Multi-Modal Imaging-Based Foreign Particle Detection System on Coal Conveyor Belt
In various raw materials carrying conveyor belts of steelworks, the occurrence of foreign particles like concrete boulders and iron rods is common during the transfer of material from mines to mills. These particles can damage equipment in the mills while conveying or crushing in grinding mills lead...
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Published in: | Transactions of the Indian Institute of Metals Vol. 75; no. 9; pp. 2231 - 2240 |
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01-09-2022
Springer Nature B.V |
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Abstract | In various raw materials carrying conveyor belts of steelworks, the occurrence of foreign particles like concrete boulders and iron rods is common during the transfer of material from mines to mills. These particles can damage equipment in the mills while conveying or crushing in grinding mills leading to breakdown and low equipment availability. To detect these particles in the raw coal conveyor belt of the G furnace, an image processing-based solution was developed, and trials were conducted to test the suitability of the product. A multi-modal imaging (Polarization camera)-based system was used to differentiate the material and color properties of foreign objects from native raw materials. Using the polarization camera, we can generate two images having heterogeneous sources of information related to the material and color properties of the scene under consideration. These raw image frames are then parallelly processed using a series of image processing techniques to extract/detect the foreign object from native raw material. Once these objects are detected in any of these heterogeneous images, the decision block tracks the foreign object in subsequent frames. Based on some predefined threshold, a decision is taken to alert the operator of the detected foreign object. While implementing this system in Tata steel, the alerts were generated in a local machine controlled by the operator, and remote alert using a cloud-based platform was also established for real-time detection of foreign objects from native raw materials. The operator can then stop the belt and remove these foreign objects before it causes any damage to the plant's functioning. Two successful trials have been conducted in the G furnace coal conveyer belt, and the system is ready to be implemented. |
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AbstractList | In various raw materials carrying conveyor belts of steelworks, the occurrence of foreign particles like concrete boulders and iron rods is common during the transfer of material from mines to mills. These particles can damage equipment in the mills while conveying or crushing in grinding mills leading to breakdown and low equipment availability. To detect these particles in the raw coal conveyor belt of the G furnace, an image processing-based solution was developed, and trials were conducted to test the suitability of the product. A multi-modal imaging (Polarization camera)-based system was used to differentiate the material and color properties of foreign objects from native raw materials. Using the polarization camera, we can generate two images having heterogeneous sources of information related to the material and color properties of the scene under consideration. These raw image frames are then parallelly processed using a series of image processing techniques to extract/detect the foreign object from native raw material. Once these objects are detected in any of these heterogeneous images, the decision block tracks the foreign object in subsequent frames. Based on some predefined threshold, a decision is taken to alert the operator of the detected foreign object. While implementing this system in Tata steel, the alerts were generated in a local machine controlled by the operator, and remote alert using a cloud-based platform was also established for real-time detection of foreign objects from native raw materials. The operator can then stop the belt and remove these foreign objects before it causes any damage to the plant's functioning. Two successful trials have been conducted in the G furnace coal conveyer belt, and the system is ready to be implemented. |
Author | Kumar, A. Anil Bhaumik, Chirabrata Ganguly, Adity Gigie, Andrew Tripathi, Vineet Chakravarty, Tapas Saran, Gaurav |
Author_xml | – sequence: 1 givenname: Gaurav orcidid: 0000-0002-5183-5548 surname: Saran fullname: Saran, Gaurav email: gaurav.saran@tatasteel.com organization: Tata Steel Limited – sequence: 2 givenname: Adity surname: Ganguly fullname: Ganguly, Adity organization: Tata Steel Limited – sequence: 3 givenname: Vineet surname: Tripathi fullname: Tripathi, Vineet organization: Tata Steel Limited – sequence: 4 givenname: A. Anil surname: Kumar fullname: Kumar, A. Anil organization: TCS Research, Tata Consultancy Services – sequence: 5 givenname: Andrew surname: Gigie fullname: Gigie, Andrew organization: TCS Research, Tata Consultancy Services – sequence: 6 givenname: Chirabrata surname: Bhaumik fullname: Bhaumik, Chirabrata organization: TCS Research, Tata Consultancy Services – sequence: 7 givenname: Tapas surname: Chakravarty fullname: Chakravarty, Tapas organization: TCS Research, Tata Consultancy Services |
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Cites_doi | 10.1364/AO.20.001537 10.1109/34.61705 10.1016/j.patrec.2005.11.005 10.1364/JOSA.62.000055 10.1086/111605 10.2355/isijinternational.ISIJINT-2017-433 10.1109/ICPR.2004.1333992 |
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Keywords | Polarization imaging Conveyor belt Image processing Foreign particle |
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References | TCS Connected Universe Platform, Tata Consultancy Services, https://www.tcs.com/tcs-connected-universe-platform. Phoenix 5.0 MP Polarization Model, Lucid Vision Labs, https://thinklucid.com/product/phoenix-5-0-mp-polarized-model/. ZivkovicZVan Der HeijdenFPattern Recognit. Lett.200627777378010.1016/j.patrec.2005.11.005 Tomasi C, and Roberto M, Sixth international conference on computer vision (IEEE Cat. No. 98CH36271). IEEE, (1998). Morphological Transformations, Open Source Computer Vision (OpenCV), https://docs.opencv.org/trunk/d9/d61/tutorial_py_morphological_ops.html. SolomonJEAppl Opt1981209153715441:STN:280:DC%2BC3c3gtlWitA%3D%3D10.1364/AO.20.001537 Zivkovic Z, Proceedings of the 17th International Conference on Pattern Recognition, 2004. ICPR 2004, Cambridge, (2004), p 28, https://doi.org/10.1109/ICPR.2004.1333992. RichardsonWHJOSA1972625510.1364/JOSA.62.000055 WolffLBIEEE Trans Pattern Anal Mach Intell199012105910.1109/34.61705 Zhang R, Cheng S, and Guo C, ISIJ Int58 (2018) 244. Chen H, and Wolff LB, Proceedings CVPR IEEE computer society conference on computer vision and pattern recognition. IEEE, (1996) 128. Lucy LB, Astronomical J79 (1974) 745. Z Zivkovic (2492_CR11) 2006; 27 2492_CR1 JE Solomon (2492_CR2) 1981; 20 2492_CR10 2492_CR9 2492_CR8 LB Wolff (2492_CR6) 1990; 12 2492_CR5 WH Richardson (2492_CR7) 1972; 62 2492_CR4 2492_CR12 2492_CR3 |
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SubjectTerms | Belt conveyors Cameras Chemistry and Materials Science Cloud computing Coal Corrosion and Coatings Damage Grinding mills Hot roughing mills Image processing Iron and steel plants Materials Science Metallic Materials Object recognition Original Article Polarization Raw materials Tribology |
Title | Multi-Modal Imaging-Based Foreign Particle Detection System on Coal Conveyor Belt |
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