Academic literature on the topic 'PCB printed circuit board'
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Journal articles on the topic "PCB printed circuit board"
Petkov, Nikolay, and Malinka Ivanova. "Printed circuit board and printed circuit board assembly methods for testing and visual inspection: a review." Bulletin of Electrical Engineering and Informatics 13, no. 4 (August 1, 2024): 2566–85. http://dx.doi.org/10.11591/eei.v13i4.7601.
Full textHsia, Kuo-Hsien, and Jr-Hung Guo. "Estimation of the PCB Production Process Using a Neural Network." Proceedings of Engineering and Technology Innovation 15 (April 27, 2020): 01–07. http://dx.doi.org/10.46604/peti.2020.4265.
Full textKhan, Noor Mohmmed, Shubhangi Patil, Tushar Diggewadi, and Anand Gudnavar. "Cinch and Sterling Analog Circuits for Laboratory." International Journal of Advanced Research in Electrical, Electronics and Instrumentation Engineering 6, no. 01 (June 25, 2017): 51–58. http://dx.doi.org/10.15662/ijareeie.2017.0601007.
Full textNoor Yulita Dwi Setyaningsih, Moh Rizal, and Budi Cahyo Wibowo. "CNC Plotter Printed Circuit Board." Jurnal Media Elektrik 21, no. 2 (May 8, 2024): 116–22. http://dx.doi.org/10.59562/metrik.v21i2.2145.
Full textLambture, Rahul. "Printed Circuit Board (PCB) Fault Detection." International Journal for Research in Applied Science and Engineering Technology 12, no. 6 (June 30, 2024): 542–48. http://dx.doi.org/10.22214/ijraset.2024.63142.
Full textWang, Qianyue. "A new frontier in electronics manufacturing: Optimized deep learning techniques for PCB image reconstruction." Applied and Computational Engineering 51, no. 1 (March 25, 2024): 267–73. http://dx.doi.org/10.54254/2755-2721/51/20241591.
Full textMyers, Sharon A., Troy D. Cognata, and Hugh Gotts. "FTIR analysis of printed-circuit board residue." Proceedings, annual meeting, Electron Microscopy Society of America 54 (August 11, 1996): 264–65. http://dx.doi.org/10.1017/s0424820100163782.
Full textCraven, Jeffery D., Ariel R. Oldag, and Robert N. Dean. "A Technique for Detecting Moisture Absorption in Printed Circuit Boards." Journal of Microelectronics and Electronic Packaging 17, no. 1 (January 1, 2020): 28–33. http://dx.doi.org/10.4071/imaps.1014123.
Full textUmbetov, S. V., and S. P. Pronin. "COMPREHENSIVE METHOD FOR MONITORING PCB CORROSION PROCESS." Kontrol'. Diagnostika, no. 309 (March 2024): 50–57. http://dx.doi.org/10.14489/td.2024.03.pp.050-057.
Full textSchmidt, H., M. Käß, R. Lichtinger, and M. Hülsebrock. "Model updating for the simulation of surface strains on printed circuit boards considering parameter uncertainty." Journal of Physics: Conference Series 2647, no. 21 (June 1, 2024): 212006. http://dx.doi.org/10.1088/1742-6596/2647/21/212006.
Full textDissertations / Theses on the topic "PCB printed circuit board"
Chan, Ching-Yuen. "Cell controller for printed circuit board assembly rework." Thesis, University of Salford, 1994. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.386432.
Full textWang, Lei. "Printed Circuit Board Design for Frequency Disturbance Recorder." Thesis, Virginia Tech, 2005. http://hdl.handle.net/10919/30917.
Full textThe FDR (Frequency Disturbance Recorder) is a data acquisition device for the power system. The device is portable and can be used with any residential wall outlet for frequency data collection. Furthermore, the FDR transmits calculated frequency data to the web for access by authorized users via Ethernet connection. As a result, Virginia Tech implemented Frequency Monitoring Network (FNET) with these FDR devices. FNET is a collection of identical FDRs placed in different measurement sites to allow for data integration and comparison. Frequency is an important factor for power system control and stabilization. With funding and support provided by ABB, TVA and NSF the FDRs are placed strategically all over the United States for frequency analysis, power system protection and monitoring.
