

Method of verification hopper scales using force standards
https://doi.org/10.32446/0368-1025it.2024-3-14-19
Abstract
Various existing methods of verification hopper scales are analyzed, including the classical method using weights and alternative methods such as the substitution method and the element-by-element verification method. The analysis revealed the shortcomings of existing methods, as well as difficulties in their application. The main problem of verification heavy-duty scales is the need to manipulate a large number of weights (loading, unloading, storage, transportation, etc.). In most cases, checking hopper scales is generally impossible. In this regard, the task of metrological support of hopper scales has been set and solved. A force method for verification hopper scales has been developed and described. The force method is based on comparing the verifiable scales with the standard of force of the 1st discharge using a comparator. A weight-measuring or force-measuring load cell is used as a comparator. The methods and means of implementing the proposed method of verification hopper scales, as well as the results of testing, proving the possibility of its application and verification of hopper scales using force standards, are presented. On the basis of the force method, a method for verifying the WB CONUS scales using TVS comparators has been developed. The developed method makes it possible to significantly reduce the complexity, time and cost of verification. This is especially true in the production of various materials for which accurate component weighing is critical. The introduction of the force verification method can significantly improve the metrological support for measurements of large masses on scales.
About the Author
D. V. AndreevRussian Federation
Dmitrii V. Andreev
St. Petersburg
References
1. Shmigel’skii I. Yu., Senyanskii M. V., Ostrivnoi A. F., Kotlyarov R. Yu. Ehksperimental’noe issledovanie metrologicheskikh kharakteristik platformennykh bol’shegruznykh vesov. Instruments, (5(521)), 1–6 (2021). (In Russ.)
2. Malygin M. A., Safonov A. N., Graf M. L., Tsai I. S. Novye podkhody k poverke i kalibrovke bunkernykh vesov bez ispol’zovaniya gir’. Instruments, (1(187)), 28–32 (2016). (In Russ.)
3. Ostrivnoi A. F. Methods for verification of heavy weights. Legal and Applied Metrology, (2(170)), 23–28 (2021). (In Russ.)
4. Ostrivnoi A. F., Shmigel’skii I. Yu., Semenov S. A. Improvement of metrological support for measuring large masses. In: Metrologicheskoe obespechenie innovatsionnykh tekhnologii, Saint-Petersburg State University of Aerospace Instrumentation, St. Petersburg, рр. 113–114 (2021). (In Russ.)
5. Okrepilov V. V. (ed.) Russian Metrological Encyclopedia. In 2 vol., vol. 1. IIF Liki Rossii, St. Petersburg (2015). (In Russ.)
6. Shmigelsky I. Yu., Andreev D. V., Ostrivnoi A. F., Sychev V. V. Requirements for force standards used for verification of heavy scales. Measurement Standards. Reference Materials, 18(3), 5–16 (2022). (In Russ.) https://doi.org/10.20915/2077-1177-2022-18-3-5-16
7. Barton J. Hopper Scales – Selecting the Appropriate Device, Weights and Measures Connection, 6(5), A-035 (2015). https://www.nist.gov/document/035pdf-0 (accessed March 27, 2024).
8. Gololobov M. S., Bubnov P. S., Velichko V. I. Gear to test tensiometric hopper balance. Patent RU 192004 U1. Inventions. Utility models, no. 25 (2019).
9. Drachuk P. E., Zhirgalova T. B., Drachuk L. A. Method for dosing from hopper scales. Patent RU 2561306 С1. Inventions. Utility models, no. 24 (2015).
Supplementary files
Review
For citations:
Andreev D.V. Method of verification hopper scales using force standards. Izmeritel`naya Tekhnika. 2024;(3):14-19. (In Russ.) https://doi.org/10.32446/0368-1025it.2024-3-14-19