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Статті в журналах з теми "Firming complex processing of materials"
Marhunova, Alena Mikhailovna, Liudmila Mikhailovna Paulouskaya, Diana Anatolievna Safronova, and Tatyana Ivanovna Drobilina. "NFLUENCE OF FIRMING AGENTS OF STRUCTURE OF FRUIT AND VEGETABLES OF TINNED PRODUCTION." Food Industry: Science and Technology 14, no. 3(53) (September 14, 2021): 79–88. http://dx.doi.org/10.47612/2073-4794-2021-14-3(53)-79-88.
Повний текст джерелаDaminev, R. R., and M. Kh Kurbangaleeva. "Complex processing of phosphogypsum." IOP Conference Series: Earth and Environmental Science 981, no. 4 (February 1, 2022): 042021. http://dx.doi.org/10.1088/1755-1315/981/4/042021.
Повний текст джерелаLishtvan, I. I., U. M. Dudarchyk, V. M. Kraiko, A. V. Anufryieva, and N. A. Bulgakova. "Processing raw materials of Slavnoe peat deposit." Proceedings of the National Academy of Sciences of Belarus, Chemical Series 56, no. 2 (June 7, 2020): 212–19. http://dx.doi.org/10.29235/1561-8331-2020-56-2-212-219.
Повний текст джерелаShi, Zhuo’er, and Zheng Bao. "Group-normalized processing of complex wavelet packets." Science in China Series E: Technological Sciences 40, no. 1 (February 1997): 28–43. http://dx.doi.org/10.1007/bf02916588.
Повний текст джерелаGordienko, P. S., V. A. Dostovalov, and E. V. Pashnina. "Hydrofluoride Method of Complex Processing of Titanium-Containing Raw Materials." Solid State Phenomena 265 (September 2017): 542–47. http://dx.doi.org/10.4028/www.scientific.net/ssp.265.542.
Повний текст джерелаSevostyanov, M. V., V. S. Sevostyanov, A. V. Osokin, and I. G. Martakov. "Theory and practice of complex processing of technogenic fibrous materials." IOP Conference Series: Materials Science and Engineering 327 (March 2018): 032035. http://dx.doi.org/10.1088/1757-899x/327/3/032035.
Повний текст джерелаYamato, Masafumi, and Tsunehisa Kimura. "Magnetic Processing of Diamagnetic Materials." Polymers 12, no. 7 (July 3, 2020): 1491. http://dx.doi.org/10.3390/polym12071491.
Повний текст джерелаLoginova, I. V., M. V. Kharina, Z. A. Kanarskaya, M. N. Meshcheryakova, and N. Z. Dubkova. "Complex processing of plant raw materials for furfural and glucose production." IOP Conference Series: Earth and Environmental Science 677, no. 5 (March 1, 2021): 052014. http://dx.doi.org/10.1088/1755-1315/677/5/052014.
Повний текст джерелаKhazael, Behnam, Hadi Tabatabaee Malazi, and Siobhan Clarke. "Complex Event Processing in Smart City Monitoring Applications." IEEE Access 9 (2021): 143150–65. http://dx.doi.org/10.1109/access.2021.3119975.
Повний текст джерелаKovalevskyy, S., and O. Kovalevska. "MAGNETIC RESONANCE PROCESSING OF MATERIALS." Odes’kyi Politechnichnyi Universytet Pratsi 3, no. 62 (December 2020): 29–38. http://dx.doi.org/10.15276/opu.3.62.2020.04.
Повний текст джерелаДисертації з теми "Firming complex processing of materials"
Костик, Катерина Олександрівна. "Наукові основи технологій поверхневого зміцнення деталей машин порошковими сумішами керованого складу". Thesis, Національний технічний університет "Харківський політехнічний інститут", 2019. http://repository.kpi.kharkov.ua/handle/KhPI-Press/42416.
