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상용 트럭을 이용한 대형 레이다 시스템의 고정 방법과 수송 진동에 대한 안전성 분석

Safety Analysis of Transportation Vibration and Mounting Methods for a Large Radar System with a Commercial Truck

Journal of the Korean Society for Precision Engineering 2025;42(1):11-18.
Published online: January 1, 2025

1 한화시스템 기계시스템1팀

2 국방과학연구소 레이다전자전센터팀

1 Mechanical system 1, Hanwha Systems

2 Radar R&D, Agecny for Defense Development

#E-mail: dysin90@hanwha.com, TEL: +82-031-8020-7269
• Received: August 12, 2024   • Revised: October 28, 2024   • Accepted: October 31, 2024

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.

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    Yongseon Lee, Hyeongyu Lim, Hyeonchang Yang, Changbeom Choi, Jinsung Rho
    Journal of the Korean Society for Precision Engineering.2026; 43(1): 29.     CrossRef

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Safety Analysis of Transportation Vibration and Mounting Methods for a Large Radar System with a Commercial Truck
J. Korean Soc. Precis. Eng.. 2025;42(1):11-18.   Published online January 1, 2025
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Safety Analysis of Transportation Vibration and Mounting Methods for a Large Radar System with a Commercial Truck
J. Korean Soc. Precis. Eng.. 2025;42(1):11-18.   Published online January 1, 2025
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Safety Analysis of Transportation Vibration and Mounting Methods for a Large Radar System with a Commercial Truck
Image Image Image Image Image Image Image Image Image Image Image
Fig. 1 Construction of a large radar system during transportation
Fig. 2 Mounting methods of a large radar system
Fig. 3 Mechanism of Mounting method ?
Fig. 4 Schematic of mounting methods
Fig. 5 FE modeling of a large radar system including flatbed on commercial truck
Fig. 6 Mode shapes of a large radar system by modal analysis
Fig. 7 Maximum stress by random vibration analysis
Fig. 8 Maximum stress by random vibration analysis
Fig. 9 Comparison input vibration of chassis and MIL-STD
Fig. 10 Schematic of dynamics during transportation
Fig. 11 Comparison vibration response of mounting methods
Safety Analysis of Transportation Vibration and Mounting Methods for a Large Radar System with a Commercial Truck
Large radar Cooling unit
Width (m) 2.9 2.8
Weight (kg) ≤15,000 ≤7,000
Commercial truck
Weight (kg) 11,750
Total weight (kg) 40,000
Length (mm) 12,950
Width (mm) 2,495
Height (mm) 3,630
Axial load rate (kg) Front 8,000 Rear 11,500
Large radar Cooling unit
Mounting method Twist-lock & Cornercasting Bolt
Quantity 4 EA 28 EA
Allowance 34,000 kg/4EA 9,253kg/EA
SS400 HSB690
Young’s modulus 205 GPa 205 GPa
Poisson’s ratio 0.3 0.3
Density 7,800 kg/m3 7,840 kg/m3
Tensile strength, yield 275 MPa 690 MPa
Tensile strength, ultimate 550 MPa 800 MPa
Applying area Main frame Twist-lock cover
Natural frequency Mode shape
1st 18.8 Global
2nd 25.9 Global
3rd 32.1 Global
4th 35.2 Local
Longitudinal Transverse Vertical
Deformation (mm) 1.82 2.07 1.82
HSB690 Stress (MPa) 269 358 557
Safety 2.56 1.93 1.23
SS400 Stress (MPa) 139 235MPa 215
Safety 1.98 1.17 1.28
Environment of transportation
Route Highway, National highway, Road
Distance About 150 km
Velocity 0-90 km/h
Platform ①
Grms (30-50 km/h) Grms (80-90 km/h)
Longitudinal (X) 0.014 0.025
Transverse (Y) 0.015 0.042
Vertical (Z) 0.043 0.086
Maximum value
Grms (Measurement) Grms (MIL-STD)
Longitudinal (X) 0.083 (Cooling Unit ②) 2.24
Transverse (Y) 0.114 (Housing ②) 1.45
Vertical (Z) 0.130 (Housing ①) 1.32
Longitudinal Transverse Vertical
Gper 0.063 0.079 0.058
δme 1.040 1.201 1.124
Saftey factor 1.5
HSB690 σest (MPa) 25.4 42.4 48.5
M.S 26.1 13.5 12.7
SS400 σest (Mpa) 13.1 27.8 18.7
M.S 20.1 8.22 13.1
Table 1 Specification of mounting equipment
Table 2 Specification of a commercial truck
Table 3 Specification of mounting methods
Table 4 Properties of materials for flatbed on commercial truck
Table 5 Modal analysis of a large radar system with flatbed
Table 6 Results of random vibration analysis
Table 7 Transport scenario for driving test
Table 8 Results of transportation vibration during driving test
Table 9 Safety analysis from test results