DIN 15020-1-1974 Lifting Appliances Principles Relating to Rope Drives Calculation and Construction《升降设备 钢索传动原则 计算和建造》.pdf
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1、iC 621.8W.87 : 621.854 : 677.72 DEUTSCHE NORM Februaty 1974 DIN Lifting Appliances 15 020 Principles Relating to Rope Drives Part 1 Calculation and Construction Hebezeuge; Grundstze fr Seiltriebe; Berechnung und Ausfuhrung 4s it is current practice in standards published by the International Organiz
2、ation for Standardization (ISO), the iomma has been used throughout as a decimal marker. This Standard incorporates technical safety stipulations within the meaning of the Law on Technical Equipment, ree Explanations. This Standard has been drawn up in collaboration with the Hauptverband der gewerbl
3、ichen Berufsgenossenschaften, Zentralstelle fur Unfallverhutung (Federation of Industrial Injuries Insurance Associations, Central Office for Accident Prevention), Bonn, and with the Bundemerband der landwirtschaftlichen Berufsgenossenschaften, Hauptstelle fur landwirtschaftliche Unfallverhutung (Fe
4、deral Association of Agricultural Injuries Insurance Associations, Central Office for Accident Prevention in Agriculture), Kassel. For connection with publications of the Fdration Europenne de la Manutention( FEM = European Mechanical Handling and Conveying Technology Federation), see Explanations.
5、Contents Page 1 scope 2 2 Purpose 2 3 Concepts -2 Calculation of rope drive .2 (coefficient c) .2 4 4.1 Mode of operation (drive group) .2 4.2 Calculation of rope diameter 4.3 Calculation of the diameters of rope drums, rope pulleys and com ensating pulleys coefficient (hl . h2)f. .4 4.4 Dimensionin
6、g of the rope groove (ratio of groove radius to rope diameter) .5 5.1 Nominal strength of the wires . .5 5.2 Wire diameter .7 5.3 Number of strands . .7 5.4 Type of stranding of the strands .7 5.5 Type of lay. . .7 5.6 Handoflay . .7 5.7 Non-twistingornon-rotating wireropes . .7 5.8 Low stress wire
7、ropes . .7 5.9 Steel core . .7 5 Wireropes .5 Page 5.10 Galvanizing. . 7 5.11 Lubrication of the wire rope 7 5.12 Length deviation 7 5.14 Laying of the wire ropes . 7 5.13 Marking 7 6 6.1 Condition of the rope end . 7 6.2 Additional stresses in the rope 7 6.3 Construction of components . 7 6.4 Stres
8、sing of components 8 6.5 Maintenance facility . 8 7 Further requirementsrelating to rope drives 8 7.1 Number of safety turns .8 7.3 Safeguard against running off . 8 7.4 Contact with stationary structural components . . 8 7.5 Exposure to heat .8 7.6 Drumdmensions .8 7.7 Protective casings for rope p
9、ulleys and compensating pulleys . 8 Rope suspensions and rope attachments . 7 7.2 Sideways deflection . 8 Appendix: Efficiency of rope drives . .9 See DIN 15 020 Part 2 (new edition, at present still in draft form) for principles relating to rope drives, supervision during service. See DIN 15 018 Pa
10、rt 1, draft February 1967 edition, Section 8, for holding ropes and tensioning ropes See DIN 15 O60 for sling ropes Continued on pages 2 to 9 Explanations on pages 10 to 12 Sole sala right. of Qennan Stan in the case of rope drives for vehicle winches, an increase in traction force of up to 15% of t
11、he nominal traction force for horizontal traction or for traction at an incline up to 45O, on condition that a safeguard against overloading has been incorporated. If the case of rope drives for multiple rope grabs and similar load suspension devices, the load is not always uniformly distributed bet
12、ween the grab closing rope($ and the holding rope(s) during a working cycle. For this reason, the following distribution of the load onto the closing rope(s) and the holding rope($ is recommended: If the system used promptly and automatically ensures the uniform distribution of the load onto the clo
13、sing rope(s) and holding rope($: Closing rope(s) and holding rope($: 66 % of the load each If the system used does not ensure the uniform distribution of the load onto the closing rope(s) and the holding rope(s) during the course of the lifting process: Closing rope(s): 100% of the load Holding rope
14、(: 66% of the load 4.3 Calculation of the diameters of rope drums, rope pulleys and com ensating pulleys coefficient (hl . h2)f The diameter D of rope drums, rope pulleys and com- pensating pulleys, related to the centre of the wire rope, is calculated from the minimum rope diameter d- determined ac
15、cording to Section 4.2, in accordance with the formula below: the factor h2 is dependent on the arrangement of the rope drive and is listed in Table 5. The values adopted may be lower than those listed in the tables in the case of run-in devices for vehicle winches and of transfer rollers on timber
16、trucks, if this becomes necessary for design or operational reasons. I 5, I 25 I 28 I 28 I 31.5 I 18 I 20 Rope pulleys in grabs may be sized in accordance with drive group 1 B, independently of the grading of the remainder of the rope drive. I 6) In the case of serial lifting appliances, the same co
17、efficients hl may be used for non-twisting or non-rotating wire ropes as for wire ropes which are not non-twisting, on condition that an adequate sewice life is achieved by virtue of the selection of the rope design. DIN 15020 Part 1 Page 5 opposite direction, a 5“ : Rope pulley, a S 5O (see Fig. 2)
18、 Compensating pulley: End attachment of rope: I i w-4 w-o o _- Figure 3. Deflection in the same direction Deflection in the opposite direction Nominal groove radii have been allotted in Table 6 to the nominal rope diameters. Permissible deviations for the groove radius shall be in accordance with DI
19、N 15 061 (at present stili in draft form). Deflection in the opposite direction must be taken into consideration if the angle between the planes of two adjacent rope pulleys (traversed by the rope in succession) amounts to more than 120 (see Fig. 3). (See page 6 for Table 5) 4.4 Dimensioning of the
20、rope grooves (ratio of groove radius to rope diameter) The service life of a wire rope increases with decreasing squeeze between the wire rope and the grooves. It is, therefore, recommended to match the groove radius r as favourably as possible to the nominal diameter d of the rope laid in the .groo
21、ve. The minimum recommended value for r is: r = 0,525 - d (4). 5 Wireropes 5.1 Nominal strength of the whs This Standard applies to wire ropes made of steel wires according to DIN 2078, of 1570,1770 and 1960 N/mm2 (160,180 and 220 kp/mm2) nominal strength, and also, in the case of conventional trans
22、ports, to wire ropes which are not non-twisting and which are made of steel wires of 2160 and 2450 N/mmz (220 and 250 kp/mm2) nominal strength (at present not yet standardized). Page 6 DIN 15020 Part 1 Table 5. Coefficients h2 Examples for arrangements of rope drives h27) for ipednims, ompensn- ring
23、 pulleys Examples of application (drums illustrated in double lines) W Description “ire rope runs on rope irum and over no more ;han 2 rope pulleys with deflection in the same direction or 1 rope pulley with deflection in opposite direction UP to 5 1 / Q Wire rope runs on rope irum and over no more
24、than 4 rope pulleys with deflection in the same direction or 2 rope pulleys with deflection in the same direction and 1 rope pulley with deflection in the opposite direction or 2 rope pulleys with deflection in the opposite direction *I w=7 6 ip to 9 10 and over 1 w=7 2 pulley blocks eachw=7 x s Wir
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