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  • About
  • The Global ETD Search service is a free service for researchers to find electronic theses and dissertations. This service is provided by the Networked Digital Library of Theses and Dissertations.
    Our metadata is collected from universities around the world. If you manage a university/consortium/country archive and want to be added, details can be found on the NDLTD website.
1

High-Resolution Imaging of Kidney Vascular Corrosion Casts With Nano-CT

Wagner, Roger, Van Loo, Denis, Hossler, Fred, Czymmek, Kirk, Pauwels, Elin, Van Hoorebeke, Luc 01 April 2011 (has links)
A vascular corrosion cast of an entire mouse kidney was scanned with a modular multiresolution X-ray nanotomography system. Using an isotropic voxel pitch of 0.5 μm, capillary systems such as the vasa recta, peritubular capillaries and glomeruli were clearly resolved. This represents a considerable improvement over corrosion casts scanned with microcomputed tomography systems. The resolving power of this system was clearly demonstrated by the unique observation of a dense, subcapsular mat of capillaries enveloping the entire outer surface of the cortical region. Resolution of glomerular capillaries was comparable to similar models derived from laser scanning confocal microscopy. The high-resolution, large field of view and the three-dimensional nature of the resulting data opens new possibilities for the use of corrosion casting in research.
2

Observation and Analysis of Leather Structure Based on Nano-CT

Zhang, Huayong, Cheng, Jinyong, Li, Tianduo, Lu, Jianmei, Hua, Yuai 26 June 2019 (has links)
Content: The composition, working principle and the image acquisition procedure of nano-CT were introduced. A dried piece of blue stock of chrome-tanned cattle hide was chosen for this work and a sequence of 2356 images was obtained. 3D visible digital models (5mm*3.5mm*3.5mm) of leather fiber bundle braided network (Figure 1) and the interspace between fiber bundles (Figure 2) were reconstructed. The inner structure and composition of leather were shown accurately and intuitively in the form of 2D sectional images and 3D image. Based on the 3D model, the diameter, volume, surface area and other parameters of the fiber bundles, the pore structure and inclusions were measured and calculated. Take-Away: 1. 3D visible digital model of leather fiber bundle braided network was reconstructed. 2. The inner structure and composition of leather were shown accurately and intuitively in the form of 2D sectional images and 3D image.
3

Návrh vhodného etalonu délky pro oblast nanometrologie na pracovištích ČMI Brno a CEITEC Brno / Design of a suitable length standard for nanometology at the CMI Brno and CEITEC Brno

Češek, Jakub January 2019 (has links)
The thesis deals with the design of a suitable length standard for nanometrology. This length standard will be used for metrological traceability of the Rigaku nano3DX located at CEITEC Brno and the SIOS NMM-1 device which is located at ČMI Brno. The first part is focused on the description of these measuring instruments, the analysis of their metrological traceability requirements and the requirements for the material length standard. The second part is devoted to the concrete possibilities of the etalon design, 3D printing of the prototype of the standard and verification of its dimensional compatibility. At the end of the thesis, the evaluation and selection of the appropriate standard design is made.
4

Mathematical analysis of the lithium ion transport in lithium ion batteries using three dimensional reconstructed electrodes

