LAPSE:2023.2048
Published Article

LAPSE:2023.2048
Research on Mobile Machinery NOx Emission Control Based on a Physical Model and Closed-Loop Control
February 21, 2023
Abstract
Mobile machinery means a power-driven vehicle that is specifically designed and constructed to perform work on or off the road. To reduce the nitrogen oxide (NOx) emissions that come from mobile machinery, a combination of a physical model and closed-loop control is applied to the selective catalytic reduction (SCR) system. Based on the design of the variable cross-section extended exhaust structure, the differential pressure measurement was achieved, and the physical model of the exhaust flow based on the differential pressure was established. Based on the analysis of the heat and mass transfer process of the SCR catalyst, a prediction model for the internal temperature field of the catalyst was established by combining the upstream and downstream exhaust temperature sensors. Using the SCR downstream nitrogen oxides signal and the proportional−integral−derivative (PID) closed-loop control algorithm, segmented PID closed-loop control under the large hysteresis response of the SCR system was realized. The above algorithms were used to form the control code through MATLAB/Simulink and downloaded to the embedded microprocessor. The test results show that the established model can realize the real-time calculation of the exhaust gas flow rate and the internal temperature of the catalyst. Under steady-state conditions, the calculation error of the exhaust flow rate is less than ±3%, and the calculation error of the catalyst temperature is less than ±5%. Under transient conditions, the calculation error of the exhaust flow rate is less than ±9%, and the calculation error of the catalyst temperature is less than ±8%. The nitrogen−oxygen signal-based PID closed-loop algorithm can improve the nitrogen−oxygen conversion efficiency and control accuracy of the model.
Mobile machinery means a power-driven vehicle that is specifically designed and constructed to perform work on or off the road. To reduce the nitrogen oxide (NOx) emissions that come from mobile machinery, a combination of a physical model and closed-loop control is applied to the selective catalytic reduction (SCR) system. Based on the design of the variable cross-section extended exhaust structure, the differential pressure measurement was achieved, and the physical model of the exhaust flow based on the differential pressure was established. Based on the analysis of the heat and mass transfer process of the SCR catalyst, a prediction model for the internal temperature field of the catalyst was established by combining the upstream and downstream exhaust temperature sensors. Using the SCR downstream nitrogen oxides signal and the proportional−integral−derivative (PID) closed-loop control algorithm, segmented PID closed-loop control under the large hysteresis response of the SCR system was realized. The above algorithms were used to form the control code through MATLAB/Simulink and downloaded to the embedded microprocessor. The test results show that the established model can realize the real-time calculation of the exhaust gas flow rate and the internal temperature of the catalyst. Under steady-state conditions, the calculation error of the exhaust flow rate is less than ±3%, and the calculation error of the catalyst temperature is less than ±5%. Under transient conditions, the calculation error of the exhaust flow rate is less than ±9%, and the calculation error of the catalyst temperature is less than ±8%. The nitrogen−oxygen signal-based PID closed-loop algorithm can improve the nitrogen−oxygen conversion efficiency and control accuracy of the model.
Record ID
Keywords
closed-loop control, emission control, heat and mass transfer, mobile machinery, selective catalytic reduction
Subject
Suggested Citation
Yue G, Wu H, Zhang T, Liu R, Sun J. Research on Mobile Machinery NOx Emission Control Based on a Physical Model and Closed-Loop Control. (2023). LAPSE:2023.2048
Author Affiliations
Yue G: School of Transportation and Vehicle Engineering, Shandong University of Technology, Zibo 255000, China; National Engineering Laboratory for Mobile Source Emission Control Technology, Tianjin 300300, China
Wu H: National Engineering Laboratory for Mobile Source Emission Control Technology, Tianjin 300300, China; China Automotive Technology & Research Center Co., Ltd., Tianjin 300300, China
Zhang T: School of Transportation and Vehicle Engineering, Shandong University of Technology, Zibo 255000, China
Liu R: School of Transportation and Vehicle Engineering, Shandong University of Technology, Zibo 255000, China
Sun J: Zibo Agricultural Machinery Research Institute, Zibo 255086, China
Wu H: National Engineering Laboratory for Mobile Source Emission Control Technology, Tianjin 300300, China; China Automotive Technology & Research Center Co., Ltd., Tianjin 300300, China
Zhang T: School of Transportation and Vehicle Engineering, Shandong University of Technology, Zibo 255000, China
Liu R: School of Transportation and Vehicle Engineering, Shandong University of Technology, Zibo 255000, China
Sun J: Zibo Agricultural Machinery Research Institute, Zibo 255086, China
Journal Name
Processes
Volume
10
Issue
7
First Page
1374
Year
2022
Publication Date
2022-07-14
ISSN
2227-9717
Version Comments
Original Submission
Other Meta
PII: pr10071374, Publication Type: Journal Article
Record Map
Published Article

LAPSE:2023.2048
This Record
External Link

https://doi.org/10.3390/pr10071374
Publisher Version
Download
Meta
Record Statistics
Record Views
261
Version History
[v1] (Original Submission)
Feb 21, 2023
Verified by curator on
Feb 21, 2023
This Version Number
v1
Citations
Most Recent
This Version
URL Here
https://psecommunity.org/LAPSE:2023.2048
Record Owner
Auto Uploader for LAPSE
Links to Related Works
[0.21 s]
