Increase the Quality of Life through the Development of Automation
Source: By:Anoushe Arab
DOI: https://doi.org/10.30564/jeisr.v1i2.1367
Abstract:This paper discusses needs for the automation of the underdevelopment communities. The novelty of this research is the link between production of microprocessors and increasing of the life quality. This study highlights the importance of efficient and economic architecture of logical circuits for the automation. The aim of this research is to produce a logical circuit, which includes suitable gates. The circuit will be embedded in the automatic devices as a microprocessor to cause programmed functions. This research reports analytically a workshop method to build the circuit. It uses an assembly card and required gates. Then, it suggests certain VHDL codes to drive a motor. The workshop presents the configuration schemes and connection board for every gate. In addition, it shows a schematic wiring diagram of the circuit. Finally, the economic analysis proves the mass production of the circuit will enhance the automation and consequently the quality of life. The outcome of this research is a helpful experience to the engineers, manufacturers and students of the relevant disciplines to resolve the inequality in the use of the modern technologies.
References:[1] Allan, A., Edenfeld, D., Joyner, W. H., Kahng, A. B., Rodgers, M., & Zorian, Y.. 2001 technology roadmap for semiconductors. Computer, 2002, 35(1): 42-53. [2] Antonakos, J. L.. The 68000 Microprocessor: Hard-ware and Software Principles and Applications. Pren-tice Hall PTR, 1998. [3] Auch, A. G., & Joosep, H.. Automatic engineering change analysis for incremental timing analysis. IBM technical disclosure bulletin, 1984, 26(10): 5127-5131. [4] Austin, T. M.. DIVA: A reliable substrate for deep submicron microarchitecture design in MICRO-32. Proceedings of the 32nd Annual ACM/IEEE Interna-tional Symposium on Microarchitecture. IEEE, 1999: 196-207. [5] Baker, R. J.. CMOS: circuit design, layout, and simu-lation. Wiley-IEEE press, 2019. [6] Battini, D., Faccio, M., Ferrari, E., Persona, A., & Sgarbossa, F.. Design configuration for a mixed-mod-el assembly system in case of low product demand. The International Journal of Advanced Manufactur-ing Technology, 2007, 34(1-2): 188-200. [7] Bischof, C. H., Roh, L., & Mauer‐Oats, A. J.. ADIC: an extensible automatic differentiation tool for ANSI‐C. Software: Practice and Experience, 1997, 27(12): 1427-1456. [8] Boothroyd, G.. Assembly automation and product design. CRC Press, 2005. [9] Card, S. K.. The psychology of human-computer in-teraction. CRC Press, 2018. [10] Ebrahimzadeh, I., Shahraki, A. A., Shahnaz, A. A., & Myandoab, A. M.. Progressing urban development and life quality simultaneously. City, Culture and So-ciety, 2016, 7(3): 186-193. [11] Giordano, G.. Buying Power: As Industry 4.0 contin-ues to influence the plastics industry, manufacturers must consider connectivity and other factors when purchasing equipment. Plastics Engineering, 2019, 75(1): 28-35. [12] Hemert, L. H.. Digitala kretsar. Studentlitteratur, 2001. [13] Hnatek, E. R.. Integrated circuit quality and reliabili-ty. CRC Press, 1994. [14] Koç, T. Ç.. The importance of high technology for economic development: a comparative analysis of Turkey and South Korea (Master’s thesis, Işık Üniversitesi), 2019. [15] Libes, D.. Exploring Expect: a Tcl-based toolkit for automating interactive programs. O’Reilly Media, Inc., 1995. [16] Maheshwary, S.. Automated Feature Construction and Selection (Doctoral dissertation, International In-stitute of Information Technology Hyderabad), 2019. [17] Nichols, J., Myers, B. A., & Litwack, K.. Improving automatic interface generation with smart templates. In Proceedings of the 9th international conference on Intelligent user interfaces. ACM, 2004: 286-288. [18] Patterson, D. A., & Sequin, C. H.. Design consider-ations for single-chip computers of the future. IEEE Journal of Solid-State Circuits, 1980, 15(1): 44-52. [19] Paul, B. K., Panat, R., Mastrangelo, C., Kim, D., & Johnson, D.. Manufacturing of smart goods: Current state, future potential, and research recommenda-tions. Journal of Micro and Nano-Manufacturing, 2016, 4(4): 044001. [20] Peatman, J. B.. Microcomputer-based design. Mc-Graw-Hill, Inc., 1977. [21] Shahraki, A. A.. Regional development assessment: Reflections of the problem-oriented urban planning. Sustainable cities and society, 2017, 35: 224-231. [22] Shahraki, A. A.. Supplying water in hydro-drought regions with case studies in Zahedan. Sustainable Water Resources Management, 2019, 5(2): 655-665. [23] Siddiquee, N. A.. E-government and transformation of service delivery in developing countries: The Ban-gladesh experience and lessons. Transforming Gov-ernment: People, Process and Policy, 2016, 10(3): 368-390. [24] Sugihara, T., Yamamoto, K., & Nakamura, Y.. Hard-ware design of high performance miniature anthropo-morphic robots. Robotics and Autonomous Systems, 2008, 56(1): 82-94. [25] Tersine, R. J.. Production/Operations Management: Concepts. Structure and Analysis, 1985, 2. [26] Turkoglu, H.. Sustainable development and quality of urban life. Procedia-Social and Behavioral Scienc-es, 2015, 202: 10-14. [27] Wright, I. C.. A review of research into engineering change management: implications for product design. Design Studies, 1997, 18(1): 33-42. [28] Xu, L. D., Xu, E. L., & Li, L.. Industry 4.0: state of the art and future trends. International Journal of Pro-duction Research, 2018, 56(8): 2941-2962.