Design and Finite Element Analysis of Fabricated Panama chock with 225T capacity

Similar documents
IMO ANCHORING, MOORING AND TOWING EQUIPMENT. Submitted by the Republic of Korea

Introduction Introduction

Design of LPG mould billet using FEM

Stress Analysis of The West -East gas pipeline with Defects Under Thermal Load

6995(Print), ISSN (Online) Volume 4, Issue 1, January- April (2013), IAEME TECHNOLOGY (IJDMT)

DESIGN OPTIMIZATION OF WORK ROLL CHOCK AND BACKUP ROLL CHOCK IN COLD ROLLING MILL

INTERNATIONAL NAVAL SHIPS 2018

Mooring & towing. 9. Mooring & towing. Index

TECHNICAL CIRCULAR. Circular No: S-P 32/13 Revision: 1 Page: 1 of 7 Date:

PVP2006-ICPVT

Fatigue Analysis of English-Willow Cricket Bat

STRESS ANALYSIS OF PRESSURE VESSEL WITH DIFFERENT END CONNECTIONS

Design and Optimization of Weld Neck Flange for Pressure Vessel

Fatigue Life Evaluation of Cross Tubes of Helicopter Skid Landing Gear System

Proceedings of the ASME th International Conference on Ocean, Offshore and Arctic Engineering OMAE2011

THE MOORING OF OIL CARRIERS AT SINGLE POINT MOORINGS

STUDY OF UNDERWATER THRUSTER (UT) FRONT COVER OF MSI300 AUTONOMOUS UNDERWATER VEHICLE (AUV) USING FINITE ELEMENT ANALYSIS (FEA)

FEA ANALYSIS OF PRESSURE VESSEL WITHDIFFERENT TYPE OF END CONNECTIONS

The Industrial Accident Resulted from the Failure of Bolt

Design and Structural Analysis of Cylindrical Shell

Design and Analysis of Pressure Safety Release Valve by using Finite Element Analysis

Tank Tie off Report for Pipes Albuquerque 1/3

Fitness for Service Assessment of Ageing Pressure Vessel Experiencing External Corrosion: A Case Study

DESIGN AND OPTIMIZATION OF ROLLING MILL CHOCK

Appendix 11-B Anchor Handling Systems, Set Up and Handling

World Journal of Engineering Research and Technology WJERT

Figure 1 FSM 250 roof anchor system

STRESS ANALYSIS OF RATCHET PAWL DESIGN IN HOIST USING FINITE ELEMENT ANALYSIS

DESIGN AND ANALYSIS OF PRESSURE VESSEL

Design and optimization of a low pressure vessel

ASSESSMENT AND ANALYSIS OF PIPELINE BUCKLES

RIGID RISERS FOR TANKER FPSOs

MSC Guidelines for Engine Cooling Systems

Anchor Component Material Standard Mechanical Properties

SHIPS FOR NAVIGATION IN ICE

Experimental Method to Analyse Limit Load in Pressure Vessel

STRUCTURAL MEMBERS OF A SHIP. compartment stem frame beam bracket girder stern post hull angle bar stiffener

Investigation of Stresses in Ring Stiffened Circular Cylinder

This document is a preview generated by EVS

STEEL VESSELS UNDER 90 METERS (295 FEET) IN LENGTH 2018

Roughneck TM Mesh Slings

Liquefied gas cargo tanks and process pressure vessels

IJSRD - International Journal for Scientific Research & Development Vol. 4, Issue 06, 2016 ISSN (online):

STRESS ANALYSIS OF BELL CRANK LEVER

Research Article Volume 6 Issue No. 6

2.1 Introduction to pressure vessels

Design of Pressure vessel for the Hydrocarbon release from the Vent Header Lines

ABSTRACT I. INTRODUCTION

I. CHEM. E. SYMPOSIUM SERIES NO. 85

FISHING VESSELS SHIPS RULES FOR CLASSIFICATION OF NEWBUILDINGS DET NORSKE VERITAS SPECIAL SERVICE AND TYPE ADDITIONAL CLASS PART 5 CHAPTER 6 JULY 1995

International Journal of Scientific & Engineering Research, Volume 6, Issue 9, September-2015 ISSN

Design and Analysis of Rotary Lawn Mower

PUSH PIER SYSTEMS STABILITY. SECURITY. INTEGRITY. Push Pier Systems PN #MBPPT

Design of submarine pressure hulls to withstand buckling under external hydrostatic pressure