Lim, Cheol Woong 05 1900 (has links)
Indiana University-Purdue University Indianapolis (IUPUI) / Computational analysis of lithium ion batteries has been improved since Newman and et al. suggested the porous electrode theory. It assumed the electrode as a simple structure of homogeneous spherical particles. Bruggeman relationship which characterizes porous material by a simple equation was adopted in the homogeneous electrode model instead of the electrode morphology. To improve the prediction of a cell performance, the numerical analysis requires the realistic microstructure of the cell. Based on the experimentally determined microstructure of the positive and negative electrodes of a lithium ion battery (LIB) using x-ray micro/nano-CT technology, three dimensional (3D) simulations have been presented in this research. Tortuosity of the microstructures has been calculated by a linear diffusion equation to characterize the 3D morphology. The obtained tortuosity and porosity results pointed out that the Bruggeman relationship is not sufficiently estimate the tortuosity by the porosity of electrodes. We studied the diffusion-induced stress numerically based on realistic morphology of reconstructed particles during the lithium ion intercalation process. Diffusion-induced stresses were simulated at different C rates under galvonostatic conditions and compared with spherical particles. The simulation results showed that the intercalation stresses of particles depend on their geometric characteristics. The highest von Mises stress and tresca stress in a real particle are several times higher than the stresses in a spherical particle with the same volume. With the reconstructed positive electrode structure, local effects in the LIB cathode electrode during galvanostatic discharge process have been studied. The simulation results reported that large current density usually occurs at the joints between cathode active material particles and in the small channels in electrolyte, which will generate high electric joule power. By using the 3D real image of a LIB cathode electrode, numerical simulation results revealed that the spatial distribution of variable fields such as concentration, voltage, reaction rate, overpotential, and etc. in the cathode electrode are complicated and non-uniform, especially at high discharge rates.
5

Three-dimensional analysis of bone cellular tissue from SR CT Imaging / Analyse tridimensionnelle du tissu cellulaire osseux par tomographie Synchrotron

Dong, Pei 21 February 2014 (has links)
Le système ostéocytaire soulève un intérêt croissant depuis quelques années car il est joue un rôle important dans l'adaptation de l'os. Le système ostéocytaire est inclus dans un réseau poreux dénommé le réseau lacuno-canaliculaire (LCN). L’observation du système ostéocytaire est difficile car les ostéocytes sont profondément enfouies dans la matrice osseuse et difficilement accessible par les techniques optiques. Récemment l’équipe de Creatis a montré la faisabilité d’imager le LCN en 3D grâce à la micro tomographie par rayonnement synchrotron. Toutefois, il n’existe actuellement pas de méthodes d’analyse permettant de quantifier, de façon automatique, le réseau lacuno-canaliculaire en 3D. L’objectif de cette thèse était de développer des méthodes d’analyse d’images permettant d’extraire des paramètres quantitatifs sur le réseau lacuno-canaliculaire. La première partie, consacrée à l’état de l’art. Le chapitre 1 présente les objectifs de ce travail. Le chapitre 2 rappelle les éléments de base sur le tissu osseux et présente les caractéristiques du réseau lacuno-canaliculaire. Le chapitre 3 présente les différentes méthodes d’imagerie utilisées jusqu’à présent pour étudier le réseau lacuno-canaliculaire. Le chapitre 4 présente l’état de l’art sur les paramètres qui sont classiquement utilisés pour caractériser le réseau lacuno-canaliculaire. La seconde partie est consacrée aux contributions de ce travail. Le chapitre 5 présente les deux systèmes expérimentaux de l’ESRF sur lesquels des images d’échantillons osseux ont été acquises. Le chapitre 6 décrit la méthode développée pour la quantification des lacunes ostéocytaires à partir d’images à