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Year 2016, Special Issue (2016), 329 - 333, 01.12.2016
https://doi.org/10.18100/ijamec.270660

Abstract

References

  • [6] J. G. Gomez, A. V. Gomez, A. P. Moreno and M. Abderrahim. “A new open source 3D-printable mobile robotic platform for education”. In Advances in autonomous mini robots (pp. 49-62). Springer Berlin Heidelberg, 2012.
  • [7] F. Cruz, S. Lanza, H. Boudaoud, S. Hoppe and M. Camargo. “Polymer Recycling and Additive Manufacturing in an Open Source context: Optimization of processes and methods”.
  • [8] R. S. Madani, E. Baines, A. Moroz and B. Makled. “Evaluation of Suitability of Rapid Prototyping Techniques for Use by Children Evaluation”, 2015.
  • [9] B. D. Harris, S. Nilsson, and C. M. Poole. “A feasibility study for using ABS plastic and a low-cost 3D printer for patient-specific brachytherapy mould design”. Australasian Physical & Engineering Sciences in Medicine, 38(3), 399-412, 2015.
  • [10] Kalpakjian and S. R. Schmid. “Manufacturing Processes for Engineering Materials–5th Edition”. Agenda, 12, 1, 2014.
  • J. G. Gomez, A. V. Gomez, A. P. Moreno and M. Abderrahim. “A new open source 3D-printable mobile robotic platform for education”. In Advances in autonomous mini robots (pp. 49-62). Springer Berlin Heidelberg, 2012.
  • F. Cruz, S. Lanza, H. Boudaoud, S. Hoppe and M. Camargo. “Polymer Recycling and Additive Manufacturing in an Open Source context: Optimization of processes and methods”.
  • R. S. Madani, E. Baines, A. Moroz and B. Makled. “Evaluation of Suitability of Rapid Prototyping Techniques for Use by Children Evaluation”, 2015.
  • B. D. Harris, S. Nilsson, and C. M. Poole. “A feasibility study for using ABS plastic and a low-cost 3D printer for patient-specific brachytherapy mould design”. Australasian Physical & Engineering Sciences in Medicine, 38(3), 399-412, 2015.
  • Kalpakjian and S. R. Schmid. “Manufacturing Processes for Engineering Materials–5th Edition”. Agenda, 12, 1, 2014.

Analysis of Suspension System for 3D Printed Mobile Robot

Year 2016, Special Issue (2016), 329 - 333, 01.12.2016
https://doi.org/10.18100/ijamec.270660

Abstract

In this study, 3D printed mobile robot with suspension system was
analysed using Computer Aided Engineering (CAE) methods. Spring and damping
coefficients of the suspension system were determined. Structural and dynamic
analyses were conducted after the selection of appropriate spring and damping
coefficients to find structural strength and power requirement of mobile robot.
The length of robot and the number of wheels were decreased to one third of the
real to ease the analysis. A concrete road with the length of 1,000 mm and 10°
inclination was created as ground to simulate the real world. Obstacles with
the height of 80 mm were placed on different locations on the path of the
wheels for the robot. The designed suspension system was consisted of; two
dashpots connected to wheels and body through connection components and a
spring between two wheels to ensure the stability. Polylactic acid (PLA) was used
as body material.  In the structural
part; the strength of the robot body and critical part (suspension leg) was
computed by Finite Element Analysis (FEA). Safety factor values for body and
critical component were found as almost 7 and 4, respectively. The results from
the analysed indicated that maximum equivalent stresses and strains (for body = 3.4 MPa,  = 3 e-3 mm/mm and for
critical component= 6.5 MPa,  = 6 e-3 mm/mm) were
occurred while robot was passing the obstacles. 
In dynamic analysis; robot was driven with three different speeds (0.25,
0.5 and 1 metre per second) on the same road conditions.  The motor torque and force values, suspension
system results (force and elongation), angular velocity of the wheels and power
requirement of mobile robot were calculated. The results showed the power
requirement of robot was 70 Watt when it was driven with maximum velocity. 

