Hammer Grain Crushers: Classification and Efficiency Assessment
https://doi.org/10.21603/2074-9414-2025-1-2566
Abstract
Grain milling is one of the most complex and energy-consuming procedures in the technology of concentrated mixed fodders. Unfortunately, manufacturers provide hammer grain crushers only with technical characteristics, supplying neither technolo gical nor economic performance indicators, which makes it difficult for consumers to select the optimal machine. The article introduces a classification of hammer grain crushers and a methodology for assessing their energy efficiency.
The design, technical, and economic indicators of agricultural hammer crushers were obtained by calculation and analysis of specific metal intensity and energy consumption. The data pool consisted of technical and economic indicators of domestic and foreign hammer crushers, divided into mechanical and pneumatic ones by the type of loading.
The classification relied on the following properties: the type of design, working chamber, feeding, removal, and orientation of the rotor shaft; the presence or absence of grates and decks; the number of stages and discs. The classification was structured as a table of technical and economic indicators for different types and brands. The authors introduced a complex performance index to assess the efficiency of pneumatic and mechanical grain crushers. It took into account the metal consumption and energy consumption. For pneumatic and mechanical hammer crushers with a productivity of ≤ 1, 1–3, 3–5, 5–10, and ≥ 10 t, the index varied from 0.1 to 2.22 (kWt/h/tm)/t: the more efficient the crusher, the lower the index value.
The complex performance index and its graphical representation simplify the selection procedure for the consumer. The results obtained demonstrate the improvement prospects for hammer crushers design.
About the Authors
A. A. MezenovRussian Federation
Artem A. Mezenov
Novosibirsk
N. N. Grigorev
Russian Federation
Nikolai N. Grigorev
Krasnoobsk
N. I. Kashevarov
Russian Federation
Nikolai I. Kashevarov
Krasnoobsk
References
1. Martelli M, Salvio G, Santarelli L, Bracci M. Shift work and serum vitamin D levels: A systematic review and meta-analysis. International Journal of Environmental Research and Public Health. 2022;19(15):8919. https://doi.org/10.3390/ijerph19158919
2. Dash S, Gupta S, Epari V, Patra PY. Association of vitamin D levels in coal miners: A case-control study. Indian Journal of Community Medicine. 2020;45(2):181–183. https://doi.org/10.4103/ijcm.IJCM_269_19
3. Pichkhadze GM, Shalygin AE, Zubtsov YuN. Energy needs of open-pit coal miners. Problems of Nutrition. 1987;6:33–35. (In Russ.)
4. Soboleva OA, Minina VI, Torgunakova AV, Titov RA, Yakovleva AA, et al. Vitamin D status in connection with VDR and GC genes polymorphism in coal mining workers. Problems of Nutrition. 2024;93(4):74–83. (In Russ.) https://doi.org/10.33029/0042-8833-2024-93-4-74-83
5. Batool AI, Naveed NH, Aslam M, da Silva J, ur Rehman MF. Coal dust-induced systematic hypoxia and redox imbalance among coal mine workers. ACS Omega. 2020;5(43):28204–28211. https://doi.org/10.1021/acsomega.0c03977
6. Balali-Mood M, Naseri K, Tahergorabi Z, Khazdair MR, Sadeghi M. Toxic mechanisms of five heavy metals: Mercury, lead, chromium, cadmium, and arsenic. Frontiers in Pharmacology. 2021;12:643972. https://doi.org/10.3389/fphar.2021.643972
7. Chen H, Ding X, Zhang W, Dong X. Coal mining environment causes adverse effects on workers. Frontiers in Public Health. 2024;12:1368557. https://doi.org/10.3389/fpubh.2024.1368557
8. Petsonk EL, Rose C, Cohen R. Coal mine dust lung disease. New lessons from old exposure. American Journal of Respiratory and Critical Care Medicine. 2013;187(11):1178–1185. https://doi.org/10.1164/rccm.201301-0042CI
9. Ferguson JM, Costello S, Elser H, Neophytou AM, Picciotto S, et al. Chronic obstructive pulmonary disease mor tality: The diesel exhaust in miners study (DEMS). Environmental Research. 2020;180:108876. https://doi.org/10.1016/j.envres.2019.108876
