J 2024

Optimization of 3D Computer Model Parameters for Spherical Elements Modeling

PASTERNAK, Viktoriya; Oleg ZABOLOTNYI; Dagmar CAGÁŇOVÁ a Yurii HALCHUK

Základní údaje

Originální název

Optimization of 3D Computer Model Parameters for Spherical Elements Modeling

Název anglicky

Optimization of 3D Computer Model Parameters for Spherical Elements Modeling

Autoři

PASTERNAK, Viktoriya; Oleg ZABOLOTNYI; Dagmar CAGÁŇOVÁ a Yurii HALCHUK

Vydání

EAI/Springer Innovations in Communication and Computing, Springer Science and Business Media Deutschland GmbH, 2024, 2522-8595

Další údaje

Typ výsledku

Článek v odborném periodiku

Utajení

není předmětem státního či obchodního tajemství

Označené pro přenos do RIV

Ne

Organizační jednotka

Vysoká škola NEWTON, a.s.

EID Scopus

Klíčová slova anglicky

A minimal deviation; Algorithm; Code Fragment; Components; Element Simulation; Motion and Computer Analysis; Programming; Sphere

Příznaky

Mezinárodní význam, Recenzováno
Změněno: 16. 7. 2026 23:38, prof. Mgr. Dagmar Cagáňová, PhD.

Anotace

V originále

The scientific chapter discusses the simulation of spherical elements using a developed computer model. We documented the primary combinations of spherical particles that occur during filling in the hopper. The modeling revealed that the most common combination for spherical elements consists of three balls, forming an equilateral triangle in the cross section passing through the centers of the balls. In the case of a structure with four spherical balls, connecting their centers creates a rhombus in the cross section. Notably, this combination generates two smaller equilateral triangles within the rhombus, influencing the process of pushing the spherical balls apart. This process, in turn, facilitated the observation of contact between spherical elements and established the stable position of each individual particle. This chapter also outlines key excerpts from encoding the source text of a 3D computer model for simulating spherical elements, leading to the optimization of model parameters. Analysis of coordination numbers for various volume fillings of spherical elements revealed a maximum filling of 73%, corresponding to a state where 120 lobules have an average coordination number of 3.90. © The Author(s).