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Advancing industry 4.0 with microfabrication of K-type TFTCs on stainless steel 316 L substrates : a study on SiO2 insulation, substrate thickness, and surface roughness optimization

Dalelkhan, Bekmurat LU ; Lenrick, Filip LU orcid ; Knutsson, Axel and Bushlya, Volodymyr LU (2026) In International Journal of Advanced Manufacturing Technology 142. p.4745-4757
Abstract

Thin-film thermocouples (TFTCs) are critical for real-time temperature monitoring in advanced manufacturing processes where conventional sensors fail due to spatial constraints or complex geometries. This study develops K-type TFTCs on stainless steel 316 L substrates with optimized SiO₂/SiO insulation layers for industrial deployment. In particular, two types of stainless steel substrates were investigated: thick and rigid substrates designed for stationary applications requiring durability, and thin, flexible substrates tailored for dynamic environments such as robotics and other moving systems. We systematically investigate the impact of substrate thickness (flexible − 50 μm to rigid − 500 μm), surface roughness (Ra = 20 nm to 0.210... (More)

Thin-film thermocouples (TFTCs) are critical for real-time temperature monitoring in advanced manufacturing processes where conventional sensors fail due to spatial constraints or complex geometries. This study develops K-type TFTCs on stainless steel 316 L substrates with optimized SiO₂/SiO insulation layers for industrial deployment. In particular, two types of stainless steel substrates were investigated: thick and rigid substrates designed for stationary applications requiring durability, and thin, flexible substrates tailored for dynamic environments such as robotics and other moving systems. We systematically investigate the impact of substrate thickness (flexible − 50 μm to rigid − 500 μm), surface roughness (Ra = 20 nm to 0.210 μm), and insulation deposition techniques (PECVD, SOG, PVD) on sensor performance. TFTCs on 50-µm substrates achieved a 71% faster response time (0.95 s) than conventional designs, with sensitivities of 0.041142 mV/°C, demonstrating excellent agreement with the theoretical K-type thermocouple sensitivity of 0.041 mV/°C. The sensor mechanical robustness, corrosion resistance, and flexibility enable direct integration into manufacturing equipment for in-situ monitoring of machining, forging, and additive manufacturing processes. These advances address Industry 4.0 demands for embedded sensing in harsh industrial environments, enhancing predictive maintenance and energy efficiency in automotive, aerospace, and energy sectors.

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author
; ; and
organization
publishing date
type
Contribution to journal
publication status
published
subject
keywords
Industrial process control, K-type sensors, Predictive maintenance, Real-time temperature monitoring, Stainless steel 316L, Surface roughness optimization, Thin-film thermocouples
in
International Journal of Advanced Manufacturing Technology
volume
142
pages
4745 - 4757
publisher
Springer
external identifiers
  • scopus:105028120391
ISSN
0268-3768
DOI
10.1007/s00170-025-17306-9
language
English
LU publication?
yes
id
9596b97d-4f6f-4364-ad99-0229d8647a2c
date added to LUP
2026-02-02 11:12:02
date last changed
2026-03-09 11:01:11
@article{9596b97d-4f6f-4364-ad99-0229d8647a2c,
  abstract     = {{<p>Thin-film thermocouples (TFTCs) are critical for real-time temperature monitoring in advanced manufacturing processes where conventional sensors fail due to spatial constraints or complex geometries. This study develops K-type TFTCs on stainless steel 316 L substrates with optimized SiO₂/SiO insulation layers for industrial deployment. In particular, two types of stainless steel substrates were investigated: thick and rigid substrates designed for stationary applications requiring durability, and thin, flexible substrates tailored for dynamic environments such as robotics and other moving systems. We systematically investigate the impact of substrate thickness (flexible − 50 μm to rigid − 500 μm), surface roughness (Ra = 20 nm to 0.210 μm), and insulation deposition techniques (PECVD, SOG, PVD) on sensor performance. TFTCs on 50-µm substrates achieved a 71% faster response time (0.95 s) than conventional designs, with sensitivities of 0.041142 mV/°C, demonstrating excellent agreement with the theoretical K-type thermocouple sensitivity of 0.041 mV/°C. The sensor mechanical robustness, corrosion resistance, and flexibility enable direct integration into manufacturing equipment for in-situ monitoring of machining, forging, and additive manufacturing processes. These advances address Industry 4.0 demands for embedded sensing in harsh industrial environments, enhancing predictive maintenance and energy efficiency in automotive, aerospace, and energy sectors.</p>}},
  author       = {{Dalelkhan, Bekmurat and Lenrick, Filip and Knutsson, Axel and Bushlya, Volodymyr}},
  issn         = {{0268-3768}},
  keywords     = {{Industrial process control; K-type sensors; Predictive maintenance; Real-time temperature monitoring; Stainless steel 316L; Surface roughness optimization; Thin-film thermocouples}},
  language     = {{eng}},
  month        = {{01}},
  pages        = {{4745--4757}},
  publisher    = {{Springer}},
  series       = {{International Journal of Advanced Manufacturing Technology}},
  title        = {{Advancing industry 4.0 with microfabrication of K-type TFTCs on stainless steel 316 L substrates : a study on SiO<sub>2</sub> insulation, substrate thickness, and surface roughness optimization}},
  url          = {{http://dx.doi.org/10.1007/s00170-025-17306-9}},
  doi          = {{10.1007/s00170-025-17306-9}},
  volume       = {{142}},
  year         = {{2026}},
}