10. Alter P, Baker JR, Dauletbaev N, Donnelly LE, Pistenmaa C, et al. Update in chronic obstructive pulmonary disease 2019. American Journal of Respiratory and Critical Care Medicine. 2020;202(3):348–355. https://doi.org/10.1164/rccm.202002-0370UP
11. Milanzi EB, Gehring U. Detrimental effects of air pollution on adult lung function. European Respiratory Journal. 2019;54(1):1901122. https://doi.org/10.1183/13993003.01122-2019
12. Koudasheva AR, Yakupov RR. Osteopenia problem in workers engaged into mining industry. Russian Journal of Occupational Health and Industrial Ecology. 2011;(8):27–29. (In Russ.) https://elibrary.ru/OCBBGF
13. Nasonov EL. Infliximab in modern pharmacotherapy strategies of rheumatoid arthritis. Consilium Medicum. 2006;8(8):5–9. (In Russ.) https://elibrary.ru/RLSWBP
14. Fokina AD, Vesnina AD, Frolova AS, Chekushkina DYu, Proskuryakova LA, et al. Bioactive anti-aging substances: Geroprotectors. Food Processing: Techniques and Technology. 2024;54(2):423–435. (In Russ.) https://doi.org/10.21603/2074-9414-2024-2-2517
15. Faskhutdinova ER, Sukhikh AS, Le VM, Minina VI, Khelef MEA, et al. Effects of bioactive substances isolated from Siberian medicinal plants on the lifespan of Caenorhabditis elegans. Foods and Raw Materials. 2022;10(2):340–352. https://doi.org/10.21603/2308-4057-2022-2-544
16. Maury GL, Rodríguez DM, Hendrix S, Arranz JCE, Boix YF, et al. Antioxidants in plants: A valorization potential emphasizing the need for the conservation of plant biodiversity in Cuba. Antioxidants. 2020;9(11):1048. https://doi.org/10.3390/ antiox9111048
17. Pérez-Gálvez A, Viera I, Roca M. Carotenoids and chlorophylls as antioxidants. Antioxidants. 2020;9(6):505. https://doi.org/10.3390/antiox9060505
18. Kim M-H, Lee S-M, An K-W, Lee M-J, Park D-H. Usage of natural volatile organic compounds as biological modulators of disease. International Journal of Molecular Sciences. 2021;22(17):9421. https://doi.org/10.3390/ijms22179421
19. Panche AN, Diwan AD, Chandra SR. Flavonoids: An overview. Journal of Nutritional Science. 2016;5:e47. https://doi.org/10.1017/jns.2016.41
20. Ullah A, Munir S, Badshah SL, Khan N, Poulson BG, et al. Important flavonoids and their role as a therapeutic agent. Molecules. 2020;25(22):5243. https://doi.org/10.3390/molecules25225243
21. Dias MC, Pinto DCGA, Silva AMS. Plant flavonoids: Chemical characteristics and biological activity. Molecules. 2021;26(17):5377. https://doi.org/10.3390/molecules26175377
22. Mattioli V, Zanolin ME, Cazzoletti L, Bono R, Cerveri I. Dietary flavonoids and respiratory diseases: A populationbased multi-case-control study in Italian adults. Public Health Nutrition. 2020;23(14):2548–2556. https://doi.org/10.1017/S1368980019003562
23. Rees A, Dodd GF, Spencer JPE. The effects of flavonoids on cardiovascular health: A review of human intervention trials and implications for cerebrovascular function. Nutrients. 2018;10(12):1852. https://doi.org/10.3390/nu10121852
24. Li R-L, Wang L-Y, Liu S, Duan H-X, Zhang Q, et al. Natural flavonoids derived from fruits are potential agents against atherosclerosis. Frontiers in Nutrition. 2022;9:862277. https://doi.org/10.3389/fnut.2022.862277
25. Martiniakova M, Babikova M, Mondockova V, Blahova J, Kovacova V, et al. The role of macronutrients, micronutrients and flavonoid polyphenols in the prevention and treatment of osteoporosis. Nutrients. 2022;14(3):523. https://doi.org/10.3390/nu14030523
26. Xiong H-H, Lin S-Y, Chen L-L, Ouyang K-H, Wang W-J. The interaction between flavonoids and intestinal microbes: A review. Foods. 2023;12(2):320. https://doi.org/10.3390/foods12020320
27. Martins T, Barros AN, Rosa E, Antunes L. Enhancing health benefits through chlorophylls and chlorophyll-rich agro-food: A comprehensive review. Molecules. 2023;28(14):5344. https://doi.org/10.3390/molecules28145344
28. Crupi P, Faienza MF, Naeem MY, Corbo F, Clodoveo ML, et al. Overview of the potential beneficial effects of carotenoids on consumer health and well-being. Antioxidants. 2023;12(5):1069. https://doi.org/10.3390/antiox12051069