Повний текст джерелаThe thesis for the scientific degree of doctor of technical sciences, specialty 05.02.08 – technology of mechanical engineering (13 – mechanical engineering). – National Technical University "Kharkiv Polytechnic Institute", Kharkiv, 2019. In the thesis a set of studies was aimed at solving an important scientific and technical problem in the field of engineering technology: the development of innovative and short-term technologies of machine parts surface hardening with controlled composition powder mixtures to ensure the performance properties of products at a high level with a significant reduction in the cost of their production. The scientific novelty of the results lies in the development of scientific foundations of innovative and short-term technologies of surface hardening of machine parts by powder mixtures of controlled composition, which allowed to solve the actual scientific and practical problem of increasing the service life of machine parts and tools: - for the first time, local maxima of surface hardness and depth of diffusion layers of alloys were calculated and theoretical optimal conditions of diffusion hardening processes were established, which allows obtaining specific technological parameters of the chemical and heat treatment (CHT) process and providing optimal characteristics of diffusion layers; - for the first time created mathematical models and nomograms of existing technologies of surface hardening of steels, which allowed to determine the specific conditions of the CHT process (temperature and duration), based on a given depth of the diffusion layer or surface hardness of steels, which significantly affects the effectiveness of the implementation of strengthening processes; - for the first time through the use of innovative technologies and systems analysis at minimal cost, developed a general methodological approach for control of technological processes of surface hardening of parts by the powder mixtures of controlled composition at saturation of surface layers with nitrogen, carbon and boron, it is possible to improve the performance properties of products with a significant reduction in the CHT duration; – further development of the developed CHT complex, which significantly reduces the fragility of boriding layers due to a more gradual decrease in hardness from the surface to the core products of steels, thus improving the operational properties of the goods and service life of machine parts and tools in contrast to known methods of the CHT, which only increase surface hardness; - for the first time, a mathematical model of temperature distribution over the depth of the diffusion layer was developed, which made it possible to determine the nature of the dependences and obtain data on the temperature distribution over the depth of the product at different processing modes; – improved boriding technology with pastes of titanium alloys through the use of nanodispersed saturating environment, thereby reducing the boriding process to 2-3 times and to shorten the manufacturing process of components by combining two operations: boriding and hardening a titanium alloy; - solutions of boundary-value problems of diffusion by the boundary element method are proposed, which allowed for the first time to create a mathematical model of the distribution of boron concentration over the thickness of the hardened layer of a titanium alloy; - the technology of intensification of processes by CHT of heating by high-frequency currents and by means of preliminary laser processing of details was improved, which allowed to obtain high performance properties of surface layers with a significant reduction in the duration of treatments. The practical value of the work is to develop a technology of combined hardening of the surface layers of alloys making parts. The following practical results are obtained on the basis of a set of theoretical and experimental studies, formulated principles, regularities and the following practical results are obtained: 1. Method of combined processing of steel products, including advanced laser processing of material surface with the laser radiation power of -1.0±0.1 kW, the speed of movement of the laser beam of 0.5–1.5 m/min with subsequent nitriding. In addition, the nitriding is carried out in an environment of melamine with 3 to 5 % of sodium fluoride at a temperature of 530-560 °C for 2–3 hours (the patent of Ukraine No. 111066). 2. Method diffusion boriding steel products, including pre-application to the surface of the coating, which includes boriding substance, the activator sodium fluoride and a binder solution of glue BF in acetone, and heating by high frequency currents. In the coating as boriding substance use polyboride magnesium or amorphous boron, and optionally an activator is introduced lithium fluoride (the patent of Ukraine No. 116177). 