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Makale detayı · 2022 · article

Assessment of Böhme Abrasion Value of Natural Stones through Artificial Neural Networks (ANN)

Dergi Materials
ISSN1996-1944
YÖKSİS OpenAlex Açık erişim · gold
Yıl2022
Atıf11OpenAlex
Yüzdelik%73,9
FWCI1,281,00 = dünya ortalaması
Scopus (SJR)Q2
WoS (JCR)Q2

Veri kaynağı ayrımı

  • YÖKSİSYÖKSİS makale kaydı
  • YÖKSİS dergi adıMaterials
  • Katalog eşleşmesi (ISSN)Materials
  • OpenAlexOpenAlex zenginleştirmesi (özet, atıf, konular)

Özet

OpenAlex İngilizce

This present study explored the Böhme abrasion value (BAV) of natural stones through artificial neural networks (ANNs). For this purpose, a detailed literature survey was conducted to collect quantitative data on the BAV of different natural stones from Turkey. As a result of the ANN analyses, several predictive models (M1–M13) were established by using the rock properties, such as the dry density (ρd), water absorption by weight (wa), Shore hardness value (SHV), pulse wave velocity (Vp), and uniaxial compressive strength (UCS) of rocks. The performance of the established predictive models was evaluated by using several statistical indicators, and the performance analyses indicated that four of the established models (M1, M5, M10, and M11) could be reliably used to estimate the BAV of natural stones. In addition, explicit mathematical formulations of the proposed ANN models were also introduced in this study to let users implement them more efficiently. In this context, the present study is believed to provide practical and straightforward information on the BAV of natural stones and can be declared a case study on how to model the BAV as a function of different rock properties.

Konular

Atıflar

OpenAlex cited_by_count. WoS veya Scopus atıf sayısı değildir; o kaynaklar için ayrı kolon yoktur.

11atıfOpenAlex · cited_by_count (önbellek / veritabanı)

Yerel katalogda bu makaleye atıf yapan 12 yayın (OpenAlex referans eşleşmesi; tam dünya listesi değildir).

  1. 2023 Predicting the abrasion resistance value before and after deterioration by freeze-thaw of limestones based on the initial material properties: a case study from Manisa area western TurkiyeAtıf 11 · OpenAlex
  2. 2023 Predicting the abrasion resistance value before and after deterioration by freeze-thaw of limestones based on the initial material properties: a case study from Manisa area western TurkiyeAtıf 11 · OpenAlex
  3. 2025 Comparative assessments and correlations of abrasion resistance values of building stones in accordance with the EN 14157 and the ASTM C1353 standardsAtıf 6 · OpenAlex
  4. 2023 Performance comparison of training algorithms for the estimation of Böhme abrasion resistance using neural networksAtıf 6 · OpenAlex
  5. 2023 Performance comparison of training algorithms for the estimation of Böhme abrasion resistance using neural networksAtıf 6 · OpenAlex
  6. 2025 Comparative assessments and correlations of abrasion resistance values of building stones in accordance with the EN 14157 and the ASTM C1353 standardsAtıf 5 · OpenAlex
  7. 2025 Comparative assessments and correlations of abrasion resistance values of building stones in accordance with the EN 14157 and the ASTM C1353 standardsAtıf 5 · OpenAlex
  8. 2024 Development of Comprehensive Predictive Models for Evaluating Böhme Abrasion Value (BAV) of Dimension Stones Using Non-Destructive Testing MethodsAtıf 2 · OpenAlex
  9. 2025 Assessment of the quality of tuffs in central Anatolia, Turkey: A quantitative classification approachAtıf 0 · OpenAlex
  10. 2025 Ahlat Taşı ve Tarihi Yapılardaki Yeri: Kültürel Miras Açısından Bir DeğerlendirmeAtıf 0 · OpenAlex

Yazarlar

2
  1. Pawel Strzalkowski 1
  2. EKİN KÖKEN ABDULLAH GÜL ÜNİVERSİTESİ 2