29. Ebrahimi P, Shokramraji Z, Tavakkoli S, Mihaylova D, Lante A. Chlorophylls as natural bioactive compounds existing in food by-products: A critical review. Plants. 2023;12(7):1533. https://doi.org/10.3390/plants12071533
30. Johra FT, Bepari AK, Bristy AT, Reza HM. A mechanistic review of β-carotene, lutein, and zeaxanthin in eye health and disease. Antioxidants. 2020;9(11):1046. https://doi.org/10.3390/antiox9111046
31. Lenis-Rojas OA, Robalo MP, Tomaz AI, Carvalho A, Fernandes AR, et al. RuII(p-cymene) compounds as effective and selective anticancer candidates with no toxicity in vivo. Inorganic Chemistry. 2018;57(21):13150–13166. https://doi.org/10.1021/acs.inorgchem.8b01270
32. Du Y, Luan J, Jiang RP, Liu J, Ma Y. Myrcene exerts anti-asthmatic activity in neonatal rats via modulating the matrix remodeling. International Journal of Immunopathology and Pharmacology. 2020;34:1–10. https://doi.org/10.1177/2058738420954948
33. Kriger OV, Shepel EI. The effect of the preparation method on the content of biologically active substan ces and antimicrobial activity of extracts of marigold flowers (Tagetes patula L.). Food Metaengineering. 2024;2(2);22–34. (In Russ.) https://doi.org/10.37442/fme.2024.2.49
34. Oganesyants LA, Panasyuk AL, Kuzmina EI, Sviridov DA, Ganin MYu, et al. Isotope mass spectrometry as a tool for identifying organic tomatoes (Solanum lycopersicum L.). Food Processing: Techniques and Techno logy. 2023;53(3):612–620. (In Russ.) https://doi.org/10.21603/2074-9414-2023-3-2461
35. Wang C, Li M, Duan X, Abu-Izneid T, Rauf A, et al. Phytochemical and nutritional profiling of tomatoes; Impact of processing on bioavailability – A comprehensive review. Food Reviews International. 2022;39(8):5986–6010. https://doi.org/10.1080/87559129.2022.2097692
36. Jäpelt RB, Silvestro D, Smedsgaard J, Jensen PE, Jakobsen J. Quantification of vitamin D3 and its hydroxylated metabolites in waxy leaf nightshade (Solanum glaucophyllum Desf.), tomato (Solanum lycopersicum L.) and bell pepper (Capsicum annuum L.). Food Chemistry. 2012;138(2–3):1206–1211. https://doi.org/10.1016/j.foodchem.2012.11.064
37. Aburjai T, Al-Khalil S, Abuirjeie M. Vitamin D3 and its metabolites in tomato, potato, egg plant and zucchini leaves. Phytochemistry. 1998;49(8):2497–2499. https://doi.org/10.1016/S0031-9422(98)00246-5
38. Chen X, Dai X, Liu Y, Yang Y, Yuan L, et al. Solanum nigrum Linn.: An insight into current research on traditional uses, phytochemistry, and pharmacology. Frontiers in Pharmacology. 2022;13:918071. https://doi.org/10.3389/fphar.2022.918071
39. Ostreikova TO, Kalinkina OV, Bogomolov NG, Chernykh IV. Glycoalkaloids of plants in the family Solanaceae (nightshade) as potential drugs. Pharmaceutical Chemistry Journal. 2022;56(7):948–957. https://doi.org/10.1007/s11094-022-02731-x
40. Kuzmichova NA. Phytochemical analysis of fenugreek seeds. Pharmacy Bulletin. 2017;(2):23–31. (In Russ.) https://elibrary.ru/ZEWGHF
41. Butnariu M. Methods of analysis (extraction, separation, identification and quantification) of carotenoids from natural products. Journal of Ecosystem & Ecography. 2016;6(2):100193 https://doi.org/10.4172/2157-7625.1000193
42. Rabotyagov VD, Paliy AE, Fedotova IA. Study of biologically active substances of Lavandula x intermedia emeric ex Loisel. Bulletin of SNBG. 2018;(126):55–61. (In Russ.) https://doi.org/10.25684/NBG.boolt.126.2018.08
43. Vorobeva EE, Minina VI, Soboleva OA, Milentyeva IS, Neverova OA. Creation of a functional curd product with the addition of non-traditional raw materials. Proceedings of the Voronezh State University of Engineering Technologies. 2022;84(4):80–88. (In Russ.) https://doi.org/10.20914/2310-1202-2022-4-80-88
44. Lakshmidevi N, Priyadarshini MR. Evaluation of phytochemicals and validation of antioxidant potential of wild solanum species from Mysore District, Karnataka, India. International Journal of Pharmacy and Biological Sciences-IJPBSTM. 2022;12(4):141–155.