3. Method of surface hardening steel parts comprising coating the surface of the part coating, which' is included boriding substance and activator, drying and heating by high frequency currents. In the coating as boriding substance use amorphous boron activator and lithium fluoride. The heating is carried out at a temperature of 800-1100 °C for 1-5 minutes (the patent of Ukraine No. 116178). 4. A method of producing a solid coating on the surface of steel products, including pre-processing the surface of the material and boriding. Carry out a preliminary laser treatment of the surface of the material with subsequent boriding in the environment polyboride magnesium, activators: sodium fluoride and lithium fluoride (the patent of Ukraine No. 116116). 5. The iron-based alloy with shape memory effect, contains: iron, manganese, silicon, carbon, chromium, nickel, cobalt, copper, vanadium, niobium, molybdenum. In this case, the alloy additionally introduced sulfur and phosphorus (weights. %): the manganese from 4 to 20; silicon 1.0 to 4.5; carbon 0.1 to 1.0; chromium, 10.0 to 25.0; nickel 1.0-10.0; cobalt 1.0-10.0; copper 1.0-4.0; vanadium 0.5 to 2.0; niobium from 0.3 to 1.5; molybdenum from 0.5 to 2.0; sulfur up to 0.01; phosphorus up to 0,045; iron-rest (the patent of Ukraine No. 116117). 6. Сomposition for boriding steel products containing amorphous boron, tetrafluoroborate potassium, boron nitride and dolomite (the patent of Ukraine No. 117775). 7. Method of surface hardening of titanium alloys, including a saturation of the surface layers of components boron environment, which includes boriding substance and the activator, and heating. The saturation of the surface layers is performed by components boron environment that consists of amorphous boron and lithium fluoride (the patent of Ukraine No. 117770). 8. The dispersion hardening iron-based alloy with shape memory effect, contains: iron, manganese, silicon, carbon, vanadium, niobium, tungsten. Included aluminum, copper, nickel, chromium, sulfur and phosphorus (the patent of Ukraine No. 117757). 9. Developed technological processes were introduced to improve the surface hardness of steel products at the limited liability company "ASTIL M" (Kharkіv), improving the durability of the sleeve by 1.5 times after nitrocarburizing, 4.3-fold after successive nitrocarburizing and boriding, 5 times after carburizing, nitrocarburizing and boriding and 2 times after boriding with microwave heating compared to a sleeve without surface hardening (the implementation Act from 05.10.2017). 10. Developed technological processes of the combined consolidation was implemented to improve surface hardness of steel products at Public company «Kharkiv machine-building plant "SVET SHAKHTYORA" (Kharkiv). Production tests have proved that the proposed effective technological processes of the combined hardening of surface layers of steel products will significantly accelerate the technological processes of chemical heat treatment in 2-10 times, led to reduced costs for them by saving electrical energy (the implementation Act from 17.10.2017). 11. Developed technological processes have been introduced at the limited liability company "Scientific-production Centre of the European mechanical engineering technology" (Kharkiv), thus improving the durability of the sleeve by 1.5 times after nitrocarburizing, 4.3-fold after successive nitrocarburizing and boriding (the implementation Act from 31.10.2017). 12. Adopted for implementation in production of developed nomograms that allow to define specific conditions of gas nitriding (temperature and duration) based on the desired depth of nitrided layer or the surface hardness of products of steel 38Cr2MoAl at Public company "Kharkiv machine-building plant «SVET SHAKHTYORA" (Kharkiv). Determined that the proposed nomograms greatly simplified the work of the engineer and these nomograms allowed to solve the inverse problem, to estimate the possible thickness of the hardened layer and surface hardness, at the same time of temperature and duration of gas nitriding (the implementation Act from 15.11.2017). 13. Developed an effective technological process of nitrocarburizing in microdisperse powder mixture to improve the operational stability of the toothed wheel of steel 38Cr2MoAl at private joint stock company "Kharkiv Tractor Plant". The use of microdisperse mixture accelerated the process of chemical-heat treatment by 1,5-2 times while getting the properties of the surface layer of the product such as after the nitrocarburizing, which reduced the costs of conducting chemical-thermal treatment by 2 times (the implementation Act from 24.01.2018). 14. The developments made in the thesis introduced in the educational process for students of mechanical engineering faculty of NTU "KhPI" special 131 "Applied mechanics" specialization 131-09 "Equipment and technology of foundry" and 151 "Automation and computer integrated technologies" specialization 151-07 "Computerized control of technological processes" (the implementation Act from 20.12.2017).
