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AbstractTwo‐photon polymerization (2PP) additive manufacturing (AM) utilizes feedstocks of ceramic nanoparticles of a few nanometers in diameter, enabling the fabrication of highly accurate technical ceramic design with structural details as small as 500 nm. The performance of these materials is expected to differ from conventional AM ceramics, as nanoparticles and three‐dimensional printing at high resolution introduce new microstructural aspects. This study applies 2PP‐AM of yttria‐stabilized zirconia to investigate the mechanical response behavior under compressive load, probing the influence of smallest structural units induced by the line packing during the printing process, design of sintered microblocks, and sintering temperature and thereby microstructure. We find a dissipative mechanical response enhanced by sintering at lower temperatures than conventional. The pursued 2PP‐AM approach yields a microstructured material with an increased number of grain boundaries that proposedly play a major role in facilitating energy dissipation within the here printed ceramic material. This microplastic response is further triggered by the filigree structures induced by hollow line packing at the order of the critical defect size of ceramics. Together, these unique aspects made accessible by the 2PP‐AM approach contribute to a heterogeneous nano‐ and microstructure, and hint toward opportunities for tailoring the mechanical response in future ceramic applications.
Conceptually, high-precision manufacturing is a sequence of production and measurement steps, where both kinds of steps require to use non-deterministic models to represent production and measurement tolerances. This paper demonstrates how to effectively represent these manufacturing processes as Partially Observable Markov Decision Processes (POMDP) and derive an offline strategy with state-of-the-art Monte Carlo Tree Search (MCTS) approaches. In doing so, we face two challenges: a continuous observation space and explainability requirements from the side of the process engineers. As a result, we find that a tradeoff between the quantitative performance of the solution and its explainability is required. In a nutshell, the paper elucidates the entire process of explainable production planning: We design and validate a white-box simulation from expert knowledge, examine state-of-the-art POMDP solvers, and discuss our results from both the perspective of machine learning research and as an illustration for high-precision manufacturing practitioners.
Helical springs with a rectangular cross-section have been machined from sintered and grinded hollow cylinders with high geometrical precision and good reproducibility. Such springs made from tetragonal zirconia polycrystal (TZP) ceramic show excellent edge quality because of high fracture toughness and bending strength of the starting material. Hence, springs with desired geometric dimension and tailored spring constant can be manufactured for highly demanding applications at high temperatures and in harsh environments.
Prior to any practical use, application limits of springs under mechanical and thermal load have to be analyzed. Therefore, different displacement experiments were carried out on the helical TZP springs.
- Dynamic displacement tests at various temperatures from -15°C to +60°C using a piezo actor to load/unload springs with frequencies between 1 and 40 Hz: Springs remained undamaged and the spring constants were not altered, even after more than one million cycles of compression loading.
- Long-time displacement measurements under static tensile loading at room temperature with a high-precision interferometer test facility: Significant spring elongation under constant strain was surprisingly proved over a period of many hours already at room temperature.
- Creeping experiments for 48 h under static compression load at different temperatures up to 1000 °C: After cooling down and load removing no permanent length reduction of springs was observed for test temperatures up to 700 °C. However, reshaping of TZP springs by plastic deformation is possible at higher temperatures and opens up additional possibilities for spring design and manufacturing.
The book „Electropolishing“ by M. Buhlert is dealing with the electrolytic brightening, smoothing and deburring of technical materials like steel, copper, brass, aluminum, titanium and magnesium. The book content covers the basics and the main influencing parameters of the electropolishing process and provides detailed and application orientated procedure information for technical relevant materials.
After a brief introduction into the topic of electrolytic polishing in the first chapter, the author gives a detailed description of the basic electrochemical reaction mechanisms in the second chapter. The reader will also be informed about the physical and chemical parameters, which control the electrochemical removal process. Additionally, the author reports about the advantages and disadvantages of electropolishing.
The third chapter provides a detailed insight into the influencing manufacturing parameters affecting the results of the electropolishing process. Distinct aspects of the manufacturing e.g. workpiece preparation, electrolyte composition, polishing time, electrolyte temperature and alloy compositions will be discussed in detail by the author.
In the fourth and fifth chapter, the author gives useful hints and information about the parameter variation and the suitable handling of hull cells for the optimization of the removal process, followed by a particular overview about material specific electrolyte mixtures for common-used technical metals and alloys, like steel, aluminum, brass, magnesium, copper and titanium.
The sixth chapter of the book provides many selected manufacturing results and investigations on electropolishing of different metals and alloys, which allows the reader the opportunity to develop a systematic understanding of the topic and to adopt the knowledge on the optimization of his own electropolishing process.
Finally, the book concludes with a brief chapter about some remarks with respect to the work safety and environmental efforts.
In summary, this book contains a very detailed and clear arranged overview about the electropolishing method for the surface optimization process. For this reason, it is a suitable and useful lecture for people, which want to take an in depth look into the topic in order to start using this method or are interested in optimize their existing electropolishing processes.