377 resultados para Arduino microcontroller
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Coordenação de Aperfeiçoamento de Pessoal de Nível Superior (CAPES)
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Conselho Nacional de Desenvolvimento Científico e Tecnológico (CNPq)
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O processo de retificação é considerado um dos últimos na cadeia de produção de peças de precisão. Assim, é essencial ter um sistema de monitoramento confiável para este processo. Neste trabalho é proposto um sistema de medição de vibração, rápido e versátil, baseado na plataforma de prototipagem eletrônica de hardware livre Arduino, com objetivo de monitorar em tempo real o processo de retificação plana, especialmente no que diz respeito à condição da peça retificada. Para este trabalho ensaios experimentais foram realizados numa máquina retificadora plana, empregando um rebolo de óxido de alumínio e uma peça de aço ABNT 1020. Por meio de um sensor piezelétrico de PZT (Pb-Lead Zirconate Titanate) de baixo custo, instalado junto à peça e conectado a uma das portas analógicas do hardware, foi possível medir o sinal de vibração durante o processo de retificação. Verificou-se que, a medida com que o rebolo perdia sua capacidade de corte, em função das consecutivas passadas sobre a peça, ocorria também uma significativa diminuição dos valores médios do sinal de vibração. Tal diminuição do sinal de vibração pode indicar o momento que o rebolo deve ser dressado, permitindo monitorar a qualidade superficial da peça durante o processo de retificação, evitando danos como é o caso da queima superficial. O princípio de operação e as principais características dessa técnica foram investigados, bem como algumas de suas limitações práticas.
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This work focuses basically on the design and analysis of simple and low cost hardware systems efficiency for temperature measurement in agricultural area. The main objective is to prove quantitatively, through statistical data analysis, to what extent a simple hardware designed with inexpensive components can be used safely in the indoor temperature measurement in farm buildings, such as greenhouses, warehouse or silos. To verify the of simple hardware efficiency, its data were compared with data from measurements with a high performance LabVIEW platform. This work proved that a simple hardware based on a microcontroller and the LM35 sensor can perform well. It presented a good accuracy but a relatively low precision that can be improved when performed some consecutive signal sampling and then used its average value. Although there are many papers that explain these components, this work has the distinction of presenting a data analysis in numerical form and using high performance systems to ensure critical data comparison.
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USE OF THE LINEAR LIGHT SENSOR ILX554 IN OPTICAL SPECTROSCOPY. This technical note describes the construction of a low-cost optical detector. This device is composed by a high-sensitive linear light sensor (model ILX554) and a microcontroller. The performance or the detector was demonstrated by the detection of emission and Raman spectra of the several atomic systems and the results reproduce those found in the literature.
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Contents Oxidative stress (OS) has been recognized as one of the most important causes of male infertility. The antioxidant activities of seminal plasma and epididymal fluid are not enough to prevent OS, which can damage sperm membranes and DNA, so antioxidant supplementation has been used as a treatment of male infertility. The aim of this experiment was to evaluate the DNA peroxidation before and after antioxidant supplementation with vitamin C and E in dogs with and without fertility problems. A total of eleven dogs were used and were divided in two groups: fertile group (G1), dogs with normal spermiogram (n=5); subfertile group (G2): dogs with low sperm count (<20x106sptz/ml) and/or more than 30% of total sperm pathology (n=6). Both groups received 500mg/day of vitamin C and 500mg/day of vitamin E for 60days. A semen sample was collected before (M1) and after (M2) oral supplementation. Samples were analysed for DNA peroxidation by measuring the 8-hydroxy-2'-deoxyguanosine concentration. No significant difference was observed between groups at either time. Oral supplementation with 500mg/day of vitamin C and 500mg/day of vitamin E did not change the DNA peroxidation in fertile and subfertile dogs.
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This technical note describes the construction of a low-cost optical detector. This device is composed by a high-sensitive linear light sensor (model ILX554) and a microcontroller. The performance of the detector was demonstrated by the detection of emission and Raman spectra of the several atomic systems and the results reproduce those found in the literature.
