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Study on Distributed Thermal Control in Paper Drying Oven with Fiber Bragg Grating Integration and Dynamic Prediction
Received:June 24, 2025  Revised:August 01, 2025
DOI:10.11980/j.issn.0254-508X.2026.01.022
Key Words:fiber bragg grating (FBG)  paper drying oven  distributed temperature control  dynamic predictive control  temperature field reconstruction
Author NameAffiliationPostcode
LI Pengfei* Hubei China Tobacco Industry Co., Ltd., Wuhan, Hubei Province, 430040
Hubei Xinye Tobacco Sheet Development Co., Ltd., Wuhan, Hubei Province, 430056
Hubei Provincial Key Lab for Applied Technology of Reconstituted Tobacco Leaves, Wuhan, Hubei Province, 430040 
430040
PENG Rui* Hubei China Tobacco Industry Co., Ltd., Wuhan, Hubei Province, 430040
Hubei Xinye Tobacco Sheet Development Co., Ltd., Wuhan, Hubei Province, 430056
Hubei Provincial Key Lab for Applied Technology of Reconstituted Tobacco Leaves, Wuhan, Hubei Province, 430040 
430040
DONG Zhiyong Wuhan WUTOS Co., Ltd., Wuhan, Hubei Province, 430223 430223
GAO Liang Hubei China Tobacco Industry Co., Ltd., Wuhan, Hubei Province, 430040
Hubei Xinye Tobacco Sheet Development Co., Ltd., Wuhan, Hubei Province, 430056
Hubei Provincial Key Lab for Applied Technology of Reconstituted Tobacco Leaves, Wuhan, Hubei Province, 430040 
430040
DUAN Zhoujun Hubei China Tobacco Industry Co., Ltd., Wuhan, Hubei Province, 430040
Hubei Xinye Tobacco Sheet Development Co., Ltd., Wuhan, Hubei Province, 430056
Hubei Provincial Key Lab for Applied Technology of Reconstituted Tobacco Leaves, Wuhan, Hubei Province, 430040 
430040
WEN Long Hubei China Tobacco Industry Co., Ltd., Wuhan, Hubei Province, 430040
Hubei Xinye Tobacco Sheet Development Co., Ltd., Wuhan, Hubei Province, 430056
Hubei Provincial Key Lab for Applied Technology of Reconstituted Tobacco Leaves, Wuhan, Hubei Province, 430040 
430040
DAI Chengfei Hubei China Tobacco Industry Co., Ltd., Wuhan, Hubei Province, 430040
Hubei Xinye Tobacco Sheet Development Co., Ltd., Wuhan, Hubei Province, 430056
Hubei Provincial Key Lab for Applied Technology of Reconstituted Tobacco Leaves, Wuhan, Hubei Province, 430040 
430040
CHENG Kai Hubei China Tobacco Industry Co., Ltd., Wuhan, Hubei Province, 430040
Hubei Xinye Tobacco Sheet Development Co., Ltd., Wuhan, Hubei Province, 430056
Hubei Provincial Key Lab for Applied Technology of Reconstituted Tobacco Leaves, Wuhan, Hubei Province, 430040 
430040
WANG Yu Hubei China Tobacco Industry Co., Ltd., Wuhan, Hubei Province, 430040
Hubei Xinye Tobacco Sheet Development Co., Ltd., Wuhan, Hubei Province, 430056
Hubei Provincial Key Lab for Applied Technology of Reconstituted Tobacco Leaves, Wuhan, Hubei Province, 430040 
430040
WANG Hao Hubei China Tobacco Industry Co., Ltd., Wuhan, Hubei Province, 430040
Hubei Xinye Tobacco Sheet Development Co., Ltd., Wuhan, Hubei Province, 430056
Hubei Provincial Key Lab for Applied Technology of Reconstituted Tobacco Leaves, Wuhan, Hubei Province, 430040 
430040
TIAN Xin Hubei China Tobacco Industry Co., Ltd., Wuhan, Hubei Province, 430040
Hubei Xinye Tobacco Sheet Development Co., Ltd., Wuhan, Hubei Province, 430056
Hubei Provincial Key Lab for Applied Technology of Reconstituted Tobacco Leaves, Wuhan, Hubei Province, 430040 
430040
CAO Minghao Wuhan WUTOS Co., Ltd., Wuhan, Hubei Province, 430223 430223
BIAN Yuchao Wuhan WUTOS Co., Ltd., Wuhan, Hubei Province, 430223 430223
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Abstract:To address the challenge of temperature uniformity control in paper drying ovens, this study proposed a distributed temperature control system integrating fiber bragg grating (FBG) sensing with dynamic predictive technology, overcoming limitations of traditional thermocouples such as response lag and low spatial resolution. A 3D virtual temperature field model was established and combined with a sparse FBG sensor network (3 400 measurement points) and a natural neighbor dynamic reconstruction algorithm, achieving high-precision temperature field reconstruction (RMSE: 1.5 ℃). A zoned predictive control strategy was designed. Dynamic PI algorithms were employed to optimize thermal inertia compensation and multi-zone coordinated control, reducing steady-state errors to within ±1.5 ℃, accelerating response speed by 30%, and lowering energy consumption by 18%. Experimental results demonstrated robust performance under extreme conditions (e.g., sudden heater failure, high-speed paper feed), maintaining 80% coverage of the 85 ℃ isothermal surface and suppressing temperature gradients by over 40%.
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