Lints, Martin. "Optimised Signal Processing for Nonlinear Ultrasonic Nondestructive Testing of Complex Materials and Biological Tissues." Thesis, Bourges, INSA Centre Val de Loire, 2017. http://www.theses.fr/2017ISAB0001/document.
Повний текст джерелаIn this thesis the possibility of nonlinear ultrasonic NDT is investigated for complex materials and biological tissues. The delayed TR-NEWS signal processing methodis developed, which is based on the TR-NEWS method. TR-NEWS is a method well-suited for materials with complex structure: it allows spatio-temporal focusing of a long ultrasonic chirp signal to the region near the receiving transducer, forming an impulse pulse. The received signal power and SNR are increased as a result.Delayed TR-NEWS allows the use of this focused wave pulse as a new basis for either the signal optimisation or, alternatively, for the detection of nonlinearity by the breakdown of linear superposition. This method is used in physical experiments and simulations. The physical experiments are made on an undamaged CFRP block and a porcine skin sample. The skin is tested in a synchronised acoustomechanical setup specially designed in the course of this thesis. In 1D pseudospectral simulations for CFRP, it is determined that while classical nonlinearity cannot probably be detected in ultrasonic NDT, it could be possible to detect nonclassical nonlinear effects such as those from cracks and microdamage.Physical experiments and 2D FEM simulations of linear, undamaged CFRP are compared for studying the delayed TR-NEWS method, its applicability in optimising the focused wave, and also for creating an interaction of waves at the focusing region with a linear superposition prediction. This suggests the possibility of detecting nonlinearities by comparing the actual signal from interaction to the linear prediction.Finally, more 2D simulations are conducted for CFRP with a single contact gap nonlinearity near the focusing region. The nonlinearity is measured by PI and delayed TR-NEWS. It is determined that delayed TR-NEWS is able to detect the defect at least as well as the PI method. It is ascertained that the PM hysteresis model could describe the nonclassical nonlinearity of damaged materials and biological tissues. Asynchronised acoustomechanical test setup is created to test such multiscale nonlinearity. The simultaneous mechanical load test and ultrasonic delayed TR-NEWS test can be used to measure the mechanical properties of skin
Deaver, Emily. "Processing of Novel 3D Printing Materials and Facilitation of 3D Printing for Enhanced Mechanical and Structural Stability." University of Akron / OhioLINK, 2020. http://rave.ohiolink.edu/etdc/view?acc_num=akron1596807411218629.
Повний текст джерелаYu, Xiaoyang. "Dynamic acoustic emission for the characterization of the nonlinear behavior of complex materials." Thesis, Le Mans, 2020. http://www.theses.fr/2020LEMA1019.
Повний текст джерелаAcoustic emission (AE) is well known to be an efficient structural health monitoring technique to detect the creation and propagation of micro-cracks within structural materials such as concrete or composites when submitted to quasi-static stresses. Based on adequate signal processing methods, different research studies have established links between the detected AE hits and the created micro-damages. Other works have shown that it is possible to correlate the relaxation time in composites and the energy of the damage mechanisms measured during the quasi-static loading using the recorded AE hits. This thesis proposes to use an original experimental protocol to probe the nonlinear relaxation of concrete samples at the intact and damaged states. This protocol is based on the use of AE to passively probe the nonlinear relaxation of concrete samples instead of the weak amplitude signal usually used in slow dynamics experiments. Results show that passive and active probing methods lead to equivalent relaxation times. Furthermore, AE probing reveals the existence of a ‘silence period’ during the first minutes of the nonlinear relaxation after which AE hits start to be detected. In addition, the characteristics of AE hits recorded during the passive relaxation showed a clear resemblance to those obtained during the damaging of the same samples, where shear and compression mechanisms are involved. For the clustering of the AE hits, in addition to use of an unsupervised pattern recognition approach to cluster the detected AE hits, this work proposes a novel ‘image- based AE classification’ approach based on continuous wavelet transform (CWT) and convolutional neural network (CNN). Results related to the nonlinear dynamic and quasi-static AE data show that both signal processing approaches have high classification accuracy, which represents a great interest in the development of dynamic AE methods in the presence of micro-cracks
Книги з теми "Firming complex processing of materials"
B, Spillman William, and Society of Photo-optical Instrumentation Engineers., eds. Complex adaptive structures: 4-6 June 2001, Hutchinson Island, USA. Bellingham, Wash., USA: SPIE, 2001.