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[ES] El principal objetivo de este TFG fue la creación de un protocolo basado en CAN que facilitase la integración de redes de microcontroladores. Dicho protocolo tendría que ser sencillo de usar pero con funcionalidades potentes. Se eligió CAN como base puesto que se trataba de un estándar robusto y ampliamente reconocido. El resultado obtenido fue TouCAN, una librería potente pero amigable al usuario. TouCAN posee dos partes claramente diferenciadas pero estrechamente relacionadas, un lado microcontrolador y un lado supervisor. El lado microncontrolador que es sobre el que versa este TFG, está diseñado sobre Arduino, una tecnología muy en boga actualmente dada la facilidad de desarrollo y a una comunidad entusiasta. El objetivo principal de esta parte es la de interconectar los microcontroladores entre sí mediante el protocolo definido en TouCAN, proporcionando las clases y los métodos necesarios para ello. Por otra parte proporciona una serie de métodos de comunicación por el puerto serie para la interacción con un PC supervisor. El lado supervisor está basado en sistemas UNIX, por lo que es compatible con las diversas distribuciones Linux existentes además de ser fácilmente portables a otros sistemas como Mac OS X. Su principal función es la de servir como supervisor del lado microcontrolador. Conectándose a uno de los nodos maestros es capaz de interactuar con el resto de la red, permitiéndole al usuario comunicarse con sus dispositivos en todo momento. TouCAN tiene el potencial necesario para convertirse en una herramienta libre de amplio uso puesto que es sencillo pero potente, sostenida por una tecnología ampliamente conocida.
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[ES] El presente TFG tiene por objetivo el desarrollo de una librería que permita al usuario controlar de forma sencilla una red de microcontroladores. Como protocolo de comunicación sobre el que trabajar se ha utilizado el bus CAN, que proporciona una capa para el control de errores, configuración del ancho de banda, gestión de prioridades y protocolo de mensajes. Como resultado al proyecto, se obtiene la librería TouCAN en la cual se establecen dos partes diferenciadas, el lado microcontrolador y el lado supervisor. Cada una de estas partes se desarrollará en un TFG distinto, siendo el lado supervisor el correspondiente a este TFG. El lado microcontrolador se apoyará sobre la plataforma Arduino. En esta parte, se desarrollará la capacidad de conectar diferentes dispositivos de la red de microcontroladores entre sí, definiendo para ello un protocolo de comunicación que permita la realización de comunicaciones síncronas y asíncronas entre los distintos dispositivos de la red. Para dotar al arduino de la capacidad de hacer uso del protocolo bus CAN, se utilizará un Shield destinado a tal fin. El objetivo del supervisor será la integración de la red de microcontroladores con dispositivos de propósito general, tales como un ordenador personal, que permita realizar tareas de control y monitorización de los distintos sistemas empotrados situados en la red. Como sistema operativo utilizado en la elaboración de la librería se utilizó una distribución GNU/Linux. Para la comunicación del dispositivo supervisor con la red de microcontroladores se utilizará el puerto serie disponible en la plataforma Arduino.
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[ES]El objetivo de este Proyecto Fin de Carrera es diseñar una herramienta software que nos permita controlar de forma inalámbrica un brazo robótico. ésto se ha desarrollado para poder acercar el mundo de la robótica a aquellas personas ajenas a ello, además de dotar de un sistema de control para el día de mañana, evitando problemas de software caduco y antiguo. Para la realización de este proyecto se ha implementado una aplicación Android que permitirá al usuario realizar las acciones de las que dota una paleta estándar de brazo robótico. Además se ha desarrollado una rutina de control de flujo para Arduino, que enlace la tableta con el robot.
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[EN] This project briefly analyzes the scope and applications of Industrial Robotics, as well as the importance that this technical discipline has gained in the past decades. In addition, it proposes a modern platform to assist in teaching this discipline in colleges and universities. This new educational platform for the teaching of Industrial Robotics is based on the robotic systems from Rhino Robotics Ltd., using the existing robotic arms and replacing the control electronics by a newer, modern and yet backwards-compatible controller. In addition to the controller, this platform also provides new, up-to-date software utilities that are more intuitive than those provided with the old system. The work to be done consists essentially in receiving commands from a personal computer which the controller must interpret in order to control the motors of the robotic arm. The controller itself will be implemented as an embedded system based on microcontrollers. This requires the implementation of a communication protocol between the personal computer and the microcontroller, the design of a command interpreter, the design of the electronics for motor control using PWM and H-bridges, and the implementation of control techniques (more precisely, PID control). Hence, this project combines software and hardware design and integration techniques with motor control techniques and feedback control methods from Control Engineering, along with the kinematic analysis of the Rhino XR-4 robotic arm.
