The Effect of the Amount of Charge on the Force and the Direction of the Force on Coulomb's Law Using Phet Simulation

Authors

  • Misykah Auliya UIN Sunan Gunung Djati Bandung
  • Hilma Nurul Fajrin Physics Education Program, Sunan Gunung Djati State Islamic University, Indonesia
  • Muhammad Fikri Assiddiqi Physics Education Program, Sunan Gunung Djati State Islamic University, Indonesia

Keywords:

Coulomb's Law, Phet Simulation, Practicum

Abstract

This experiment aims to determine the effect of the magnitude of the charge on the direction of the force generated. Data collection was carried out using the PhET Simulation Coulomb's Law. The method used in conducting research is a combination research method. The results of the research found that the amount of charge given will affect the direction of the force generated. This is important so that there are no misunderstandings in understanding the concept of the material.

Author Biographies

Hilma Nurul Fajrin, Physics Education Program, Sunan Gunung Djati State Islamic University, Indonesia

Physics Education Program, Sunan Gunung Djati State Islamic University, Indonesia

Muhammad Fikri Assiddiqi, Physics Education Program, Sunan Gunung Djati State Islamic University, Indonesia

Physics Education Program, Sunan Gunung Djati State Islamic University, Indonesia

References

A. Cabboi, L. Marino, and A. Cicirello, “A comparative study between Amontons–Coulomb and Dieterich–Ruina friction laws for the cyclic response of a single degree of freedom system,” Eur. J. Mech. - A/Solids, vol. 96, p. 104737, Nov. 2022.

S. Y. Bronin, B. B. Zelener, and B. V Zelener, “Thermal conductivity and viscosity in fully ionized multiple-charged strongly coupled plasma,” Plasma Sources Sci. Technol., vol. 30, no. 11, p. 115018, Nov. 2021.

W. Zhao, A. H. Flood, and N. G. White, “Recognition and applications of anion–anion dimers based on anti-electrostatic hydrogen bonds (AEHBs),” Chem. Soc. Rev., vol. 49, no. 22, pp. 7893–7906, 2020.

B. Wu, F. Wang, and W. Han, “Virtual element method for a frictional contact problem with normal compliance,” Commun. Nonlinear Sci. Numer. Simul., vol. 107, p. 106125, Apr. 2022.

A. D. Breki, S. G. Chulkin, A. G. Kolmakov, A. E. Gvozdev, O. V. Kuzovleva, and E. E. Baranov, “Sliding Friction of R6M5 Steel on Grade 45 Steel in Litol-24 Grease with Zinc and Cadmium Powder Additives,” Russ. Metall., vol. 2022, no. 10, pp. 1300–1306, Oct. 2022.

F. Claro and P. Robles, “Can repelling electrons form bound pairs,” Eur. J. Phys., vol. 43, no. 1, p. 015403, Jan. 2022.

S. Kumar, “General Relativistic Charged Dust Sphere with Conformal Flatness,” Int. J. Emerg. Technol. Adv. Eng., vol. 10, no. 10, pp. 9–11, Oct. 2020.

M. Dosaev, “Algorithm for controlling an inertioid robot with a flywheel and an unbalance in conditions of restrictions on the angular acceleration of the unbalance,” Appl. Math. Model., vol. 109, pp. 797–807, Sep. 2022.

Z. Ma, J. Cao, X. Xu, and J. Xu, “A shear stress model of water-based magnetorheological polishing fluids,” J. Intell. Mater. Syst. Struct., vol. 33, no. 1, pp. 160–169, Jan. 2022.

Y. Kim, W. S. Chung, and H. Hassanabadi, “Deviation of inverse square law based on Dunkl derivative: deformed Coulomb’s law,” Rev. Mex. Física, vol. 66, no. 4 Jul-Aug, pp. 411–417, Jul. 2020.

A. Ruiz, C. H. C. C. Basquerotto, J. F. S. Trentin, and S. Da Silva, “On a Qualitative and Lie Symmetry Analysis for a Pendulum with Two Reaction Wheels,” Q. J. Mech. Appl. Math., vol. 75, no. 3, pp. 235–256, Aug. 2022.

C. D. Zeinalipour-Yazdi and K. Lam, “Linear correlation of vertical ionization energies and partial charges on acetaldehyde and methyl formate radicals in various solvents,” Chem. Phys. Lett., vol. 746, p. 137311, May 2020.

J. Cheng, P. Xu, and Y. Xiong, “An improved artificial electric field algorithm and its application in neural network optimization,” Comput. Electr. Eng., vol. 101, p. 108111, Jul. 2022.