The purpose of this study is to refine the current FDR hardware design and establish a new design that will physically fit all the components on one Printed Circuit Board (PCB). At the same time, the software that is to be implemented on the new board is to be kept similar if not the same as that of the current design. The current FDR uses the Axiom CME555 development board and it is interfaced to the external devices through its communication ports. Even through the CME555 board is able to meet the demands of the basic FDR operations, there are still several problems associated with this design. This paper will address some of those hardware problems, as well as propose a new board design that is specifically aimed for operations of FDR.
Master of Science
Sandron, Marco. "Mils - Stampante per la creazione di PCB (printed circuit board) con polimero." Master's thesis, Alma Mater Studiorum - Università di Bologna, 2019. http://amslaurea.unibo.it/19757/.
Full textmaamoun, Adam. "A SURROGATE MEASURE OF CUSTOMER SATISFACTION IN THE MANUFACTURE OF PRINTED WIRING BOARDS." Doctoral diss., University of Central Florida, 2008. http://digital.library.ucf.edu/cdm/ref/collection/ETD/id/2428.
Full textPh.D.
Department of Industrial Engineering and Management Systems
Engineering and Computer Science
Industrial Engineering PhD
Rajagopal, Abhilash. "Printed circuit board (PCB) loss characterization up-to 20 GHz and modeling, analysis and validation." Diss., Rolla, Mo. : University of Missouri-Rolla, 2007. http://scholarsmine.umr.edu/thesis/pdf/Rajagopal_09007dcc803bf920.pdf.
Full textVita. The entire thesis text is included in file. Title from title screen of thesis/dissertation PDF file (viewed November 26, 2007) Includes bibliographical references (p. 112-113).
Subbarayan, Guhan. "A systematic approach for selection of best PB-free printed circuit board (PCB) surface finish." Diss., Online access via UMI:, 2007.
Find full textAhmed, Ahmed Sabry Eltaher. "High-performance cooling of power semiconductor devices embedded in a printed circuit board." Electronic Thesis or Diss., Lyon, INSA, 2024. http://www.theses.fr/2024ISAL0100.
Full textThe integration of power semiconductor devices within a printed circuit board (PCB) stack is a promising solution to reduce circuit parasitics, simplifying device packaging, and lowering costs. However, the continuous reduction in the chip size of the semiconductors, combined with the low thermal conductivity of the dielectric layers of PCBs, present more thermal challenges, and require more efficient thermal management solutions. The thermal management and cooling solutions must offer low thermal resistance between the chip junction and its environment and be capable of handling a high-power loss density at the chip level without exceeding the upper limit of the chip junction temperature. Most silicon devices are limited to 175°C to account for the temperature limits of packaging materials. The ultimate goal of this thesis is to achieve a power-loss density of 1000 W/cm² without exceeding the junction temperature limit of 175°C. This goal is constrained by other considerations such as low power consumption, compact size and weight, high reliability, low cost, and minimal maintenance. Finally, the cooling solutions studied here must be compatible with PCB manufacturing processes and embedding technology, as we aim to apply them to chips integrated into PCBs. In this research project, two thermal management solutions are studied. First, a graphite heat spreader with high thermal conductivity (1300 W/(m.K) in-plane, and 15 W/(m.K) cross-plane) is integrated into the PCB stack. Second, a heat extraction solution based on water jet impingement cooling technique is implemented to collect heat at the PCB surface. For the heat spreading solution, the junction-to-ambient and junction-to-case thermal resistances values (RthJA and RthJC, respectively) of the PCB variants with embedded diodes and MOSFET chips, are reduced by up to 38 % in RthJA and 30 % in RthJC. For the heat extraction solution, the presented water jet cooler (JIC) experimentally reduces RthJA by 33% compared to a conventional cold plate. The effective heat transfer coefficient (HTC) of the JIC is calculated through simulations and found to be about 43 kW/(m².K) with a pressure drop of 9.7 kPa. This performance allows achieving a power loss density of 865 W/cm² without exceeding the junction temperature limit of 175°C. Increasing the thermal conductivity of the isolation layer by 10 times will allow to reach 993 W/cm² (very close to the target of 1000 W/cm²)
Caillaud, Rémy. "Integration of a 3.3 kW, AC/DC bidirectional converter using printed circuit board embedding technology." Thesis, Lyon, 2019. http://www.theses.fr/2019LYSEI001/document.
