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in mining machines with friction discs, but also in multi-rope traction elevators, it is necessary to distribute the applied tensile load, generated by the weight of the cage and counterweight, evenly in all cross-sections of the load-bearing ropes. hydraulic devices used for this purpose can operate on the principle of pascal's law. this article presents a structural design, a 3d model and an implemented solution of a laboratory device capable of simulating a practical method of evenly distributing the total weight of the load into partial tensile forces of the same size acting on a selected number of load-bearing ropes. the laboratory equipment uses two pairs of three steel cables of finite length for the simulations. during the experimental measurements, tensile forces derived from the tractive force of the piston rods, pushed into the bodies of the hydraulic cylinders by the pressure of the hydraulic oil supplied through the pipeline under the pistons of the hydraulic cylinders, were detected. the resulting amount of hydraulic oil pressure in the hydraulic circuit influenced by different values of the hydraulic oil pressures in the hydraulic cylinders and by the pressure in the supply pipe was experimentally studied on the laboratory equipment. simulations were also carried out in order to detect the hydraulic oil pressure in the hydraulic circuit caused by the change in the different magnitudes of the tensile forces in the ropes. from the experiments carried out, it follows that with the appropriate choice of hydraulic elements and the design of the hydraulic circuit, the weight of the load, acting as the total pulling force in the ropes, can be evenly distributed (with a deviation of up to 5%) to all cross-sections of the load-bearing ropes. if the exact values of the hydraulic oil volumes under the pistons of all hydraulic cylinders are not known, it is not possible to calculate the pressure values in the hydraulic circuit when the valves of the hydraulic pipes are gradually opened.
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in mining machines with friction discs, but also in multi-rope traction elevators, it is necessary to distribute the applied tensile load, generated by the weight of the cage and counterweight, evenly in all cross-sections of the load-bearing ropes. hydraulic devices used for this purpose can operat …
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in mining machines with friction discs, but also in multi-rope traction elevators, it is necessary to distribute the applied tensile load, generated by the weight of the cage and counterweight, evenly in all cross-sections of the load-bearing ropes. hydraulic devices used for this purpose can operate on the principle of pascal’s law. this article presents a structural design, a 3d model and an implemented solution of a laboratory device capable of simulating a practical method of evenly distributing the total weight of the load into partial tensile forces of the same size acting on a selected number of load-bearing ropes. the laboratory equipment uses two pairs of three steel cables of finite length for the simulations. during the experimental measurements, tensile forces derived from the tractive force of the piston rods, pushed into the bodies of the hydraulic cylinders by the pressure of the hydraulic oil supplied through the pipeline under the pistons of the hydraulic cylinders, were detected. the resulting amount of hydraulic oil pressure in the hydraulic circuit influenced by different values of the hydraulic oil pressures in the hydraulic cylinders and by the pressure in the supply pipe was experimentally studied on the laboratory equipment. simulations were also carried out in order to detect the hydraulic oil pressure in the hydraulic circuit caused by the change in the different magnitudes of the tensile forces in the ropes. from the experiments carried out, it follows that with the appropriate choice of hydraulic elements and the design of the hydraulic circuit, the weight of the load, acting as the total pulling force in the ropes, can be evenly distributed (with a deviation of up to 5%) to all cross-sections of the load-bearing ropes. if the exact values of the hydraulic oil volumes under the pistons of all hydraulic cylinders are not known, it is not possible to calculate the pressure values in the hydraulic circuit when the valves of the hydraulic pipes are gradually opened.
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considerations for equalizing multi-point anchor systems international technical rescue symposium (itrs)[/fusion_text][fusion_text] project videos: https://youtu.be/ohtoomhzsrc abstract building sound anchors is one of the fundamental elements of recreational climbing, rope access, and technical rope rescue. anchor configuration methods are also some of the most discussed, debated, varied, and perhaps doctrine-based skill sets in the entirety of ropework. however, much of the debate as to which anchoring technique is most appropriate for a given situation is dependent on anecdotal evidence as well as the way that we have always done it. the wide range of anchoring techniques and practices employed across different practitioners, organizations, and disciplines suggests that there is a high degree of unknowns and perhaps misunderstanding within the ropework community. in the spirit of increasing our own understanding of ‘how stuff works’ in anchoring, we chose to examine how dedicating more strands (i.e. material) to a given anchor point affects the overall load distribution in a multi-point anchor system. additionally, we examined how a knot at a given location in a multi-point anchor system affects the force distributed to the various anchor legs. our test method focused primarily on 2-point anchor systems with equal length legs. the leg lengths examined were either 1 meter per strand or 5.5 meters per strand in order to compare the effect of different amounts of material for a given test set-up. the research was conducted using a hydraulic ram slow pull machine and resultant forces were captured using electronic dynamometers at each of the two anchor points as well as at the focal point (aka master point of attachment). over 150 slow pull examinations were conducted on a wide variety of configurations including: 1 strand vs. 2 strands, 1 strand vs. 3 strands, 2 strands vs. 3 strands, etc. material used included 8mm low stretch kernmantle cord as well as 11mm low stretch rope. we discovered that there is a wide range of force distribution in even the most carefully constructed multi-point load distributing anchor system. additionally, anchor systems that include a disparate number of strands dedicated to a given anchor point affect the force distribution significantly. and lastly, knots in the anchor system on individual strands affect the distribution further still. as ropework practitioners, when we approach a multi-point anchoring scenario with the intent of equalizing that anchor system, the techniques that we employ will likely have a significant affect on the overall force distribution achieved. our given practices may be unintentionally favoring individual anchor points more than we intended. the reason that anchor system failures are a relatively rare occurrence likely speaks to just how overbuilt our systems are as a general practice. a more thoughtful approach to the rigging techniques employed in a multi-point anchor system will provide the greatest dividends when the overall quality of anchor points is dubious at best. ideally this research can provide an impetus for further research in the topic as well as a critical thinking approach to ropework techniques and practices.
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supporting tools performance measurement device description the rpm rope performance measurement device makes it easier for you tocheck the rope tension during the installation, inspection and maintenance ofelevators. advantages quick, easy and precise determination of rope diameter and tension comparison and measurement of the rope tensions, e.g. within a rope set determination of the weight […]
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wire rope tension is one of the vital monitoring parameters for the hoister system, which seriously influence mine coal safety production. however, wire ropes endure vibration and shock in lifting process of multi-rope friction hoisters in coal mine, which interferes with measurement of wire rope tension and lifting load seriously. aimed to the difficulty of monitoring wire rope tension, this paper put forward a new measurement method of wire rope tension by transferring wire rope tension measurement to pressure measurement, which improves the measurement safety and avoids the safety hazards of adopting pull sensor in series with wire rope, and this paper also designed an acoustic filtering sensor which uses the filtering characteristic of acoustic cavity to eliminate the effect of vibration and shock in wire rope tension measurement. meanwhile, a novel wire rope tension monitoring device of multi-rope friction hoister is presented based on the proposed measurement method and sensor, which can measure each wire rope tension in the lifting process, display the cage load and monitor the fault of wire rope tension unbalance. real-time and accurate wire rope tension measurement is realized. by comparing the signals measured by the common sensor and the acoustic filtering sensor, the influence of vibration and shock on the multi-ropes tension measurement is eliminated, and the fault of wire rope tension unbalance can be monitored. this advanced tension monitoring device is of great significance to the safety of coal mine production.
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