A. Kasri, “A piezoelectric contact problem with slip dependent friction and damage,” J. Appl. Anal., vol. 27, no. 1, pp. 73–86, Jun. 2021.

V. Ivchenko, “Coulomb’s and Ohm’s laws in an anisotropic medium,” Eur. J. Phys., vol. 42, no. 6, p. 065201, Nov. 2021.

H. Zheng, J. Gao, J. Xiong, G. Yao, H. Cui, and L. Zhang, “An Enhanced Artificial Electric Field Algorithm with Sine Cosine Mechanism for Logistics Distribution Vehicle Routing,” Appl. Sci., vol. 12, no. 12, p. 6240, Jun. 2022.

M. Magliulo, J. Lengiewicz, A. Zilian, and L. A. A. Beex, “Frictional interactions for non‐localized beam‐to‐beam and beam‐inside‐beam contact,” Int. J. Numer. Methods Eng., vol. 122, no. 7, pp. 1706–1731, Apr. 2021.

Z.-F. Wang, Q.-H. Li, and J.-X. Hou, “Non-Coulomb effect on the Timoshenko oscillation,” Eur. J. Phys., vol. 42, no. 5, p. 055012, Sep. 2021.

H. Ustunel and D. Toffoli, “Tribology at the atomic scale with density functional theory,” Electron. Struct., vol. 4, no. 2, p. 023002, Jun. 2022.

H. Dodig, “Direct Derivation of Liénard–Wiechert Potentials, Maxwell’s Equations and Lorentz Force from Coulomb’s Law,” Mathematics, vol. 9, no. 3, p. 237, Jan. 2021.

S. Lee, J. Lee, and M. Joun, “On critical surface strain during hot forging of lubricated aluminum alloy,” Tribol. Int., vol. 141, p. 105855, Jan. 2020.

B. Cai, Z. Shi, and J. Zhao, “Novel spatial and temporal interpolation algorithms based on extended field intensity model with applications for sparse AQI,” Multimed. Tools Appl., vol. 81, no. 14, pp. 19215–19236, Jun. 2022.

F. Liu, R. Feng, and K. D. Tsavdaridis, “A novel progressive grid generation method for free-form grid structure design and case studies,” J. Build. Eng., vol. 34, p. 101866, Feb. 2021.

A. D. Breki, S. G. Chulkin, A. E. Gvozdev, and A. G. Kolmakov, “A Generalized Mathematical Model of External Sliding Friction in Solids,” Inorg. Mater. Appl. Res., vol. 13, no. 4, pp. 967–971, Aug. 2022.

B. Laassem, A. Idarrou, L. Boujlaleb, and M. Iggane, “Label propagation algorithm for community detection based on Coulomb’s law,” Phys. A Stat. Mech. its Appl., vol. 593, p. 126881, May 2022.

F. Tan, B. Wang, and D. Wei, “A new structural entropy measurement of networks based on the nonextensive statistical mechanics and hub repulsion,” Math. Biosci. Eng., vol. 18, no. 6, pp. 9253–9263, 2021.

A. M. Kolesnikov, “An initially cylindrical highly elastic membrane enclosing of a rigid ellipsoid,” Int. J. Solids Struct., vol. 242, p. 111493, May 2022.

A. D. Breki, S. G. Chulkin, A. E. Gvozdev, and A. G. Kolmakov, “Sliding Friction of R6M5 Steel on Grade 45 Steel Using a Litol-24 Lubricant Modified by MoS2 Particles,” Russ. Metall., vol. 2022, no. 4, pp. 424–429, Apr. 2022.

E. V. Vikhrov, S. Y. Bronin, A. B. Klayrfeld, B. B. Zelener, and B. V. Zelener, “Simulated expansion and ion front formation of ultracold plasma,” Phys. Plasmas, vol. 27, no. 12, Dec. 2020.

H.-K. Chan, “A theory for like-charge attraction of polarizable ions,” J. Electrostat., vol. 105, p. 103435, May 2020.

Downloads

Published

2022-05-28

How to Cite

Auliya, M., Hilma Nurul Fajrin, & Muhammad Fikri Assiddiqi. (2022). The Effect of the Amount of Charge on the Force and the Direction of the Force on Coulomb’s Law Using Phet Simulation. Sunan Kalijaga Journal of Physics, 4(1), 16–22. Retrieved from https://ejournal.uin-suka.ac.id/saintek/physics/article/view/3992