RULES PUBLICATION NO. 20/P SHIP SIDE STRENGTHENING OF FISHING VESSELS MOORING AT SEA ALONGSIDE OTHER VESSELS

MECHANICAL REDESIGN OF ION EXCHANGE RESIN VESSEL BOTTOMS AT HULETT REFINERY

STRUCTURAL ANALYSIS OF THE VACUUM VESSEL FOR THE LHCb VERTEX LOCATOR (VELO)

Study to Establish Relations for the Relative Strength of API 650 Cone Roof Roof-to-Shell and Shell-to- Bottom Joints

Mini Channel & Fittings

Abrasion and Twist Effects on High-Performance Synthetic Ropes for Towing Applications

TorqBolt Wedge Anchors Torque Controlled Expansion Anchor

STABILITY AND WATERTIGHT INTEGRITY, CLOSING APPLIANCES

Design of a Hyperbaric Chamber for Pressure Testing

RULES FOR CLASSIFICATION Ships. Part 3 Hull Chapter 5 Hull girder strength. Edition October 2015 DNV GL AS

for Cold-Formed Steel Framing Products

Design and Analysis of Reactor Dish Vessel

Analysis of Pressure Safety Relief Valve using Finite Element Analysis

WELCOME to CAUx Local India 2018

MSC Guidelines for Review of Gas Carrier/Barge Structures

l DESCRIPTION l FEATURES l LIMITATIONS l TYPICAL APPLICATIONS l MATERIAL SPECIFICATIONS TECHNICAL MANUAL SECTION 2.3 PAGE 1 / 6

A1.1.5 It is assumed that under normal circumstances a ship uses only one bow anchor and chain cable at a time.

Ropes for Subsea Cable Laying

The Relationship between the Depth Embedded Pipe Pile and the Force of Clamping Jaw

AUTORIDAD DEL CANAL DE PANAMÁ EXECUTIVE VICE PRESIDENCY FOR OPERATIONS

Design of Human Powered Forklift

RULES FOR CLASSIFICATION. Ships. Part 3 Hull Chapter 5 Hull girder strength. Edition January 2017 DNV GL AS

LiftAlloy TM Chain Slings

Gannet Navigation Buoys. jfcmarine.com

VSL MINING & TUNNELING SYSTEMS VSL. mining and tunneling

P-04 Stainless Steel Corrugated Hoses and Metal Bellows Expansion Joints

Mechanical Anchoring Systems HDA Undercut Anchor Product description. HDA-P Undercut Anchor Pre-Set Type

Finite Element Analysis of an Aluminium Bike Frame

DEEP WELL SUBMERSIBLE PUMPS. An ISO 9001 & Company

SLOP RECEPTION AND PROCESSING FACILITIES

for Cold-Formed Steel Framing Products

PRICE BID T Sub : Supply of tools and tackles for workshop clarifier section at GSECL TPS UKAI.

NEVER EXCEED WORKING LOAD LIMITS PAGE

HYDRAULIC CYLINDERS STANDARD FOR CERTIFICATION DET NORSKE VERITAS. No. 2.9 Type Approval Programme No OCTOBER 2009

Rev. 01/2017. titanium

Sense Element Pump Ripple Fatigue

FISHING VESSELS SHIPS RULES FOR CLASSIFICATION OF NEWBUILDINGS DET NORSKE VERITAS SPECIAL SERVICE AND TYPE ADDITIONAL CLASS PART 5 CHAPTER 6

A parametric study of metal-to-metal contact flanges with optimised. geometry for safe stress and no-leak conditions

CERTIFICATION OF COMPLIANCE OF THE USER S DESIGN SPECIFICATION

Wellhead, Conductor and Casing Fatigue Causes and Mitigation Tze King Lim, Elizabeth Tellier, Hugh Howells 2H Offshore Engineering

U.S. TSUBAKI BS/DIN ROLLER CHAIN

Haynes 214 (UNS N07214)

ASME Boiler & Pressure Vessel Code Analysis of the 1497 MHz High-Current Cryomodule Helium Vessel

HULL EQUIPMENT AND SAFETY

Design and Analysis of Pressure Vessel with different end domes

Pressures MAOP MOP OP

Transcription:

LOWER HULL TOP DEC K EL. 3 1 ' - 2 " AB L [ 9 5 0 0 ] ( E) AIR DUC T ( INB D) ( E) B HD 1 4 m m `AH' ( E) PL. 1 2 m m `AH' ( E) L 1 5 0 x9 0 x1 2 m m `AH' - DO- - DO- SMIT BRACKET PANAMA CHOCK International Research Journal of Engineering and Technology (IRJET) e-issn: 2395-0056 Design and Finite Element Analysis of Fabricated Panama chock with 225T capacity Satyanarayana K V V 1 1M.Tech Naval Architect and Marine Engineering, Andhra University college of Engineering, Visakhapatnam ------------------------------------------------------------------***--------------------------------------------------------------------- Abstract:- Panama chocks are used specifically for the range of direction, these panama chocks are introduced guidance of rope mooring/towing lines on board a large between the smit brackets and the tugger. ship or vessel. Intended for heavy duty use, the chocks are generally manufactured from high quality cast steel in a) Towing Arrangement various grades dependent upon the particular application TUGGER END and loadings required. Panama Chocks can be either, or alternatively can come supplied with a base plate to be M.H P- 1 WB TK UNDER welded to a plinth. 1 4 ' - 5 7 8 " (N) PANAMA Chocks are used in heavy duty shipping applications and are essentially deck fittings which act as a guide to feed a line in a particular direction to boost efficiency and protect the rope from undue wear and tear due to a significant reduction in abrasion. This in turn will prolong the operational life of the rope in use. SMIT BRACKET THRUSTER ROOM FWD ( P) UNDER 6 1 8 " [ 1 5 5 ] [ 4 4 1 7 ] 72 P- 2 WB TK UNDER 74 CHOCK PORT PONTOON They normally form part of a standard mooring/towing setup which set in between a mooring bollard and ship bitts on the deck. Hence the importance of Panama chocks plays a vital role in various rigs or vessels. Cast from high quality steel, the Panama chock is normally painted or galvanized to protect it from harsh weather conditions and the effects of salt corrosion. The supply condition of these particular units means that they can be installed on deck more or less immediately. Figure 1: Towing arrangement of a typical Pontoon This design of panama chock proves that the chocks not only available as molded pieces but also can be fabricated in the workshops using large pipe bends and plates. The safe working load of the panama chock is 225 MT (496 kips). The size and shape of the panama chock are determined in such a way that the rope can be accessible through the chock to the tugger within the range of angles required by tugger and chock dimension match to a standard cast chock. Finite Element Analysis is carried out using Ansys 12.0. Keywords Bulwark mounted, cast steel, Mooring bollard, Panama chock, ship bits and Tugger. 1. INTRODUCTION The Panama chocks are generally installed on the vessel to guide the chain/rope mooring lines when the vessel to be moved from the yard to field and vice versa. The rope is tied from the tugger to smit bracket which is welded on the deck with a base plate. To guide the rope and limit the Figure-2: Typical arrangement of bulwark mounted chocks 2018, IRJET Impact Factor value: 7.211 ISO 9001:2008 Certified Journal Page 1200

Figure 3: Typical arrangement of deck mounted chock 2. METHODOLOGY Figure 6: 22" DIA 180 Return SCH-160 pipe This paper presents the design of 225 MT (496 kips) Panama chock which can be fabricated in the workshops using large pipe bends and plates, rather than going for a cast chock and can be installed on the vessel with similar requirement. A 22 diameter Schedule 160 pipe is cut into two pieces to form a C shape. These two C shape half cut pipes are joined together to form a panama chock shape and the chain access requirements as Figure 7: Parts of Fabricated panama chock Figure 4: Typical Cast chock Figure 5: Designed fabricated chock Figure 8: Overall view of fabricated panama chock 2018, IRJET Impact Factor value: 7.211 ISO 9001:2008 Certified Journal Page 1201