Знайти повний текст джерелаOffice, General Accounting. Nuclear materials: Plutonium processing in the nuclear weapons complex : fact sheet for the Chairman, Environment, Energy, and Natural Resources Subcommittee, Committee on Government Operations, House of Representatives. Washington, D.C: U.S. General Accounting Office, 1992.
Знайти повний текст джерелаF, Hemment P. L., Symposium C on Pushing the Limits of Ion Beam Processing-from Engineering to Atomic Scale Issues (1995 : Strasbourg, France), and Symposium H on Advanced Deposition Processes and Characterization of Protective Coatings (1995 : Strasbourg, France), eds. Ion beam processing of materials and deposition processes of protective coatings: Proceedings of Symposium J on Correlated Effects in Atomic and Cluster Ion Bombardment and Implantation, Symposium C on Pushing the Limits of Ion Beam Processing-from Engineering to Atomic Scale Issues, and Symposium H on Advanced Deposition Processes and Characterization of Protective Coatings of the 1995 E-MRS Spring Conference, Strasbourg, France, May 22-26, 1995. Amsterdam: Elsevier, 1996.
Знайти повний текст джерелаFokin, Sergey. Improvement of technical means for processing waste from logging operations for fuel chips in felling conditions. ru: INFRA-M Academic Publishing LLC., 2017. http://dx.doi.org/10.12737/24135.
Повний текст джерелаBiomimetics: Design and Processing of Materials (Aip Series in Polymers and Complex Materials). American Institute of Physics, 1993.
Знайти повний текст джерелаModeling complex engineering structures. Reston, VA: ASCE Press, 2005.
Знайти повний текст джерелаModeling complex engineering structures. Reston, Va: ASCE Press, 2007.
Знайти повний текст джерела(Editor), Robert E. Melchers, and Richard Hough (Editor), eds. Modeling Complex Engineering Structures. American Society of Civil Engineers, 2007.
Знайти повний текст джерелаMaterials Processing by Cluster Ion Beams: History, Technology, and Applications. Taylor & Francis Group, 2015.
Знайти повний текст джерелаHan, Chang Dae. Rheology and Processing of Polymeric Materials: Volume 1: Polymer Rheology. Oxford University Press, 2007. http://dx.doi.org/10.1093/oso/9780195187823.001.0001.
Повний текст джерелаЧастини книг з теми "Firming complex processing of materials"
Zaghete, Maria A., Leinig A. Perazolli, Gisane Gasparotto, Glauco M. M. M. Lustosa, Glenda Biasotto, Guilhermina F. Teixeira, Natalia Jacomaci, Rafael A. C. Amoresi, and Silvia L. Fernandes. "Multifunctional Complex Oxide Processing." In Recent Advances in Complex Functional Materials, 3–41. Cham: Springer International Publishing, 2017. http://dx.doi.org/10.1007/978-3-319-53898-3_1.
Повний текст джерелаLanglois, W. E. "Modeling the Hydrodynamics of Materials Processing." In Modeling Complex Phenomena, 231–54. New York, NY: Springer New York, 1992. http://dx.doi.org/10.1007/978-1-4613-9229-3_11.
Повний текст джерелаPoirier, D. R., and G. H. Geiger. "Turbulent and Complex Flows." In Transport Phenomena in Materials Processing, 75–112. Cham: Springer International Publishing, 2016. http://dx.doi.org/10.1007/978-3-319-48090-9_3.
