Distinctions of dendritic behavior influenced by constant pressure and periodic pressure

The distinctions of dendritic morphology and sidebranching behavior when solidified under atmosphere pressure, constant pressure which is higher than atmosphere pressure (hereinafter referred to as constant pressure) and periodic pressure were investigated using 3-D phase field method. When growing...

Full description

Bibliographic Details
Main Authors: Shan Shang, Zhi-peng Guo, Zhi-qiang Han
Format: Article
Language:English
Published: Foundry Journal Agency 2021-03-01
Series:China Foundry
Subjects:
Online Access:http://www.foundryworld.com/Public/Uploads/other_img/uploadfile/1985224102606d726836663.pdf
id doaj-2da7419268f7400a91205418879ad4c9
record_format Article
spelling doaj-2da7419268f7400a91205418879ad4c92021-04-07T09:26:39ZengFoundry Journal AgencyChina Foundry1672-64211672-64212021-03-0118294100https://doi.org/10.1007/s41230-021-0149-0Distinctions of dendritic behavior influenced by constant pressure and periodic pressureShan Shang0Zhi-peng Guo1Zhi-qiang Han2State Key Laboratory of Automotive Safety and Energy, Tsinghua University, Beijing 100084, ChinaBeijing Supreium Co., Ltd., Beijing 100089, ChinaSchool of Materials Science and Engineering, Tsinghua University, Beijing 100084, ChinaThe distinctions of dendritic morphology and sidebranching behavior when solidified under atmosphere pressure, constant pressure which is higher than atmosphere pressure (hereinafter referred to as constant pressure) and periodic pressure were investigated using 3-D phase field method. When growing at atmosphere pressure, side branches (secondary dendritic arms) are irregular. When solidified under constant pressure with a relatively high value, side branches are much more luxuriant, with more developed high-order side branches. When applied with periodic pressure, resonant sidebranching happens, leading to many more regular side branches and the smallest secondary dendritic arm spacing (SDAS) in the three cases. The significant difference in dendritic morphology is associated with tip velocity modulated by total undercooling including pressure and temperature undercooling. In the case of constant pressure, tip velocity increases linearly with total undercooling, and it varies periodically in periodic pressure case. The different variation trend in tip velocity is the reason for the distinct dendrite growth behavior in different cases. Unlike the phenomenon in constant pressure case where the dendrite grows faster with higher pressure, the dendrite grows slower under periodic pressure with higher amplitude, resulting in less developed primary dendrite and side branches. This is influenced by tip remelting due to low undercooling or even negative undercooling. It is revealed that the accelerated velocity of tip remelting increases with the decline of undercooling. The greater the amplitude of periodic pressure, the faster the tip remelting velocity during one period. This is the reason why the average tip velocity decreases with the rise of amplitude of periodic pressure.http://www.foundryworld.com/Public/Uploads/other_img/uploadfile/1985224102606d726836663.pdfperiodic pressure; sidebranching; amplitude; tip velocity; undercooling; phase field method
collection DOAJ
language English
format Article
sources DOAJ
author Shan Shang
Zhi-peng Guo
Zhi-qiang Han
spellingShingle Shan Shang
Zhi-peng Guo
Zhi-qiang Han
Distinctions of dendritic behavior influenced by constant pressure and periodic pressure
China Foundry
periodic pressure; sidebranching; amplitude; tip velocity; undercooling; phase field method
author_facet Shan Shang
Zhi-peng Guo
Zhi-qiang Han
author_sort Shan Shang
title Distinctions of dendritic behavior influenced by constant pressure and periodic pressure
title_short Distinctions of dendritic behavior influenced by constant pressure and periodic pressure
title_full Distinctions of dendritic behavior influenced by constant pressure and periodic pressure
title_fullStr Distinctions of dendritic behavior influenced by constant pressure and periodic pressure
title_full_unstemmed Distinctions of dendritic behavior influenced by constant pressure and periodic pressure
title_sort distinctions of dendritic behavior influenced by constant pressure and periodic pressure
publisher Foundry Journal Agency
series China Foundry
issn 1672-6421
1672-6421
publishDate 2021-03-01
description The distinctions of dendritic morphology and sidebranching behavior when solidified under atmosphere pressure, constant pressure which is higher than atmosphere pressure (hereinafter referred to as constant pressure) and periodic pressure were investigated using 3-D phase field method. When growing at atmosphere pressure, side branches (secondary dendritic arms) are irregular. When solidified under constant pressure with a relatively high value, side branches are much more luxuriant, with more developed high-order side branches. When applied with periodic pressure, resonant sidebranching happens, leading to many more regular side branches and the smallest secondary dendritic arm spacing (SDAS) in the three cases. The significant difference in dendritic morphology is associated with tip velocity modulated by total undercooling including pressure and temperature undercooling. In the case of constant pressure, tip velocity increases linearly with total undercooling, and it varies periodically in periodic pressure case. The different variation trend in tip velocity is the reason for the distinct dendrite growth behavior in different cases. Unlike the phenomenon in constant pressure case where the dendrite grows faster with higher pressure, the dendrite grows slower under periodic pressure with higher amplitude, resulting in less developed primary dendrite and side branches. This is influenced by tip remelting due to low undercooling or even negative undercooling. It is revealed that the accelerated velocity of tip remelting increases with the decline of undercooling. The greater the amplitude of periodic pressure, the faster the tip remelting velocity during one period. This is the reason why the average tip velocity decreases with the rise of amplitude of periodic pressure.
topic periodic pressure; sidebranching; amplitude; tip velocity; undercooling; phase field method
url http://www.foundryworld.com/Public/Uploads/other_img/uploadfile/1985224102606d726836663.pdf
work_keys_str_mv AT shanshang distinctionsofdendriticbehaviorinfluencedbyconstantpressureandperiodicpressure
AT zhipengguo distinctionsofdendriticbehaviorinfluencedbyconstantpressureandperiodicpressure
AT zhiqianghan distinctionsofdendriticbehaviorinfluencedbyconstantpressureandperiodicpressure
_version_ 1721536050907578368