l’échelle micrométrique. Elle propose de calculer des paramètres issus des moments géométriques ainsi que des paramètres basés sur la notion de volumes intrinsèques. Les méthodes sont appliquées à une série de 13 échantillons acquis en collaboration avec le Laboratoire d’Imagerie Paramétrique, Paris. Les résultats obtenus sont comparés et discutés par rapport à ceux de la littérature. Le chapitre 7 décrit la quantification des canalicules reliant les ostéocytes à partir d’images à l’échelle sous-micrométrique. En particulier, nous nous sommes intéressées à estimer le nombre de canalicules issues d’une lacune ostéocytaire, paramètre encore jamais mesuré en 3D. L’évolution de ce paramètre en fonction de la distance au centre de la lacune a permis de mettre en évidence et de quantifier la ramification des canalicules. Le chapitre 8 propose l’application des méthodes développées à une série d’échantillons acquis en collaboration le groupe de Sharmila Majumdar à l’université de San Francisco. Dans ce chapitre, nous avons travaillé sur une nouvelle méthode de segmentation du réseau lacuno-canaliculaire basée sur une méthode de chemins géodésiques. Les premiers résultats acquis sur 8 échantillons humains d’âges différents sont présentés. Finalement, le chapitre 9 conclut ce travail et présente des perspectives. / The osteocyte system has raised increasing interest in the recent years, since it is hypothesized to play an important role in orchestrating bone adaptation through mechanosensation and bone mechanotransduction mechanism. The osteocytes are deeply buried within the bone matrix, where their bodies are encysted in cavities called lacunae and their stellular processes are enclosed in tunnels called canaliculi. Together, they formed the lacuno-canalicular network (LCN). The geometry of the LCN is of importance since it is supposed to potentially affect and reflect the viability of the osteocyte and is supposed to be related to biomechanical constraints at the cell level. However, studying the LCN is quite challenging, due to limitations in an ideal imaging modality and the lack of quantitative analysis tools. In this thesis, we propose computational efficient and automated methods to quantify the 3D morphological properties of the LCN from synchrotron radiation (SR) micro / nano-CT images. For image acquisition, we used the SR micro/nano-CT setups installed on beamlines ID19 and ID22 at ESRF. A series of human cortical samples were imaged with spatial resolutions ranging between 3.5 µm to 60 nm. For the 3D assessment of lacunae, we used an image moment-based approach to calculate the volume, length, width, height and anisotropy of each osteocyte lacuna. We employed a fast algorithm to further calculate the surface area, the Euler number and the SMI of each lacuna. Validation of segmentation and experimental results on 13 bone samples are presented. For the 3D assessment of canaliculi, we propose a method to quantify the canalicular ramification around each lacuna. After segmentation, our method first labels each lacuna from the LCN. Then, a signature of the numbers of canaliculi at different distances from the lacunar surface is estimated through the calculation of topological parameters. Validation of this method and statistical results a large 3D SR micro-CT image of a human femoral bone sample are reported. We also improved the segmentation of the canaliculi and illustrated the feasibility of the application on a series of bone samples. We investigated a segmentation approach based on minimum cost paths and geodesic voting. A parallel computation scheme was implemented to reduce the computation times. The LCN was characterized by using the previous methods. Besides, we introduced the parameters from the Voronoi tessellation. Statistical results are reported on 8 large 3D micro-CT images, including around a hundred lacunae and the canaliculi. Future works will concern the improvement of canaliculi segmentation of from images at 300 nm as well as its evaluation and further characterization of LCN from SR CT images at both 300 nm and 50 nm. This work opens many perspectives for a better knowledge of the physiopathology of bone at the cellular scale.
6