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TouCAN es una librería creada en su primera versión (v1) como Trabajos de Fin de Grado en Ingeniería Informática por John Wu Wu y Jose Lareo Domínguez bajo la tutorización de los profesores Antonio C. Domínguez Brito y Jorge Cabrera Gámez. Define un protocolo de comunicación para la interconexión de una red de microcontroladores basados en la plataforma de prototipado electrónico Arduino. Trabaja sobre el protocolo de comunicación CAN Bus (Controller Area Network), ampliamente utilizado por la industria desde la década de los 80. TouCAN destaca por ser una librería ligera, potente y amigable. El objetivo principal de este Trabajo Final de Grado en Ingeniería Informática consiste en proporcionar robustez a la librería incorporando mejoras y nuevas funcionalidades. Entre las principales mejoras destacar el control frente a fallos de comunicación, reinicio o reset de los microcontroladores, así como la caída de los mismos. Otra característica incluida en esta revisión consiste en la asignación dinámica deidentificadores de dispositivos que conforman un sistema empotrado distribuido. Permitiendo la posibilidad de “conexión en caliente” de nuevos nodos microcontroladores a la red de forma dinámica. A estos cambios, también se han añadido mejoras en la interfaz de la API que simplifica el uso y aprendizaje de la misma. Así como una nueva herramienta denominada TouCANSniffer que permite capturar y analizar todo el tráfico generado en la red. Las nuevas características y funcionalidades añadidas en TouCAN v2 proporcionan el potencial necesario para ser considerada seriamente como base de cualquier nuevo proyecto que integre una red distribuida de microcontroladores.
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In fluid dynamics research, pressure measurements are of great importance to define the flow field acting on aerodynamic surfaces. In fact the experimental approach is fundamental to avoid the complexity of the mathematical models for predicting the fluid phenomena. It’s important to note that, using in-situ sensor to monitor pressure on large domains with highly unsteady flows, several problems are encountered working with the classical techniques due to the transducer cost, the intrusiveness, the time response and the operating range. An interesting approach for satisfying the previously reported sensor requirements is to implement a sensor network capable of acquiring pressure data on aerodynamic surface using a wireless communication system able to collect the pressure data with the lowest environmental–invasion level possible. In this thesis a wireless sensor network for fluid fields pressure has been designed, built and tested. To develop the system, a capacitive pressure sensor, based on polymeric membrane, and read out circuitry, based on microcontroller, have been designed, built and tested. The wireless communication has been performed using the Zensys Z-WAVE platform, and network and data management have been implemented. Finally, the full embedded system with antenna has been created. As a proof of concept, the monitoring of pressure on the top of the mainsail in a sailboat has been chosen as working example.
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The term Ambient Intelligence (AmI) refers to a vision on the future of the information society where smart, electronic environment are sensitive and responsive to the presence of people and their activities (Context awareness). In an ambient intelligence world, devices work in concert to support people in carrying out their everyday life activities, tasks and rituals in an easy, natural way using information and intelligence that is hidden in the network connecting these devices. This promotes the creation of pervasive environments improving the quality of life of the occupants and enhancing the human experience. AmI stems from the convergence of three key technologies: ubiquitous computing, ubiquitous communication and natural interfaces. Ambient intelligent systems are heterogeneous and require an excellent cooperation between several hardware/software technologies and disciplines, including signal processing, networking and protocols, embedded systems, information management, and distributed algorithms. Since a large amount of fixed and mobile sensors embedded is deployed into the environment, the Wireless Sensor Networks is one of the most relevant enabling technologies for AmI. WSN are complex systems made up of a number of sensor nodes which can be deployed in a target area to sense physical phenomena and communicate with other nodes and base stations. These simple devices typically embed a low power computational unit (microcontrollers, FPGAs etc.), a wireless communication unit, one or more sensors and a some form of energy supply (either batteries or energy scavenger modules). WNS promises of revolutionizing the interactions between the real physical worlds and human beings. Low-cost, low-computational power, low energy consumption and small size are characteristics that must be taken into consideration when designing and dealing with WSNs. To fully exploit the potential of distributed sensing approaches, a set of challengesmust be addressed. Sensor nodes are inherently resource-constrained systems with very low power consumption and small size requirements which enables than to reduce the interference on the physical phenomena sensed and to allow easy and low-cost deployment. They have limited processing speed,storage capacity and communication bandwidth that must be efficiently used to increase the degree of local ”understanding” of the observed phenomena. A particular case of sensor nodes are video sensors. This topic holds strong interest for a wide range of contexts such as military, security, robotics and most recently consumer applications. Vision sensors are extremely effective for medium to long-range sensing because vision provides rich information