Повний текст джерелаPannirselvam, M., R. K. Gupta, S. N. Bhattacharya, and R. A. Shanks. "Intercalation of Montmorillonite by Interlayer Adsorption and Complex Formation." In Advanced Materials and Processing IV, 295–98. Stafa: Trans Tech Publications Ltd., 2007. http://dx.doi.org/10.4028/0-87849-466-9.295.
Повний текст джерелаPoirier, E. J., and D. R. Poirier. "Turbulent Flow and Complex Flows." In Solutions Manual To accompany Transport Phenomena in Materials Processing, 38–62. Cham: Springer International Publishing, 2016. http://dx.doi.org/10.1007/978-3-319-65130-9_3.
Повний текст джерелаHumphreys, N. J., D. McBride, T. N. Croft, D. M. Shevchenko, N. R. Green, and M. Cross. "Modeling of Centrifugal Casting Processes with Complex Geometries." In CFD Modeling and Simulation in Materials Processing, 187–96. Hoboken, NJ, USA: John Wiley & Sons, Inc., 2012. http://dx.doi.org/10.1002/9781118364697.ch22.
Повний текст джерелаLis, Jerzy. "Combustion Synthesis (SHS) of Complex Ceramic Materials." In Advanced Processing and Manufacturing Technologies for Structural and Multifunctional Materials VII, 57–67. Hoboken, NJ, USA: John Wiley & Sons, Inc., 2013. http://dx.doi.org/10.1002/9781118807965.ch7.
Повний текст джерелаRao, Katragadda Sarveswara. "Recent Trends in the Processing of Complex Sulphide Ores." In T.T. Chen Honorary Symposium on Hydrometallurgy, Electrometallurgy and Materials Characterization, 651–62. Hoboken, NJ, USA: John Wiley & Sons, Inc., 2012. http://dx.doi.org/10.1002/9781118364833.ch60.
Повний текст джерелаOkanigbe, Daniel Ogochukwu, Abimbola Patricia Popoola, Nicholas Malatji, Tsietsi Lesufi, and Gift Sekgobela. "Bionanomining: A Revised Insight into Processing of South Africa’s Complex Gold Ores." In The Minerals, Metals & Materials Series, 189–200. Cham: Springer International Publishing, 2022. http://dx.doi.org/10.1007/978-3-030-92662-5_19.
Повний текст джерелаJiang, Dongliang. "Gelcasting of High Performance Carbide Ceramics with Larger Size/Complex Shape." In Advanced Processing and Manufacturing Technologies for Structural and Multifunctional Materials IV, 195–211. Hoboken, NJ, USA: John Wiley & Sons, Inc., 2010. http://dx.doi.org/10.1002/9780470944066.ch19.
Повний текст джерелаТези доповідей конференцій з теми "Firming complex processing of materials"
Al Masud, Md, Anil Erol, Connor Edson, Zoubeida Ounaies, and Paris vonLockette. "Towards complex microarchitectural nanocomposites using non-uniform multi-field processing." In Behavior and Mechanics of Multifunctional Materials XIII, edited by Hani E. Naguib. SPIE, 2019. http://dx.doi.org/10.1117/12.2515259.
Повний текст джерелаCao, BaoShan. "Digital Image Processing of Urban Complex Thermal Environment." In 2016 4th International Conference on Machinery, Materials and Information Technology Applications. Paris, France: Atlantis Press, 2016. http://dx.doi.org/10.2991/icmmita-16.2016.272.
Повний текст джерелаYun-Ming, Zhu, Sio Sei-Hoi, Yan Yong-Nian, and Fong Xiao-Wen. "Stereolithography for toy prototypes with complex geometries." In ICALEO® ‘95: Proceedings of the Laser Materials Processing Conference. Laser Institute of America, 1995. http://dx.doi.org/10.2351/1.5058911.
