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akaturk Akademik ölçüm

Makale detayı · 2025

Explainable machine learning for statistical prediction of polymer fiber properties using process parameters

YÖKSİS OpenAlex Açık erişim · diamond SJR Q2 JCR Q3 TR Index Atıf 1 Yüzdelik 52.3% FWCI 0.31
Yıl
2025
Tür
article

Veri kaynağı ayrımı

  • YÖKSİS YÖKSİS makale kaydı
  • YÖKSİS dergi adı Hacettepe Journal of Mathematics and Statistics
  • Katalog eşleşmesi (ISSN) Hacettepe Journal of Mathematics and Statistics
  • OpenAlex OpenAlex zenginleştirmesi (özet, atıf, konular)

Özet

OpenAlex · İngilizce

The modeling and optimization of electrospinning parameters are essential for controlling the fiber diameter and material properties. This study uses machine learning to examine the effects of multiple electrospinning parameters on fiber diameter. Ten regression models were evaluated, with hyperparameter optimization performed using grid search cross-validation and Bayesian optimization with multiple fold configurations. The Random Forest model demonstrated superior performance (root mean square error = 129.308, coefficient of determination = 0.542, mean absolute error = 104.014, mean absolute percentage error = 0.371). Further improvement was achieved through Bayesian optimization (root mean square error = 127.400, coefficient of determination = 0.555, mean absolute percentage error = 0.360). Extreme Gradient Boosting and Gradient Boosting also showed high accuracy, while linear models performed poorly. The Shapley Additive Explanations analysis identified rotational speed as the most influential parameter (value = 0.473), followed by flow rate (0.36), porosity (0.32) and needle diameter (0.27), all positively affecting fiber diameter. In contrast, voltage (-0.24), temperature (-0.19), towing (-0.14), and humidity (-0.13) showed negative impacts. Experimentally, Polycaprolactone (Molecular number = 80,000) nanofibers were manufactured at three rotation speeds (150, 450 and 750 revolutions per minute), resulting in fiber diameters of 100.09, 154.0, and 175.45 nanometers, respectively. These findings reveal complex interactions between the electrospinning parameters and the fiber morphology, demonstrating the potential of machine learning to optimize nanofiber production.

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Yazarlar

  1. KEVSER KÜBRA KIRBOĞA BİLECİK ŞEYH EDEBALİ ÜNİVERSİTESİ
  2. Büşra BOZ
  3. FERDA MİNDİVAN BİLECİK ŞEYH EDEBALİ ÜNİVERSİTESİ