CONVENTIONAL LOCOMOTIVE COUPLING TESTS: TEST REQUIREMENTS AND PRE-TEST ANALYSIS

被引:0
|
作者
Liana, Patricia [1 ]
Tyreii, David [1 ]
Rakoczy, Przemyslaw [2 ]
机构
[1] United States Dept Transportat, Volpe Natl Transportat Syst Ctr, Cambridge, MA USA
[2] Transportat Technol Ctr Inc, Pueblo, CO USA
关键词
D O I
暂无
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
Research to develop new technologies for increasing the safety of passengers and crew in rail equipment is being directed by the Federal Railroad Administration's (FRA's) Office of Research, Development, and Technology. Crash energy management (CEM) components which can be integrated into the end structure of a locomotive have been developed: a push back coupler and a deformable anti-climber. These components are designed to inhibit override in the event of a collision. The results of vehicle-to-vehicle override, where the strong underframe of one vehicle, typically a locomotive, impacts the weaker superstructure of the other vehicle, can be devastating. The components are designed to improve crashworthiness for equipped locomotives in a wide range of potential collisions, including collisions with conventional locomotives, conventional cab cars, and freight equipment. Concerns have been raised in discussions with industry that push-back couplers may trigger prematurely, and may require replacement due to unintentional activation as a result of service loads. It has been shown analytically that push back coupler trigger loads exceed the service load capacity of conventional couplers and draft gears. Two sets of coupling tests are planned to demonstrate this, one with a locomotive equipped with conventional draft gear and coupler and another with a locomotive equipped with a pushback coupler. These tests allow for comparison of conventional with CEM-equipped locomotive measured performance during coupling. In addition to the coupling tests, car-to-car compatibility tests of equipped locomotives and a train-to-train test are also planned. This arrangement of tests allows for evaluation of the CEM-equipped locomotive performance, as well as comparison of measured with simulated locomotive performance in the car-to-car and train-to-train tests. In the coupling tests of conventional equipment, the maximum coupling speed for which there is no damage to either vehicle will be measured. A moving locomotive will be coupled to a standing cab car. The coupling speed for the first test will be 2 mph, the second test 4 mph, and the tests will continue with the speed incrementing by 2 mph until damage occurs to either vehicle. This paper describes the test requirements and analysis predictions for the coupling tests of conventional equipment. The equipment to be tested, track conditions, test procedures, and measurements to be made are described. A one-dimensional model for predicting the longitudinal forces acting on the equipment and couplers has been developed, along with preliminary predictions for the conventional coupling tests. It is expected that damage will occur for coupling speeds between 6 and 8 mph.
引用
收藏
页数:7
相关论文
共 50 条
  • [31] Increasing the Power of the Test Through Pre-Test - A Robust Method
    Yunus, Rossita M.
    Khan, Shahjahan
    COMMUNICATIONS IN STATISTICS-THEORY AND METHODS, 2011, 40 (04) : 581 - 597
  • [32] Modal Pre-test Simulation Analysis of Complex Gearbox Housing
    Zhang, Xiqing
    Xiang, Changle
    Liu, Hui
    Cai, Zhongchan
    ICMS2010: PROCEEDINGS OF THE THIRD INTERNATIONAL CONFERENCE ON MODELLING AND SIMULATION, VOL 2: MODELLING AND SIMULATION IN ENGINEERING, 2010, : 74 - 79
  • [33] Pre-test analysis method using a neural network for control-rod withdrawal tests of HTTR
    Ohno, Tomio
    Subekti, Muhammad
    Kudo, Kazuhiko
    Takamatsu, Kuniyoshi
    Nakagawa, Shigeaki
    Nabeshima, Kunihiko
    Transactions of the Atomic Energy Society of Japan, 2005, 4 (02) : 115 - 126
  • [34] A PRE-TEST CFD ANALYSIS OF HLM FUEL PIN BUNDLE
    Di Piazza, Ivan
    Scarpa, Marco
    Tarantino, Mariano
    PROCEEDINGS OF THE 20TH INTERNATIONAL CONFERENCE ON NUCLEAR ENGINEERING AND THE ASME 2012 POWER CONFERENCE - 2012, VOL 2, 2012, : 685 - 692
  • [35] Test Equating with the Rasch Model to Compare Pre-test and Post-test Measurements
    Uzun, Zeynep
    Ogretmen, Tuncay
    JOURNAL OF MEASUREMENT AND EVALUATION IN EDUCATION AND PSYCHOLOGY-EPOD, 2021, 12 (04): : 336 - 347
  • [36] Peritoneal tumor pathology. Pre-test
    Sabourin, Jean-Christophe
    ANNALES DE PATHOLOGIE, 2015, 35 (04) : 308 - 310
  • [37] A PRE-TEST OF 4 AUSTRALIAN PAINT ADS
    VICKERS, R
    JOURNAL OF ADVERTISING RESEARCH, 1961, 1 (06) : 26 - 32
  • [38] The effect of pre-test deformation on dough rheology
    Roger I. Tanner
    Fuzhong Qi
    Surjani Uthayakumaran
    Shao Cong Dai
    Rheologica Acta, 2013, 52 : 33 - 38
  • [39] LIGHT REINFORCEMENT IN RELATION TO PRE-TEST ILLUMINATION
    WILLIAMS, DI
    LOWE, G
    BRITISH JOURNAL OF PSYCHOLOGY, 1970, 61 (03) : 379 - &
  • [40] The effect of pre-test deformation on dough rheology
    Tanner, Roger I.
    Qi, Fuzhong
    Uthayakumaran, Surjani
    Dai, Shao Cong
    RHEOLOGICA ACTA, 2013, 52 (01) : 33 - 38