Повний текст джерелаOmatsu, Takashige. "Optical vortex materials processing enables the fabrication of chiral structures (Conference Presentation)." In Complex Light and Optical Forces XII, edited by David L. Andrews, Enrique J. Galvez, and Jesper Glückstad. SPIE, 2018. http://dx.doi.org/10.1117/12.2288053.
Повний текст джерелаVolik, V. G., D. Yu Ismailova, C. V. Zynoviev, O. N. Yerokhina, V. S. Lukashenko, and I. P. Saleeva. "Complex usage of poultry processing recyclable materials in broiler feeding." In SCIENTIFIC AND TECHNICAL SUPPORT EFFICIENCY AND QUALITY PRODUCTION OF AGRICULTURAL PRODUCTS. VNIIPP, 2019. http://dx.doi.org/10.30975/978-5-9909889-2-7-2019-1-1-43-57.
Повний текст джерелаCantello, M., D. Cruciani, and E. Ramous. "Optics for laser treatment of complex geometry components." In ICALEO® ‘86: The Changing Frontiers of Laser Materials Processing. Laser Institute of America, 1986. http://dx.doi.org/10.2351/1.5057848.
Повний текст джерелаHennigs, Christian, Alexander Brodesser, Stefan Kaierle, Michael Hustedt, and Robert Grafe. "Mobile laser cutting system for complex rescue operations." In High-Power Laser Materials Processing: Applications, Diagnostics, and Systems VII, edited by Stefan Kaierle and Stefan W. Heinemann. SPIE, 2018. http://dx.doi.org/10.1117/12.2286865.
Повний текст джерелаVinnichenko, A. V., and S. A. Nazarevich. "MODEL OF INTERACTION OF POLYMER MATERIALS PROCESSING IN 3D TECHNOLOGIES." In MODELING AND SITUATIONAL MANAGEMENT THE QUALITY OF COMPLEX SYSTEMS. Saint Petersburg State University of Aerospace Instrumentation, 2021. http://dx.doi.org/10.31799/978-5-8088-1558-2-2021-2-107-111.
Повний текст джерелаMueller-Hummel, Peter, Stefan Ferstl, Marcus Sengotta, and Roland Lang. "Laser beam welding of high stressed, complex aircraft structural parts." In LAMP 2002: International Congress on Laser Advanced Materials Processing, edited by Isamu Miyamoto, Kojiro F. Kobayashi, Koji Sugioka, Reinhart Poprawe, and Henry Helvajian. SPIE, 2003. http://dx.doi.org/10.1117/12.497719.
Повний текст джерелаKesavan, A., M. Deivasigamani, S. John, and I. Herszberg. "Damage criticality assessment in complex geometric structures using static strain response-based signal processing techniques." In Smart Structures and Materials, edited by Alison B. Flatau. SPIE, 2005. http://dx.doi.org/10.1117/12.600403.
Повний текст джерелаЗвіти організацій з теми "Firming complex processing of materials"
Бабець, Євген Костянтинович, Ірина Петрівна Антонік, Ірина Євгенівна Мельникова, and Антон Всеволодович Петрухін. nfluence of Mining and Concentration Works Activity on Land Resources. Petroșani, 2019. http://dx.doi.org/10.31812/123456789/3120.
Повний текст джерелаOvalle, Samuel, E. Viamontes, and Tony Thomas. Optimization of DLP 3D Printed Ceramic Parts. Florida International University, October 2021. http://dx.doi.org/10.25148/mmeurs.009776.
Повний текст джерелаPerdigão, Rui A. P. Information physics and quantum space technologies for natural hazard sensing, modelling and prediction. Meteoceanics, September 2021. http://dx.doi.org/10.46337/210930.
Повний текст джерелаWolf, Eva. Chemikalienmanagement in der textilen Lieferkette. Sonderforschungsgruppe Institutionenanalyse, 2022. http://dx.doi.org/10.46850/sofia.9783941627987.
Повний текст джерела