References

  • [6] J. G. Gomez, A. V. Gomez, A. P. Moreno and M. Abderrahim. “A new open source 3D-printable mobile robotic platform for education”. In Advances in autonomous mini robots (pp. 49-62). Springer Berlin Heidelberg, 2012.
  • [7] F. Cruz, S. Lanza, H. Boudaoud, S. Hoppe and M. Camargo. “Polymer Recycling and Additive Manufacturing in an Open Source context: Optimization of processes and methods”.
  • [8] R. S. Madani, E. Baines, A. Moroz and B. Makled. “Evaluation of Suitability of Rapid Prototyping Techniques for Use by Children Evaluation”, 2015.
  • [9] B. D. Harris, S. Nilsson, and C. M. Poole. “A feasibility study for using ABS plastic and a low-cost 3D printer for patient-specific brachytherapy mould design”. Australasian Physical & Engineering Sciences in Medicine, 38(3), 399-412, 2015.
  • [10] Kalpakjian and S. R. Schmid. “Manufacturing Processes for Engineering Materials–5th Edition”. Agenda, 12, 1, 2014.
  • J. G. Gomez, A. V. Gomez, A. P. Moreno and M. Abderrahim. “A new open source 3D-printable mobile robotic platform for education”. In Advances in autonomous mini robots (pp. 49-62). Springer Berlin Heidelberg, 2012.
  • F. Cruz, S. Lanza, H. Boudaoud, S. Hoppe and M. Camargo. “Polymer Recycling and Additive Manufacturing in an Open Source context: Optimization of processes and methods”.
  • R. S. Madani, E. Baines, A. Moroz and B. Makled. “Evaluation of Suitability of Rapid Prototyping Techniques for Use by Children Evaluation”, 2015.
  • B. D. Harris, S. Nilsson, and C. M. Poole. “A feasibility study for using ABS plastic and a low-cost 3D printer for patient-specific brachytherapy mould design”. Australasian Physical & Engineering Sciences in Medicine, 38(3), 399-412, 2015.
  • Kalpakjian and S. R. Schmid. “Manufacturing Processes for Engineering Materials–5th Edition”. Agenda, 12, 1, 2014.
There are 10 citations in total.

Details

Subjects Engineering
Journal Section Research Article
Authors

Hilmi Saygın Sucuoğlu

Ismail Bogrekcı

Pinar Demırcıoglu

Ogulcan Turhanlar This is me

Publication Date December 1, 2016
Published in Issue Year 2016 Special Issue (2016)

Cite

APA Sucuoğlu, H. S., Bogrekcı, I., Demırcıoglu, P., Turhanlar, O. (2016). Analysis of Suspension System for 3D Printed Mobile Robot. International Journal of Applied Mathematics Electronics and Computers(Special Issue-1), 329-333. https://doi.org/10.18100/ijamec.270660
AMA Sucuoğlu HS, Bogrekcı I, Demırcıoglu P, Turhanlar O. Analysis of Suspension System for 3D Printed Mobile Robot. International Journal of Applied Mathematics Electronics and Computers. December 2016;(Special Issue-1):329-333. doi:10.18100/ijamec.270660
Chicago Sucuoğlu, Hilmi Saygın, Ismail Bogrekcı, Pinar Demırcıoglu, and Ogulcan Turhanlar. “Analysis of Suspension System for 3D Printed Mobile Robot”. International Journal of Applied Mathematics Electronics and Computers, no. Special Issue-1 (December 2016): 329-33. https://doi.org/10.18100/ijamec.270660.
EndNote Sucuoğlu HS, Bogrekcı I, Demırcıoglu P, Turhanlar O (December 1, 2016) Analysis of Suspension System for 3D Printed Mobile Robot. International Journal of Applied Mathematics Electronics and Computers Special Issue-1 329–333.
IEEE H. S. Sucuoğlu, I. Bogrekcı, P. Demırcıoglu, and O. Turhanlar, “Analysis of Suspension System for 3D Printed Mobile Robot”, International Journal of Applied Mathematics Electronics and Computers, no. Special Issue-1, pp. 329–333, December 2016, doi: 10.18100/ijamec.270660.
ISNAD Sucuoğlu, Hilmi Saygın et al. “Analysis of Suspension System for 3D Printed Mobile Robot”. International Journal of Applied Mathematics Electronics and Computers Special Issue-1 (December 2016), 329-333. https://doi.org/10.18100/ijamec.270660.
JAMA Sucuoğlu HS, Bogrekcı I, Demırcıoglu P, Turhanlar O. Analysis of Suspension System for 3D Printed Mobile Robot. International Journal of Applied Mathematics Electronics and Computers. 2016;:329–333.
MLA Sucuoğlu, Hilmi Saygın et al. “Analysis of Suspension System for 3D Printed Mobile Robot”. International Journal of Applied Mathematics Electronics and Computers, no. Special Issue-1, 2016, pp. 329-33, doi:10.18100/ijamec.270660.
Vancouver Sucuoğlu HS, Bogrekcı I, Demırcıoglu P, Turhanlar O. Analysis of Suspension System for 3D Printed Mobile Robot. International Journal of Applied Mathematics Electronics and Computers. 2016(Special Issue-1):329-33.

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