to human operators. However, image sensors generate a huge amount of data, whichmust be heavily processed before it is transmitted due to the scarce bandwidth capability of radio interfaces. In particular, in video-surveillance, it has been shown that source-side compression is mandatory due to limited bandwidth and delay constraints. Moreover, there is an ample opportunity for performing higher-level processing functions, such as object recognition that has the potential to drastically reduce the required bandwidth (e.g. by transmitting compressed images only when something ‘interesting‘ is detected). The energy cost of image processing must however be carefully minimized. Imaging could play and plays an important role in sensing devices for ambient intelligence. Computer vision can for instance be used for recognising persons and objects and recognising behaviour such as illness and rioting. Having a wireless camera as a camera mote opens the way for distributed scene analysis. More eyes see more than one and a camera system that can observe a scene from multiple directions would be able to overcome occlusion problems and could describe objects in their true 3D appearance. In real-time, these approaches are a recently opened field of research. In this thesis we pay attention to the realities of hardware/software technologies and the design needed to realize systems for distributed monitoring, attempting to propose solutions on open issues and filling the gap between AmI scenarios and hardware reality. The physical implementation of an individual wireless node is constrained by three important metrics which are outlined below. Despite that the design of the sensor network and its sensor nodes is strictly application dependent, a number of constraints should almost always be considered. Among them: • Small form factor to reduce nodes intrusiveness. • Low power consumption to reduce battery size and to extend nodes lifetime. • Low cost for a widespread diffusion. These limitations typically result in the adoption of low power, low cost devices such as low powermicrocontrollers with few kilobytes of RAMand tenth of kilobytes of program memory with whomonly simple data processing algorithms can be implemented. However the overall computational power of the WNS can be very large since the network presents a high degree of parallelism that can be exploited through the adoption of ad-hoc techniques. Furthermore through the fusion of information from the dense mesh of sensors even complex phenomena can be monitored. In this dissertation we present our results in building several AmI applications suitable for a WSN implementation. The work can be divided into two main areas:Low Power Video Sensor Node and Video Processing Alghoritm and Multimodal Surveillance . Low Power Video Sensor Nodes and Video Processing Alghoritms In comparison to scalar sensors, such as temperature, pressure, humidity, velocity, and acceleration sensors, vision sensors generate much higher bandwidth data due to the two-dimensional nature of their pixel array. We have tackled all the constraints listed above and have proposed solutions to overcome the current WSNlimits for Video sensor node. We have designed and developed wireless video sensor nodes focusing on the small size and the flexibility of reuse in different applications. The video nodes target a different design point: the portability (on-board power supply, wireless communication), a scanty power budget (500mW),while still providing a prominent level of intelligence, namely sophisticated classification algorithmand high level of reconfigurability. We developed two different video sensor node: The device architecture of the first one is based on a low-cost low-power FPGA+microcontroller system-on-chip. The second one is based on ARM9 processor. Both systems designed within the above mentioned power envelope could operate in a continuous fashion with Li-Polymer battery pack and solar panel. Novel low power low cost video sensor nodes which, in contrast to sensors that just watch the world, are capable of comprehending the perceived information in order to interpret it locally, are presented. Featuring such intelligence, these nodes would be able to cope with such tasks as recognition of unattended bags in airports, persons carrying potentially dangerous objects, etc.,which normally require a human operator. Vision algorithms for object detection, acquisition like human detection with Support Vector Machine (SVM) classification and abandoned/removed object detection are implemented, described and illustrated on real world data. Multimodal surveillance: In several setup the use of wired video cameras may not be possible. For this reason building an energy efficient wireless vision network for monitoring and surveillance is one of the major efforts in the sensor network community. Energy efficiency for wireless smart camera networks is one of the major efforts in distributed monitoring and surveillance community. For this reason, building an energy efficient wireless vision network for monitoring and surveillance is one of the major efforts in the sensor network community. The Pyroelectric Infra-Red (PIR) sensors have been used to extend the lifetime of a solar-powered video sensor node by providing an energy level dependent trigger to the video camera and the wireless module. Such approach has shown to be able to extend node lifetime and possibly result in continuous operation of the node.Being low-cost, passive (thus low-power) and presenting a limited form factor, PIR sensors are well suited for WSN applications. Moreover techniques to have aggressive power management policies are essential for achieving long-termoperating on standalone distributed cameras needed to improve the power consumption. We have used an adaptive controller like Model Predictive Control (MPC) to help the system to improve the performances outperforming naive power management policies.
