BS ISO 17682-2013 Ships and marine technology Methodology for ship launching utilizing air bags《船舶与海洋技术 利用安全气囊使船舶下水的方法学》.pdf
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1、raising standards worldwideNO COPYING WITHOUT BSI PERMISSION EXCEPT AS PERMITTED BY COPYRIGHT LAWBSI Standards PublicationBS ISO 17682:2013Ships and marine technology Methodology for shiplaunching utilizing air bagsBS ISO 17682:2013 BRITISH STANDARDNational forewordThis British Standard is the UK im
2、plementation of ISO 17682:2013.The UK participation in its preparation was entrusted to Technical Committee SME/32/-/8, Ships b) class II: ships of more than 1 000 tons but less than or equal to 3 000 tons in weight, or more than 90 m but less than or equal to 120 m in length (LOA);c) class III: shi
3、ps of more than 3 000 tons but less than or equal to 5 000 tons in weight, or more than 120 m but less than or equal to 150 m in length (LOA);d) class IV: ships of more than 5 000 tons in weight, or more than 150 m in length (LOA).4.3 The underwater valves and major equipments are to be installed in
4、 position, tested, inspected and approved by shipyard or shipowner.4.4 All burrs and weld beads on the ships bottom plates and all appendages shall be ground smooth and inspected.4.5 In all underwater compartments, all the hot work on the shell plating, blasting and painting and compartment tightnes
5、s tests shall have been completed and approved by shipowner or classification society. All loose items shall be secured. All mooring equipment and fittings are to be installed.4.6 The draft marks and the load lines shall be verified and approved by inspection.4.7 Outer-hull painting shall have been
6、completed as per the approved paint scheme.5 Requirements for arrangements and equipment5.1 Slipway5.1.1 Shipyard QC shall clear the area where each air bag is to be laid and inflated.5.1.2 The gradient and the length of the slipway shall be determined according to the size of the ship and the hydro
7、logical condition of the area water.5.1.3 The bearing capacity of the slipway shall be at least twice as strong as the working pressure of air bags.5.1.4 For class III and class IV ships, the slipway shall be constructed with reinforced concrete and the height difference between the right and left s
8、ides shall be less than 20 mm. For class II ships, the slipway shall be constructed with cement concrete and the height difference between the right and left sides shall be less than 50 mm. For class I ships, the slipway may be an earthen slope and shall be compacted even by rollers. The height diff
9、erence between the right and left sides shall be less than 80 mm.5.1.5 The main slipway shall enable the ship to glide automatically when the ship is off the tow. The auxiliary slipway shall be determined according to the ship type, the water level at time of launching, the diameter of the air bags,
10、 and the safety requirements.2 ISO 2013 All rights reservedBS ISO 17682:2013ISO 17682:2013(E)5.2 Air bags5.2.1 Air bags shall meet the requirements of ISO 14409.5.2.2 For class III and class IV ships, air bags with bearing capacity of at least 200 kN/m shall be used.5.2.3 Prior to using any air bag
11、for ship launching, all air bags shall be tested for any potential leakage. Without applying any external load, an air bag shall be filled to 1,25 times of the rated working pressure, as shown in Table 3 of ISO 14409:2011, and the pressure shall be maintained for at least one hour.5.2.4 According to
12、 the weight of the ship being launched, the quantity of the air bags needed for this operation shall be calculated in accordance with Formula (1):NKQgCRL=1bd(1)whereN is the quantity of air bags used for ship launching;K1is a coefficient, in general, K1 1,2;Q is the weight of the ship (ton);g is acc
13、eleration of gravity (m/s2), g = 9,8;Cbis the block coefficient of the ship being launched;R is the allowable unit bearing capacity of the air bags (kN/m), see Table 3 of ISO 14409:2011;Ldis the contact length between the bottom of the ship and the body of the air bag at the midship section (m).5.2.
14、5 For ship shifting, 2 to 4 additional air bags shall be made ready and available.5.2.6 For class IV ships, prior to launching, calculations shall be made for transferring from docking blocks. The product of the bearing load of an air bag times the distance between the air bag and the ships longitud
15、inal centre of gravity shall be less than 1 % of the product of ships launching weight times the distance between the perpendiculars.5.2.7 The centre to centre distance between two neighbouring air bags shall be less than or equals to that found in Formula (2) and equals to or be greater than that f
16、ound in Formula (3).L/(N 1) 6k (2)L/(N 1) D/2 + 0,3 (3)whereL is the actual length of the ship bottom that can make contact with the air bags (m);N is the quantity of air bags used for ship launching; ISO 2013 All rights reserved 3BS ISO 17682:2013ISO 17682:2013(E)k is a coefficient, k = 1 for steel
17、 ships, k = 0,8 for wooden, aluminium and glass-fibre-reinforced ships;D is the nominal diameter of air bags (m).5.2.8 In general, the long axes of the air bags shall be arranged perpendicular to the direction of ships movement. When it is necessary to move a ship in a curved manner, the long axes o
18、f the air bags shall be arranged perpendicular to the direction of tangent line to the curve.5.2.9 See Annex A for air bags arrangement.5.3 Towing arrangement5.3.1 A windlass shall be used to control the movement of the ship. Tow system that comprises windlass, steel wire rope and pulley set shall b
19、e securely fastened to the ground anchor in front of the berth.5.3.2 In general, a slow windlass shall be selected for ship launching. The veering speed of the windlass shall be 9 m/min to 13 m/min.5.3.3 The forces of the windlass and the steel wire rope are shown in Figure 1 when the ship is being
20、launched and before gaining any floatation. The maximum tensile force of the steel wire rope shall be calculated in accordance with Formula (4). The hauling force of windlasss steel wire shall be checked in accordance with Formula (5).Figure 1 Force components of a ship being launchedFQg QgQvt= +sin
21、 cos (4)FKFNcccos(5)whereF is the maximum pulling force of the steel wire rope when the ship is being launched (kN); is the angle between the ship, which is borne by air bags, and the horizon (degree); is a friction coefficient of the rolling air bags on the slipway. It shall be determined according
22、 to many factors such as gradient of the slipway, condition of the ground, configuration and internal pressure and arrangement of air bags (see Table B.1 of Annex B for an example);v is the speed of the ship in motion (m/s);4 ISO 2013 All rights reservedBS ISO 17682:2013ISO 17682:2013(E)t is the tim
23、e for the windlass to brake the ship motion (s);Fcis the tensile force of the steel wire rope of the windlass (N);K is the safety coefficient, in general, K = 1,21,5;Ncis the number of the hauling wire ropes on the moving tackle; is the angle between the direction of maximum pull force (F) and the s
24、teel wire rope (degree). In general, it is not to be greater than 6.5.3.4 Windlass shall be securely fixed to the ground anchor. The design load of ground anchor shall meet the requirement of the calculated pulling force (F).5.3.5 The steel wire ropes shall meet the requirements of ISO 2408, with ca
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