3. FINITE ELEMENT MODELING 3.1 FE model The finite element model of the Panama chock is modeled in Ansys 12.0. Mid plane surface of the Panama chock is modeled using 4-noded quadrilateral shell elements (Element type: Shell 63). The finite element model plot of the panama chock is shown below. 3.2 Material properties The material used for the fabricated chock structure is as follows: i. For 22" dia SCH 160 pipe: Material API 5L X52 Density 490 lbs/ft 3 1 thk plate (Gr. NV E36) 22 Ø SCH 160 pipe Yield strength, f y 52 ksi (358 MPa) Ultimate tensile strength, fu 66 ksi (455 MPa) Young s Modulus 30457.9 ksi (210 GPa) Poison s ratio 0.3 ii. For other plates: Material NV E36 Density 490 lbs/ft 3 Yield strength, f y 51 ksi (355 MPa) Ultimate tensile strength, fu 67 ksi (460 MPa) Young s Modulus 30457.9 ksi (210 GPa) Poison s ratio 0.3 3 thk plate (Gr. NV E36) 2 thk plate (Gr. NV E36) Figure 9: FE Model - Fabricated panama chock 3.3 Boundary conditions The Panama chock was constrained in all directions at the bottom part of the chock as shown in the figure below. However, the center plate was not constrained as it will not be welded to the existing deck. View from bottom Figure 9: FE Model - Fabricated panama chock Figure 10: Boundary condition - Fabricated panama chock 2018, IRJET Impact Factor value: 7.211 ISO 9001:2008 Certified Journal Page 1202

4. LOADING CONDITIONS Safe working load (SWL) of the panama chock is 225 MT (496.04 kips). As per DNV-OS-E301, chapter-2 and section-4, the towing fastening devices, including fairleads and their supporting structures shall be designed for a load equal to the minimum breaking strength of the weakest link in the unit s towing bridle and/or towing pennants. The breaking strength of the unit s towing bridle and/or towing pennant shall not be less than 3 times the towing load. Therefore, design factor considered = 3.0 Design load of the Panama chock = 225 3 = 675 MT (1488.12 kips). This load will be applied as pressure load on the contact area of the rope/sling/chain with the chock as shown in the figure below. Resultant force = 2104.52 kips Arc length of the contact = 13.94 in Assumed width of the contact area = 2 in Contact area of the rope/sling = 13.94 2 = 27.88 in 2 Pressure applied on the panama chock in resultant direction, P = 2104.52/27.88 = 75.48 ksi. ii. Allowable criteria: As per DNV-OS-E301 Chapter-2, Section-4, P306, the nominal equivalent stress, σ e, in the towing devices and their supporting structures shall not exceed 0.9 σ f and 0.8 σ f respectively. Where σ e = von-mises stress (Equivalent stress) and σ f = Yield stress of the material. 5. FE RESULTS The static finite element analysis is carried out for the Panama chock for the design along with the self-weight of the structure. Maximum deflection observed in the Panama chock is 0.07ʺ which is well below the allowable limit (L/120). Refer figure 11. i. Calculation of contact pressure on the chock: SWL of chock = 496.04 kips The maximum von0mises stress on the panama chock is found to be 49.22 ksi (Localized stress on only one element due to boundary condition and can be ignored) whereas allowable stress is 46.8 ksi. Refer figure 12 & 13. Design factor = 3.0 Design load on the panama chock = 3.0 496.04 = 1488.12 kips As the pull force will be in both the directions, the resultant force due to pull forces is considered. Figure 11: Total deformation plot (inches) 2018, IRJET Impact Factor value: 7.211 ISO 9001:2008 Certified Journal Page 1203

REFERENCES [1] Det Norske Veritas (Norway) Offshore standard DNV- OS-E301-Position Mooring, 2010. BIOGRAPHY Figure 12: von-mises stress distribution plot (ksi) K V V Satyanarayana was born in Visakhapatnam. The author earned B.Tech in Mechanical Engineering from Jawaharlal Nehru Technological University and perusing M.Tech from Andhra University, Andhra Pradesh. He worked one year in Keppel FELS offshore services Pvt Limited, Mumbai. He has been working for CYIENT Limited, Visakhapatnam since May 2007. His Current position is Project Leader and is working for Design and analysis of Structural components of drilling rigs. Figure 13: von-mises stress distribution plot for internal members (ksi) 6. CONCLUSIONS The strength assessment of the fabricated panama chock was assessed in the present report for the safe working load of 225 T. From the above design and results, it can be concluded that the emergency towing chocks can be either readily available as a molded piece or can be fabricated using the readily available material in the workshop. As the obtained stress results are within the allowable limits, the fabricated panama chock can be considered safe for the given safe working load. 2018, IRJET Impact Factor value: 7.211 ISO 9001:2008 Certified Journal Page 1204