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In un'epoca in cui l'informatizzazione si diffonde a macchia d'olio in ogni aspetto della vita quotidiana e la possibilità di essere connessi ad internet risulta vitale per aggiornarsi o anche semplicemente per mantenere contatti è possibile e allo stesso tempo necessario cercare di sfruttare la rete nel migliore dei modi in ambito lavorativo, per migliorare i propri prodotti e cercando di offrire all'utente beni e servizi sempre migliori, al passo coi tempi e col pensiero moderno. É in questo ambiente che la connettività si rende necessaria anche nel settore dell'automobile in modo da gestire in maniera efficiente l'enorme quantità di dati scambiati dalle varie sottoparti del sistema il cui compito è quello di supervisionare i componenti elettronici e meccanici. L'obiettivo è quello quindi di centralizzare ed elaborare le informazioni in modo da semplificare ed ottimizzare la gestione del veicoli per ottenere importanti vantaggi dalla fase di test fino a quella di utilizzo, passando per quella di manutenzione. Per questo risulta fondamentale, nell'epoca in cui viviamo, concedere la possibilità al veicolo di interagire con la rete internet in modo da poter sfruttare tutti i vantaggi comunicativi, siano essi con l'ambiente circostante o con persone, che essa prevede. Una volta quindi trovato il modo di interfacciarsi con la rete e sviluppato un software adeguato è fondamentale implementare fisicamente il dispositivo in modo da ottenere un dispositivo altamente integrabile nel sistema veicolo in modo da non alterare in maniera significativa la disposizione dei componenti di base (meccanici, elettrici ed elettronici) dell'automobile elettrica. È in quest'ottica che s'inserisce il progetto di una scheda per una vera e propria telemetria del veicolo elettrico con l'obiettivo di ottenere un sistema ad hoc, ma che mantenga una molteplicità di interfacce che permettano al dispositivo di rimanere aggiornato con l'evoluzione in atto relativa alle tecniche e ai protocolli (standard) di comunicazione permettendo quindi comunicazioni tramite rete ethernet, Wi-Fi o GPRS, cercando anche di sfruttare sistemi di posizionamento come il GPS. Per questo motivo si è cercato di realizzare la scheda seguendo la filosofia dei sistemi embedded, architetture il cui compito è quello di eseguire operazioni molto specifiche spesso con vincoli sull'esecuzione in tempo reale. Questo permette di ridurre al minimo l'hardware in termini di spazio, consumo e costo di realizzazione. Queste dispositivi si sono evoluti recentemente virando sulla creazione di architetture modulari che permettono il riutilizzo delle risorse disponibili; in questo modo si ottengono comunque dispositivi ottimizzati ma in grado di mantenere un certo tipo di flessibilità nello sviluppo delle applicazioni e allargando quindi lo spettro dei possibili impieghi. Secondo questi principi si è cercato quindi di realizzare la scheda in modo che implementasse e realizzasse il software dedicato alla comunicazione del veicolo con internet ma che, grazie all'hardware a disposizione, potesse essere programmata da mani esperte anche per numerosi utilizzi alternativi e resa quindi disponibile all'utente finale in possibili forme. In questo è risultato fondamentale l'utilizzo della piattaforma Arduino, basata sul microcontrollore ATmega328, che permette appunto una rapida espansione fisica del sistema.