Skip to main navigation Skip to main content
  • E-Submission

JKSPE : Journal of the Korean Society for Precision Engineering

OPEN ACCESS
ABOUT
BROWSE ARTICLES
EDITORIAL POLICIES
FOR CONTRIBUTORS
REGULAR

식료품 커팅용 초음파 식칼의 개발을 위한 진동해석

Vibration Analysis for Developing Ultrasonic Kitchen Knife for Cutting Foods

Journal of the Korean Society for Precision Engineering 2021;38(6):447-454.
Published online: June 1, 2021

1 인천대학교 교육대학원 기계공학과

2 인천대학교 대학원 기계공학과

3 인천대학교 기계공학과

1 Department of Mechanical Engineering, Graduate School of Education, Incheon National University

2 Department of Mechanical Engineering, Graduate School, Incheon National University

3 Department of Mechanical Engineering, Incheon National University

#E-mail: dspark@inu.ac.kr, TEL: +82-32-835-8418
• Received: March 10, 2021   • Revised: March 29, 2021   • Accepted: April 20, 2021

Copyright © The Korean Society for Precision Engineering

This is an Open-Access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/by-nc/3.0) which permits unrestricted non-commercial use, distribution, and reproduction in any medium, provided the original work is properly cited.

  • 7 Views
  • 0 Download
  • 1 Crossref
prev next

Citations

Citations to this article as recorded by  Crossref logo
  • Development and Performance Verification of an Ultrasonic Food Cutter
    Byung-Soo Yang, Ji-Chan Suk, Jeong-Suk Seo, Dong-Sam Park
    Journal of the Korean Society of Manufacturing Process Engineers.2023; 22(5): 54.     CrossRef

Download Citation

Download a citation file in RIS format that can be imported by all major citation management software, including EndNote, ProCite, RefWorks, and Reference Manager.

Format:

Include:

Vibration Analysis for Developing Ultrasonic Kitchen Knife for Cutting Foods
J. Korean Soc. Precis. Eng.. 2021;38(6):447-454.   Published online June 1, 2021
Download Citation

Download a citation file in RIS format that can be imported by all major citation management software, including EndNote, ProCite, RefWorks, and Reference Manager.

Format:
Include:
Vibration Analysis for Developing Ultrasonic Kitchen Knife for Cutting Foods
J. Korean Soc. Precis. Eng.. 2021;38(6):447-454.   Published online June 1, 2021
Close

Figure

  • 0
  • 1
  • 2
  • 3
  • 4
  • 5
  • 6
  • 7
  • 8
  • 9
  • 10
  • 11
  • 12
Vibration Analysis for Developing Ultrasonic Kitchen Knife for Cutting Foods
Image Image Image Image Image Image Image Image Image Image Image Image Image
Fig. 1 An example of ultrasonic food cutting systems10 (Adapted from Ref. 10 on the basis of OA)
Fig. 2 Examples of ultrasonic cutting horns11 (Adapted from Ref. 11 on the basis of OA)
Fig. 3 Schematic diagram of ultrasonic welding
Fig. 4 Schematic diagram of ultrasonic cutting system
Fig. 5 Design and manufacturing process of cutting knife
Fig. 6 Proposed knife model 1
Fig. 7 Mode shape of the final model 1
Fig. 8 Mode shape of the model 2
Fig. 9 Proposed knife model 3
Fig. 10 Mode shape of the knife model 3
Fig. 11 Mode shape of the booster and transducer assembly
Fig. 12 2D drawing of the proposed food cutting system
Fig. 13 Mode shape of the proposed food cutting system
Vibration Analysis for Developing Ultrasonic Kitchen Knife for Cutting Foods

Mechanical properties of the material, Ti-6Al-4V alloy

Density [g/cm3] Poisson’s ratio Young’s modulus [GPa]
4.43 0.34 120

Modal analysis results of the final model 1

Mode No. Vib. mode Freq. [Hz]
1 Bending 13,771
2 Bending 15,134
3 Longitudinal 19,519
4 Bending 19,574
5 Bending 20,116

Modal analysis results of the model 2

Mode No. Vib. Mode Freq. [Hz]
1 Bending 17,587
2 Bending 18,310
3 Longitudinal 19,856
4 Bending 21,252
5 Bending 21,889

Modal analysis results of the model 3

Mode No. Vib. Mode Freq. [Hz]
1 Bending 17,871
2 Bending 18,469
3 Longitudinal 19,782
4 Bending 20,757
5 Bending 23,056

Mechanical properties of transducer and booster materials

SUS316 PZT8 Ti-6Al-4V
Density [Kg/m3] 8,000 7,700 4,430
Young’s modulus [N/m2] 1.93e+11 7.3e+11 1.2e+11
Poisson’s ratio 0.26 0.25 0.34

Modal analysis results of transducer and booster assembly

Mode No. Vib. Mode Freq. [Hz]
1 Bending 16,262
2 Bending 17,902
3 Longitudinal 20,303
4 Bending 21,078
5 Bending 21,109

Modal analysis results of proposed cutting system

Mode No. Vib. Mode Freq. [Hz]
1 Bending 18,954
2 Bending 19,173
3 Longitudinal 20,652
4 Bending 21,487
5 Bending 21,502
Table 1 Mechanical properties of the material, Ti-6Al-4V alloy
Table 2 Modal analysis results of the final model 1
Table 3 Modal analysis results of the model 2
Table 4 Modal analysis results of the model 3
Table 5 Mechanical properties of transducer and booster materials
Table 6 Modal analysis results of transducer and booster assembly
Table 7 Modal analysis results of proposed cutting system