Iterative tomographic X-Ray phase reconstruction / Reconstruction tomographique itérative de phase

Weber, Loriane 30 September 2016 (has links)
L’imagerie par contraste de phase suscite un intérêt croissant dans le domaine biomédical, puisqu’il offre un contraste amélioré par rapport à l’imagerie d’atténuation conventionnelle. En effet, le décalage en phase induit par les tissus mous, dans la gamme d’énergie utilisée en imagerie, est environ mille fois plus important que leur atténuation. Le contraste de phase peut être obtenu, entre autres, en laissant un faisceau de rayons X cohérent se propager librement après avoir traversé un échantillon. Dans ce cas, les signaux obtenus peuvent être modélisés par la diffraction de Fresnel. Le défi de l’imagerie de phase quantitative est de retrouver l’atténuation et l’information de phase de l’objet observé, à partir des motifs diffractés enregistrés à une ou plusieurs distances. Ces deux quantités d’atténuation et de phase, sont entremêlées de manière non-linéaire dans le signal acquis. Dans ces travaux, nous considérons les développements et les applications de la micro- et nanotomographie de phase. D’abord, nous nous sommes intéressés à la reconstruction quantitative de biomatériaux à partir d’une acquisition multi-distance. L’estimation de la phase a été effectuée via une approche mixte, basée sur la linéarisation du modèle de contraste. Elle a été suivie d’une étape de reconstruction tomographique. Nous avons automatisé le processus de reconstruction de phase, permettant ainsi l’analyse d’un grand nombre d’échantillons. Cette méthode a été utilisée pour étudier l’influence de différentes cellules osseuses sur la croissance de l’os. Ensuite, des échantillons d’os humains ont été observés en nanotomographie de phase. Nous avons montré le potentiel d’une telle technique sur l’observation et l’analyse du réseau lacuno-canaliculaire de l’os. Nous avons appliqué des outils existants pour caractériser de manière plus approfondie la minéralisation et les l’orientation des fibres de collagènes de certains échantillons. L’estimation de phase, est, néanmoins, un problème inverse mal posé. Il n’existe pas de méthode de reconstruction générale. Les méthodes existantes sont soit sensibles au bruit basse fréquence, soit exigent des conditions strictes sur l’objet observé. Ainsi, nous considérons le problème inverse joint, qui combine l’estimation de phase et la reconstruction tomographique en une seule étape. Nous avons proposé des algorithmes itératifs innovants qui couplent ces deux étapes dans une seule boucle régularisée. Nous avons considéré un modèle de contraste linéarisé, couplé à un algorithme algébrique de reconstruction tomographique. Ces algorithmes sont testés sur des données simulées. / Phase contrast imaging has been of growing interest in the biomedical field, since it provides an enhanced contrast compared to attenuation-based imaging. Actually, the phase shift of the incoming X-ray beam induced by an object can be up to three orders of magnitude higher than its attenuation, particularly for soft tissues in the imaging energy range. Phase contrast can be, among others existing techniques, achieved by letting a coherent X-ray beam freely propagate after the sample. In this case, the obtained and recorded signals can be modeled as Fresnel diffraction patterns. The challenge of quantitative phase imaging is to retrieve, from these diffraction patterns, both the attenuation and the phase information of the imaged object, quantities that are non-linearly entangled in the recorded signal. In this work we consider developments and applications of X-ray phase micro and nano-CT. First, we investigated the reconstruction of seeded bone scaffolds using sed multiple distance phase acquisitions. Phase retrieval is here performed using the mixed approach, based on a linearization of the contrast model, and followed by filtered-back projection. We implemented an automatic version of the phase reconstruction process, to allow for the reconstruction of large sets of samples. The method was applied to bone scaffold data in order to study the influence of different bone cells cultures on bone formation. Then, human bone samples were imaged using phase nano-CT, and the potential of phase nano-imaging to analyze the morphology of the lacuno-canalicular network is shown. We applied existing tools to further characterize the mineralization and the collagen orientation of these samples. Phase retrieval, however, is an ill-posed inverse problem. A general reconstruction method does not exist. Existing methods are either sensitive to low frequency noise, or put stringent requirements on the imaged object. Therefore, we considered the joint inverse problem of combining both phase retrieval and tomographic reconstruction. We proposed an innovative algorithm for this problem, which combines phase retrieval and tomographic reconstruction into a single iterative regularized loop, where a linear phase contrast model is coupled with an algebraic tomographic reconstruction algorithm. This algorithm is applied to numerical simulated data.
7

Návrh vhodného etalonu délky pro nano-CT měřicí přístroj / Design of a suitable length standard for nanp-CT measuring device

Kožiol, Martin January 2020 (has links)
The diploma thesis deals with the design of three length standards, which will serve to ensure metrological traceability between Rigaku nano3DX, SIOS NMM-1, Zeiss UPMC Carat 850 and other devices located at ÚVSSR BUT and CEITEC Brno. The first part of the thesis focuses on the theoretical acquaintance with concepts closely related to the issue of ensuring metrological traceability. In addition, this section deals with computed tomography and the description of individual devices. The second part of the thesis is devoted to design, production process and testing of individual standards. The last part describes the ensuring the calibration of the smallest standard, the so-called Nano standard and the calculation of the uncertainty of measuring its calibrated length. At the end of the thesis, the outputs of these activities are evaluated.

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