Marine and Land Based Arduino Boat

Authors

  • Saloni Student, Computer Science and Engineering, Amity University Haryana, Gurugram, India Author
  • Shivangi Kaushal Assistant Professor, Computer Science and Engineering, Amity University Haryana, Gurugram, India Author
  • Shalini Bhaskar Bajaj Professor and Head of Department, Computer Science and Engineering, Amity University Haryana, Gurugram, India Author

Keywords:

Disasters, Arduino Boat, Marine Boat, Rescue Operations

Abstract

Disasters are natural calamities which  takes place accordingly across the world. Recently, in  2020, various disasters took place which affected the  world in various scenarios. During these situations,  emergency conditions take place which needs to be  handled timely and carefully. So, if any technology  contributes to these situations, proves to be a “Boon” for  the world. To improve the performance of a vehicle  designing is the important aspect for it. At the point when  the vehicle runs over a channel at a fast pace, the medium  will go along the vehicle in term of obstruction. The  reason behind the vehicle going in the opposite direction,  when the vehicle moves in at high velocity is because of  the structure of the room as there is air space density  inside the room. Other than that, the blueprint of the  vehicle ought to have an air of fascination with  individuals who look at everything about plan as far as  inventiveness and aesthetical worth. The land and/or  water capable automobile is a double reason vehicle  which is described by velocity and intangibility on water,  potability, and adaptability ashore and exceptional traffic  flow capacity at the intersection of land and water. This  project aims to make an Arduino based boat cum car  which can highly contribute to disasters. The project  would work both as a boat on one side and as a car on  other side. These technologies can help people in various  ways, for example, rescue operations, essentials delivery,  roads having large distance than water and many more.  People can use this technology according to the  requirement, as a boat or as a car, as and when required. 

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References

Esakki, B., Ganesan, S., Mathiyazhagan, S., Ramasubramanian, K., Gnanasekaran, B., Son, B., ... & Choi, J. S. (2018). Design of amphibious vehicle for unmanned mission in water quality monitoring using internet of things. Sensors, 18(10), 3318.

ZHAN, C., & WEI, Q. G. (2018). Numerical calculation of hydrodynamic characteristics of amphibious vehicle during offshore taxiing. Ship Science and Technology, 08.

Ihsan, Ihsan, et al. "Design of an Automatic Water Pump on a Traditional Boat." Sinkron: Jurnal dan Penelitian Teknik Informatika 5.1 (2020): 100-106.

Martinez-Santos, Juan Carlos, Oscar Acevedo-Patino, and Sonia H. Contreras-Ortiz. "Influence of Arduino on the development of advanced microcontrollers courses." IEEE Revista Iberoamericana de Tecnologias del Aprendizaje 12.4 (2017): 208-217.

Al-Ramadhan, A., et al. "The Design of a Boat Safety and Accident Prevention System." 2017 9th IEEE-GCC Conference and Exhibition (GCCCE). IEEE, 2017.

Gawande, M., & Mali, P. (2016). Amphibious vehicle. International Research Journal of Engineering and Technology (IRJET), 137-138.

Song, Weibo, et al. "The design and application of water jet propulsion boat." 2015 International Conference on Automation, Mechanical Control and Computational Engineering. Atlantis Press, 2015.

LI, C. Y., & FAN, Z. Y. (2009). Study on Calculation Method of Floating State of an Amphibious Vehicle [J]. Vehicle & Power Technology, 4.

C.Q. Yang: Theory and Design of amphibious vehicles (Defense Industry Publications, China 2003). (In Chinese) [10] R.Y. Li: Development and Strategies of Amphibious Tanks (Ordnance and Institute of Informatics, China 1997). (In Chinese)

K. Wu, W. Wang and F. Zhao: Special Purpose Vehicle, Vol. 2 (2004), p.15 (In Chinese)

SONG, G. X., ZHAO, Y. Q., & WU, K. (2008). 3-D numerical simulation on resistances of amphibious vehicles using two-phase flow. Journal of Harbin Engineering University, 29(9), 907-911.

B.K. Han, X.L. Li and F.C. Sun: Introducing Journal of China Ordnance, Vol. 24 (2003), p.246

J.Y. Wong: Proceeding of the Institution of Mechanical Engineers, Part D, Journal of Automobile Engineering, Vol. 202 (1988), p.143

J.H. Choi, H.C. Lee and A.A: Vehicle System Dynamic, Vol. 29 (1998), p.27

S.V. Balamurugan: Defence Science Journal, Vol. 50 (2000), p.155

J.H. Lee: A Real-Time simulation model for tracked vehicles (Ph.D., The University of Michigan, America 2006), p.20

Renuka, S., S. Nidish, and A. Karan Raj Selvam. "Electric Boat Using Boost Converter."

Carter A. Malkasian Charting the Pathway to OMFTS: A Historical Assessment of Amphibious Operations From 1941 to the Present CRM D0006297.A2/ Final July 2002.

Savitsky D. and Brown P. W., ―Procedures for hydrodynamic evaluation of planning hulls in smooth and rough water”, Marine Technology, Vol. 13, No. 4, October, pp.381-400, (1976).

Forbes Aird (1 April 1996) “Fiberglass & Composite Materials: An Enthusiast's Guide to High Performance - Metallic Materials for Automotive Racing and Marine Use”, Penguin. pp. 86. Retrieved 12 June 2012.

B. Bhandari design of machine elements (Tata McGraw Hill Education 2010).

WU, K., YANG, D. F., & ZHAO, Y. Q. (2008). The Study on the In and Out Water Character of Amphibious Vehicles. Agricultural Equipment & Vehicle Engineering, 12.

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Published

2021-05-30

How to Cite

Marine and Land Based Arduino Boat . (2021). International Journal of Innovative Research in Computer Science & Technology, 9(3), 87–90. Retrieved from https://acspublisher.com/journals/index.php/ijircst/article/view/11494