potential to create an intelligent Digital Mock-Up [1]. The tolerancing process is complex in nature and as such reliance on Computer-Aided Tolerancing (CAT) software and domain experts can create a disconnect between the design and manufacturing disciplines It is necessary to implement the tolerance design procedure at the earliest opportunity to integrate both disciplines and to reduce workload in tolerance analysis and allocation at critical stages in product development when production is imminent.
The work seeks to develop a methodology that will allow for a preliminary tolerance allocation procedure within CAD. An approach to tolerance allocation based on sensitivity analysis is implemented on a simple assembly to review its contribution to an intelligent DMU. The procedure is developed using Python scripting for CATIA V5, with analysis results aligning with those in literature. A review of its implementation and requirements is presented.

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Laser scanning is a terrestrial laser-imaging system that creates highly accurate three-dimensional images of objects for use in standard computer-aided design software packages. This report describes results of a pilot study to investigate the use of laser scanning for transportation applications in Iowa. After an initial training period on the use of the scanner and Cyclone software, pilot tests were performed on the following projects: intersection and railroad bridge for training purposes; section of highway to determine elevation accuracy and pair of bridges to determine level of detail that can be captured; new concrete pavement to determine smoothness; bridge beams to determine camber for deck-loading calculations; stockpile to determine volume; and borrow pit to determine volume. Results show that it is possible to obtain 2-6 mm precision with the laser scanner as claimed by the manufacturer compared to approximately one-inch precision with aerial photogrammetry using a helicopter. A cost comparison between helicopter photogrammetry and laser scanning showed that laser scanning was approximately 30 percent higher in cost depending on assumptions. Laser scanning can become more competitive to helicopter photogrammetry by elevating the scanner on a boom truck and capturing both sides of a divided roadway at the same time. Two- and three-dimensional drawings were created in MicroStation for one of the scanned highway bridges. It was demonstrated that it is possible to create such drawings within the accuracy of this technology. It was discovered that a significant amount of time is necessary to convert point cloud images into drawings. As this technology matures, this task should become less time consuming. It appears that laser scanning technology does indeed have a place in the Iowa Department of Transportation design and construction toolbox. Based on results from this study, laser scanning can be used cost effectively for preliminary surveys to develop TIN meshes of roadway surfaces. It also appears that this technique can be used quite effectively to measure bridge beam camber in a safer and quicker fashion compared to conventional approaches. Volume calculations are also possible using laser scanning. It seems that measuring quantities of rock could be an area where this technology would be quite beneficial since accuracy is more important with this material compared to soil. Other applications for laser scanning could include developing as-built drawings of historical structures such as the bridges of Madison County. This technology could also be useful where safety is a concern such as accurately measuring the surface of a highway active with traffic or scanning the underside of a bridge damaged by a truck. It is recommended that the Iowa Department of Transportation initially rent the scanner when it is needed and purchase the software. With time, it may be cost justifiable to purchase the scanner as well. Laser scanning consultants can be hired as well but at a higher cost.

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Background. Tremendous advances in biomaterials science and nanotechnologies, together with thorough research on stem cells, have recently promoted an intriguing development of regenerative medicine/tissue engineering. The nanotechnology represents a wide interdisciplinary field that implies the manipulation of different materials at nanometer level to achieve the creation of constructs that mimic the nanoscale-based architecture of native tissues. Aim. The purpose of this article is to highlight the significant new knowledges regarding this matter. Emerging acquisitions. To widen the range of scaffold materials resort has been carried out to either recombinant DNA technology-generated materials, such as a collagen-like protein, or the incorporation of bioactive molecules, such as RDG (arginine-glycine-aspartic acid), into synthetic products. Both the bottom-up and the top-down fabrication approaches may be properly used to respectively obtain sopramolecular architectures or, instead, micro-/nanostructures to incorporate them within a preexisting complex scaffold construct. Computer-aided design/manufacturing (CAD/CAM) scaffold technique allows to achieve patient-tailored organs. Stem cells, because of their peculiar properties - ability to proliferate, self-renew and specific cell-lineage differentiate under appropriate conditions - represent an attractive source for intriguing tissue engineering/regenerative medicine applications. Future research activities. New developments in the realization of different organs tissue engineering will depend on further progress of both the science of nanoscale-based materials and the knowledge of stem cell biology. Moreover the in vivo tissue engineering appears to be the logical step of the current research.