Synergy Analysis of the Influence of the Connection Cone on the Thermal Distribution during Regeneration

Diesel particulate filters (DPF) are typically used for particle filtration in vehicle exhausts after a treatment system. The monolith inside a DPF is a symmetrical column structure, frequently an axisymmetric cylinder structure where filtration and regeneration occur. Due to the complex structure b...

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Main Authors: Mingfei Mu, Lizhuang Dou, Jawad Aslam, Bisheng Chen
Format: Article
Language:English
Published: MDPI AG 2021-06-01
Series:Symmetry
Subjects:
Online Access:https://www.mdpi.com/2073-8994/13/6/995
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spelling doaj-28556545c8fd4852b0639f1da49903442021-06-30T23:09:21ZengMDPI AGSymmetry2073-89942021-06-011399599510.3390/sym13060995Synergy Analysis of the Influence of the Connection Cone on the Thermal Distribution during RegenerationMingfei Mu0Lizhuang Dou1Jawad Aslam2Bisheng Chen3College of Mechanical and Electronic Engineering, Shandong University of Science and Technology, Qindao 266590, ChinaCollege of Mechanical and Electronic Engineering, Shandong University of Science and Technology, Qindao 266590, ChinaSchool of Mechanical and Manufacturing Engineering, National University of Science and Technology, Islamabad 30001, PakistanCollege of Mechanical and Electronic Engineering, Shandong University of Science and Technology, Qindao 266590, ChinaDiesel particulate filters (DPF) are typically used for particle filtration in vehicle exhausts after a treatment system. The monolith inside a DPF is a symmetrical column structure, frequently an axisymmetric cylinder structure where filtration and regeneration occur. Due to the complex structure before the symmetric monolith, the internal particle distribution is not uniform, which leads to an uneven temperature change when regeneration occurs. During thermal regeneration, the temperature field inside a DPF is affected by the particle load, exhaust temperature and exhaust flow. The relationship between the temperature gradient and velocity vector is also a key factor influencing regeneration performance. Based on the particle-loading test method, a bench for thermal distribution testing during regeneration was built. Via experiments and simulations, the temperature field in an axisymmetric monolith during particle combustion given an uneven particle distribution was analyzed. Through field synergy analysis of the temperature and velocity fields in the monolith, the influence of connection cones with different structures on heat transfer enhancement was studied. The results indicated that compared with a monolith with a conventional linear cone, the radial temperature gradient is 1.1 °C/mm lower, the area of enhanced regeneration is larger, and the regeneration rate is improved in the monolith with a streamlined cone.https://www.mdpi.com/2073-8994/13/6/995regenerationdiesel particulate filterconnection conethermal distributionfield synergyheat transfer
collection DOAJ
language English
format Article
sources DOAJ
author Mingfei Mu
Lizhuang Dou
Jawad Aslam
Bisheng Chen
spellingShingle Mingfei Mu
Lizhuang Dou
Jawad Aslam
Bisheng Chen
Synergy Analysis of the Influence of the Connection Cone on the Thermal Distribution during Regeneration
Symmetry
regeneration
diesel particulate filter
connection cone
thermal distribution
field synergy
heat transfer
author_facet Mingfei Mu
Lizhuang Dou
Jawad Aslam
Bisheng Chen
author_sort Mingfei Mu
title Synergy Analysis of the Influence of the Connection Cone on the Thermal Distribution during Regeneration
title_short Synergy Analysis of the Influence of the Connection Cone on the Thermal Distribution during Regeneration
title_full Synergy Analysis of the Influence of the Connection Cone on the Thermal Distribution during Regeneration
title_fullStr Synergy Analysis of the Influence of the Connection Cone on the Thermal Distribution during Regeneration
title_full_unstemmed Synergy Analysis of the Influence of the Connection Cone on the Thermal Distribution during Regeneration
title_sort synergy analysis of the influence of the connection cone on the thermal distribution during regeneration
publisher MDPI AG
series Symmetry
issn 2073-8994
publishDate 2021-06-01
description Diesel particulate filters (DPF) are typically used for particle filtration in vehicle exhausts after a treatment system. The monolith inside a DPF is a symmetrical column structure, frequently an axisymmetric cylinder structure where filtration and regeneration occur. Due to the complex structure before the symmetric monolith, the internal particle distribution is not uniform, which leads to an uneven temperature change when regeneration occurs. During thermal regeneration, the temperature field inside a DPF is affected by the particle load, exhaust temperature and exhaust flow. The relationship between the temperature gradient and velocity vector is also a key factor influencing regeneration performance. Based on the particle-loading test method, a bench for thermal distribution testing during regeneration was built. Via experiments and simulations, the temperature field in an axisymmetric monolith during particle combustion given an uneven particle distribution was analyzed. Through field synergy analysis of the temperature and velocity fields in the monolith, the influence of connection cones with different structures on heat transfer enhancement was studied. The results indicated that compared with a monolith with a conventional linear cone, the radial temperature gradient is 1.1 °C/mm lower, the area of enhanced regeneration is larger, and the regeneration rate is improved in the monolith with a streamlined cone.
topic regeneration
diesel particulate filter
connection cone
thermal distribution
field synergy
heat transfer
url https://www.mdpi.com/2073-8994/13/6/995
work_keys_str_mv AT mingfeimu synergyanalysisoftheinfluenceoftheconnectionconeonthethermaldistributionduringregeneration
AT lizhuangdou synergyanalysisoftheinfluenceoftheconnectionconeonthethermaldistributionduringregeneration
AT jawadaslam synergyanalysisoftheinfluenceoftheconnectionconeonthethermaldistributionduringregeneration
AT bishengchen synergyanalysisoftheinfluenceoftheconnectionconeonthethermaldistributionduringregeneration
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