Rapid Temperature Control in Melt Extrusion Additive Manufacturing Using Induction Heated Lightweight Nozzle

被引:3
作者
Oskolkov, Alexander A. [1 ]
Bezukladnikov, Igor I. [2 ]
Trushnikov, Dmitriy N. [1 ]
机构
[1] Perm Natl Res Polytech Univ, Dept Welding Prod Metrol & Technol Mat, 29 Komsomolsky Prospect, Perm 614990, Russia
[2] Perm Natl Res Polytech Univ, Dept Automat & Telemech, 29 Komsomolsky Prospect, Perm 614990, Russia
来源
APPLIED SCIENCES-BASEL | 2022年 / 12卷 / 16期
关键词
FDM; melt extrusion additive manufacturing; temperature control; lightweight nozzle; automatic control system; induction heating; mathematical modeling; FEM; indirect temperature measurement; resonance measurement; MECHANICAL-PROPERTIES; PROCESS PARAMETERS; QUALITY; OPTIMIZATION;
D O I
10.3390/app12168064
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
An approach for improving and maintaining consistent fusion quality of the deposited material during FDM 3d-printing is proposed. This approach is based on the nozzle temperature control during the printing process to adjust the polymer extrusion temperature with a speed and accuracy adequate to the FDM process. High frequency induction heating of the lightweight nozzle (<1 g) was used. To control the temperature of a lightweight nozzle, the resonant temperature measurement method based on the analysis of the high frequency eddy currents is proposed. To determine the parameters of the nozzle and the inductor as a plant, a FEM model of the inductive heating of the nozzle and a simulated model of a serial-parallel resonant circuit containing inductor were developed. Linearization of the automatic control system was performed to ensure the equal quality of regulation when operating in a wide temperature range. The quality of regulation, stability of the system, and coefficients of the PID controller were evaluated using a simulated model of the control system. A number of test samples were printed from various materials, and tensile stress testing was carried out. The developed control method reduces the nozzle temperature control error from 20 to 0.2 degrees C and decreases control delay by more than six times.
引用
收藏
页数:21
相关论文
共 50 条
  • [21] Multi-Material Additive Manufacturing of High Temperature Polyetherimide (PEI)-Based Polymer Systems for Lightweight Aerospace Applications
    Vakharia, Ved S.
    Leonard, Hunter
    Singh, Mrityunjay
    Halbig, Michael C.
    POLYMERS, 2023, 15 (03)
  • [22] Melt pool control-assisted additive manufacturing of thin-walled parts
    Su, Youyu
    Xu, Gang
    Xu, Xiang
    Zhang, Hongmei
    Luo, Kaiyu
    Lu, Jinzhong
    INTERNATIONAL JOURNAL OF MECHANICAL SCIENCES, 2024, 280
  • [23] A comprehensive review of extrusion-based additive manufacturing processes for rapid production of metallic and ceramic parts
    Rane, Kedarnath
    Strano, Matteo
    ADVANCES IN MANUFACTURING, 2019, 7 (02) : 155 - 173
  • [24] Build-up strategies for temperature control using laser metal deposition for additive manufacturing
    Petrat, Torsten
    Winterkorn, Rene
    Graf, Benjamin
    Gumenyuk, Andrey
    Rethmeier, Michael
    WELDING IN THE WORLD, 2018, 62 (05) : 1073 - 1081
  • [25] Dynamic Model Reduction and Predictive Control of Hot-Melt Extrusion Applied to Drug Manufacturing
    Grimard, Jonathan
    Dewasme, Laurent
    Vande Wouwer, Alain
    IEEE TRANSACTIONS ON CONTROL SYSTEMS TECHNOLOGY, 2021, 29 (06) : 2366 - 2378
  • [26] Effect of standoff distance on printability of aluminum 5356 alloy through extrusion-based metal additive manufacturing using induction heating
    Choubey, Rahul Kumar
    Jain, Prashant Kumar
    PROCEEDINGS OF THE INSTITUTION OF MECHANICAL ENGINEERS PART L-JOURNAL OF MATERIALS-DESIGN AND APPLICATIONS, 2024, 238 (06) : 1127 - 1141
  • [27] A cyber-physical production system for autonomous part quality control in polymer additive manufacturing material extrusion process
    Castillo, Miguel
    Monroy, Roberto
    Ahmad, Rafiq
    JOURNAL OF INTELLIGENT MANUFACTURING, 2024, 35 (08) : 3655 - 3679
  • [28] Investigations on the melt flow behaviour of aluminium filled ABS polymer composite for the extrusion-based additive manufacturing process
    Kumar, Narendra
    Jain, Prashant K.
    Tandon, Puneet
    Pandey, Pulak M.
    INTERNATIONAL JOURNAL OF MATERIALS & PRODUCT TECHNOLOGY, 2019, 59 (03) : 194 - 211
  • [29] Review of Detection, Analysis and Control of Temperature Field in Laser Additive Manufacturing
    Xie Ruidong
    Zhu Jinwei
    Zhang Hang
    Cui Bin
    Zhang Lianzhong
    Li Dichen
    Gao Feng
    LASER & OPTOELECTRONICS PROGRESS, 2020, 57 (05)
  • [30] Semi-solid epoxy feedstocks with high glass transition temperature for material extrusion additive manufacturing
    Wimmer, Madeline G.
    Compton, Brett G.
    ADDITIVE MANUFACTURING, 2022, 54