Full textWith the endangering of the environment due to the use of fossil fuels, the power electronics market is growing through the years. The number of applications is increasing in numerous field as, for example, transport (electric car, "more electric" aircraft) or energy (photovoltaic, smart grid). Beyond meeting the volume, efficiency and reliability specifications for each application, power electronics should also reduce substantially costs. Today, the managing of the electric energy uses power electronic converters. The conception of a converter is a multiphysic problem. The converter has to ensure electrical functionality, mechanical support and proper thermal management.The new wide-band gap components are limited in performance by their package. The integration of a converter should use new interconnection methods to avoid the use of packaged components. The trend is to integrate the maximum of components into a single system. This integration can offer benefits such as size and weight reduction, cost saving and reliability improvement by managing the complexity and the high density of interconnection. Among many integration technologies available, Printed Circuit Board (PCB) is well known in the industry, allowing mass production with automated manufacturing and assembly. The PCB integration was developed with the “Die Embedding” technology in which a bare die in embedded directly in the PCB to not use package. This thesis studied the embedding technology on others components necessary to the realization of a converter (Capacitors, Magnetics, …). An optimization of the converter is done taking into account the advantages of this new technology. A prototype of an AC/DC bidirectional converter fully integrated using this technology was realized
Zhang, Jingbing. "On flexibly integrating machine vision inspection systems in PCB manufacture." Thesis, Loughborough University, 1992. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.314613.
Full textMachuca, Julían, and Thomas Tuvesson. "PCB design of Power Distributor Unit (PDU)." Thesis, Uppsala universitet, Institutionen för elektroteknik, 2020. http://urn.kb.se/resolve?urn=urn:nbn:se:uu:diva-415474.
Full textBooks on the topic "PCB printed circuit board"
Beaulieu, Dan. Printed circuit board basics: An introduction to the PCB industry. 4th ed. Atlanta, GA: UP Media Group, 2003.
Find full textTheresa, Kiko, ed. Printed circuit board basics: An introduction to the PCB industry. 2nd ed. San Francisco: Miller Freeman, 1992.
Find full textLaura, Scholten, ed. PCB preproduction tooling: Preproduction automation and intelligent tooling for printed circuit board manufacturing. San Francisco: Miller Freeman Books, 1994.
Find full textHossain, Akram. Computer-aided electronic circuit board design and fabrication: Using OrCAD/SDT and OrCAD/PCB software tools. Englewood Cliffs, N.J: Prentice Hall, 1996.
Find full textStanton, Martin Gray. Printed circuit board manual: How to design, make and assemble top quality PCBs using inexpensive equipment. Birmingham: Frank Stanton, 1988.
Find full textNoble, P. J. W. Printed circuit board assembly. Boston, MA: Springer US, 1989. http://dx.doi.org/10.1007/978-1-4684-6234-0.
Full textW, Jawitz Martin, ed. Printed circuit board materials handbook. New York: McGraw-Hill, 1997.
Find full textCastrovilla, Joseph A. The printed circuit board industry. Stamford, Conn., U.S.A: Business Communications Co., 1985.
Find full textinc, International Resource Development, ed. Printed circuit board market opportunities. Norwalk, Conn., U.S.A. (6 Prowitt St., Norwalk 06855): International Resource Development Inc., 1986.
Find full textMontrose, Mark I. EMC and the Printed Circuit Board. Hoboken, NJ, USA: John Wiley & Sons, Inc., 1998. http://dx.doi.org/10.1002/047172310x.
Full textBook chapters on the topic "PCB printed circuit board"
Archambeault, Bruce R. "Printed Circuit Board Layout." In PCB Design for Real-World EMI Control, 187–97. Boston, MA: Springer US, 2002. http://dx.doi.org/10.1007/978-1-4757-3640-3_11.
Full textPau, L. F. "Printed Circuit Board (PCB) Inspection." In Computer Vision for Electronics Manufacturing, 141–60. Boston, MA: Springer US, 1990. http://dx.doi.org/10.1007/978-1-4613-0507-1_11.
Full textTran, Thanh T. "Printed Circuit Board (PCB) Layout." In High-Speed DSP and Analog System Design, 187–94. Boston, MA: Springer US, 2010. http://dx.doi.org/10.1007/978-1-4419-6309-3_10.
Full textTran, Thanh T. "Printed Circuit Board (PCB) Layout." In High-Speed System and Analog Input/Output Design, 193–202. Cham: Springer International Publishing, 2022. http://dx.doi.org/10.1007/978-3-031-04954-5_14.
Full textNing, Chao, Carol Sze Ki Lin, David Chi Wai Hui, and Gordon McKay. "Waste Printed Circuit Board (PCB) Recycling Techniques." In Topics in Current Chemistry Collections, 21–56. Cham: Springer International Publishing, 2017. http://dx.doi.org/10.1007/978-3-319-90653-9_2.
Full textDumpert, Dwight T. "Infrared Techniques for Printed Circuit Board (PCB) Evaluation." In Infrared Methodology and Technology, 253–64. London: CRC Press, 2023. http://dx.doi.org/10.1201/9781003420200-9.
Full textKaya, Muammer. "Printed Circuit Boards (PCBs)." In Electronic Waste and Printed Circuit Board Recycling Technologies, 33–57. Cham: Springer International Publishing, 2019. http://dx.doi.org/10.1007/978-3-030-26593-9_2.
Full textGoosey, Martin. "Polymers in Printed Circuit Board (PCB) and Related Advanced Interconnect Applications." In Plastics for Electronics, 293–332. Dordrecht: Springer Netherlands, 1999. http://dx.doi.org/10.1007/978-94-017-2700-6_9.
Full textArumugam, M., G. Arun, R. Mekala, and K. Anusuya. "Detection of Printed Circuit Board (PCB) Defects Using Deep Learning Approach." In Lecture Notes in Networks and Systems, 319–33. Singapore: Springer Nature Singapore, 2024. https://doi.org/10.1007/978-981-97-7710-5_24.
Full textArchambeault, Bruce R. "Introduction to EMI/EMC Design for Printed Circuit Boards." In PCB Design for Real-World EMI Control, 1–7. Boston, MA: Springer US, 2002. http://dx.doi.org/10.1007/978-1-4757-3640-3_1.
Full textConference papers on the topic "PCB printed circuit board"
Ju, Huafang, Jimmy Hsu, Meng Wang, Ryan Chang, Xiang Li, Mengen Zan, Shaozheng Hou, et al. "Enhancing Printed Circuit Board (PCB) Electrical Characteristics under Immersion Cooling Condition." In 2024 19th International Microsystems, Packaging, Assembly and Circuits Technology Conference (IMPACT), 61–64. IEEE, 2024. https://doi.org/10.1109/impact63555.2024.10818954.
Full textZeng, Qi, Chongren Zhao, Pengfei He, and Hongchao Gao. "LSDM-PCB: A Lightweight Small Defect Detection Model for Printed Circuit Board." In 2024 IEEE International Conference on Image Processing (ICIP), 673–79. IEEE, 2024. http://dx.doi.org/10.1109/icip51287.2024.10647590.
Full textCraig, Patrick, Jonathan Pearson, Shajib Ghosh, Nitin Varshney, Sanjeev J. Koppal, and Navid Asadizanjani. "Optical Automated Interconnect Inspection of Printed Circuit Boards." In ISTFA 2024, 22–27. ASM International, 2024. http://dx.doi.org/10.31399/asm.cp.istfa2024p0022.
Full textPark, Junyong, Chaofeng Li, Eddie Mok, Joe Dickson, Joan Tourné, and Donghyun Bill Kim. "Vertical Interconnect Technology in Silicon, Package, and Printed Circuit Board (PCB) with Coaxial Structure." In 2024 IEEE International Symposium on Electromagnetic Compatibility, Signal & Power Integrity (EMC+SIPI), 39–44. IEEE, 2024. http://dx.doi.org/10.1109/emcsipi49824.2024.10705593.
Full textSlee, Daren T. "Printed Circuit Board Propagating Faults." In ISTFA 2004. ASM International, 2004. http://dx.doi.org/10.31399/asm.cp.istfa2004p0436.
Full textHuang, Chien-Yi, Chen-Liang Ku, Hao-Chun Hsieh, Tzu-Min Chien, and Hui-Hua Huang. "Reliability Assessment for Printed Circuit Board in Lead-Free Process." In ASME 2009 InterPACK Conference collocated with the ASME 2009 Summer Heat Transfer Conference and the ASME 2009 3rd International Conference on Energy Sustainability. ASMEDC, 2009. http://dx.doi.org/10.1115/interpack2009-89253.
Full textIyengar, Anirudh, Nareen Vobilisetti, and Swaroop Ghosh. "Authentication of Printed Circuit Boards." In ISTFA 2016. ASM International, 2016. http://dx.doi.org/10.31399/asm.cp.istfa2016p0605.
Full textBachoo, Richard, Shurland Balliram, and Jacqueline Bridge. "EXPERIMENTAL AND NUMERICAL VIBRATION ANALYSIS OF PRINTED CIRCUIT BOARDS." In International Conference on Emerging Trends in Engineering & Technology (IConETech-2020). Faculty of Engineering, The University of the West Indies, St. Augustine, 2020. http://dx.doi.org/10.47412/umtw9840.
Full textWang, Mu-Chun, Zhen-Ying Hsieh, Ting-Yu Yang, Chia-Hao Tu, and Shuang-Yuan Chen. "Improvement of Printed Circuit Board Assembly Process in 2.4GHz RF Circuit Products." In 2008 Second International Conference on Integration and Commercialization of Micro and Nanosystems. ASMEDC, 2008. http://dx.doi.org/10.1115/micronano2008-70093.
Full textLee, El-Hang, S. G. Lee, B. H. O, S. G. Park, and K. H. Kim. "Fabrication of a hybrid electrical-optical printed circuit board (EO-PCB) by lamination of an optical printed circuit board (O-PCB) and an electrical printed circuit board (E-PCB)." In Integrated Optoelectronic Devices 2006, edited by Allen M. Earman and Ray T. Chen. SPIE, 2006. http://dx.doi.org/10.1117/12.650521.
Full textReports on the topic "PCB printed circuit board"
Booth, Janice C., Tracy Hudson, Brian A. English, Michael R. Whitley, and Michael S. Kranz. Integrated Printed Circuit Board (PCB) Active Cooling With Piezoelectric Actuator. Fort Belvoir, VA: Defense Technical Information Center, September 2012. http://dx.doi.org/10.21236/ada567661.
Full textBacon, L. D., and R. P. Toth. LineCAP (Line/Circuit Analysis Program): Cross-coupling on PC (printed circuit) board traces including discontinuities and circuit elements. Office of Scientific and Technical Information (OSTI), June 1989. http://dx.doi.org/10.2172/6038898.
Full textAnderson, J. T. Document Template for Printed Circuit Board Layout. Office of Scientific and Technical Information (OSTI), January 1998. http://dx.doi.org/10.2172/1032099.
Full textHolder, Darryl. Prototype and Short-Run Printed Circuit Board Creation. Fort Belvoir, VA: Defense Technical Information Center, March 1993. http://dx.doi.org/10.21236/ada263245.
Full textEdwards, H. W., M. F. Kostrzewa, and G. P. Looby. Pollution prevention assessment for a printed circuit board plant. Office of Scientific and Technical Information (OSTI), September 1995. http://dx.doi.org/10.2172/125058.
Full textNestleroth. L52298 Augmenting MFL Tools With Sensors that Assess Coating Condition. Chantilly, Virginia: Pipeline Research Council International, Inc. (PRCI), March 2009. http://dx.doi.org/10.55274/r0010396.
Full textNeilsen, Michael K., Kevin N. Austin, Douglas Brian Adolf, Scott W. Spangler, Matthew Aaron Neidigk, and Robert S. Chambers. Packaging strategies for printed circuit board components. Volume I, materials & thermal stresses. Office of Scientific and Technical Information (OSTI), September 2011. http://dx.doi.org/10.2172/1022184.
Full textOxley, J. E., and R. J. Smialek. Electrolytic regeneration of acid cupric chloride printed circuit board etchant. Final report, August 1, 1995--October 31, 1996. Office of Scientific and Technical Information (OSTI), April 1997. http://dx.doi.org/10.2172/510548.
Full textHEWITT AND ASSOCIATES INC ALBUQUERQUE NM. EM Visualization of Printed Circuit Board Assemblies. A Phase 1 SBIR on behalf of USAF; SA-ALC/LDAE. Fort Belvoir, VA: Defense Technical Information Center, June 1994. http://dx.doi.org/10.21236/ada293355.
Full textOxley, J. E., and R. J. Smialek. Electrolytic regeneration of acid cupric chloride printed circuit board etchant. Quarterly report No. 4, April 30, 1996--July 30, 1996. Office of Scientific and Technical Information (OSTI), August 1996. http://dx.doi.org/10.2172/378168.
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