45. Nawrocka J, Szymczak K, Skwarek-Fadecka M, Małolepsza U. Toward the analysis of volatile organic compo unds from tomato plants (Solanum lycopersicum L.) treated with Trichoderma virens or/and Botrytis cinerea. Cells. 2023;12(9): 1271. https://doi.org/10.3390/cells12091271
46. Arafa RA, Kamel SM, Taher DI, Solberg SØ, Rakha MT. Leaf extracts from resistant wild tomato can be used to control late blight (Phytophthora infestans) in the cultivated tomato. Plants. 2022;11(14):1824. https://doi.org/10.3390/plants11141824
47. Agho CA, Runno-Paurson E, Tähtjärv T, Kaurilind E, Niinemets Ü. Variation in leaf volatile emissions in potato (Solanum tuberosum) cultivars with different late blight resistance. Plants. 2023;12(11):2100. https://doi.org/10.3390/plants12112100
48. Cara N, Piccoli PN, Bolcato L, Marfil CF, Masuelli RW. Variation in the amino acids, volatile organic compo unds and terpenes profiles in induced polyploids and in Solanum tuberosum varieties. Phytochemistry. 2020;180:112516. https://doi.org/10.1016/j.phytochem.2020.112516
49. Aburjai TA, Oun IM, Auzi AA, Hudaib MM. Volatile oil constituents of fruits and leaves of Solanum nigrum L. growing in Libya. Journal of Essential Oil-Bearing Plants. 2014;17(3):397–404. https://doi.org/10.1080/0972060X.2014.895194
50. Yamashita H. Biological function of acetic acid-improvement in obesity and glucose tolerance by acetic acid in type 2 diabetic rats. Critical Reviews in Food Science and Nutrition. 2016;56(1):171–175. https://doi.org/10.1080/10408398.2015.1045966
51. Cortesia C, Vilchèze C, Bernut A, Contreras W, Gómez K, et al. Acetic acid, the active component of vinegar, is an effective tuberculocidal disinfectant. mBio. 2014;5(2):e00013-14. http://dx.doi.org/10.1128/mBio.00013-14
52. Seki T, Morimura S, Tabata S, Tang Y, Shigematsu T, et al. Antioxidant activity of vinegar produced from distilled residues of the Japanese liquor shochu. Journal of Agricultural and Food Chemistry. 2008;56(10):3785–3790. https://doi.org/10.1021/jf073040w
53. Masyita A, Mustika SR, Dwi AA, Yasir B, Rumata NR, et al. Terpenes and terpenoids as main bioactive compo unds of essential oils, their roles in human health and potential application as natural food preservatives. Food Chemistry: X. 2022;13:100217. https://doi.org/10.1016/j.fochx.2022.100217
54. Islam MT, Ali ES, Uddin SJ, Shaw S, Islam MdA, et al. Phytol: A review of biomedical activities. Food and Chemical Toxicology. 2018;121:82–94. https://doi.org/10.1016/j.fct.2018.08.032
55. Aparna V, Dileep KV, Mandal PK, Karthe P, Sadasivan Ch, et al. Anti-inflammatory property of n-hexadecanoic acid: Structural evidence and kinetic assessment. Chemical Biology & Drug Design. 2012;80(3):434–439. https://doi.org/10.1111/j.1747-0285.2012.01418.x
56. Bermúdez MA, Pereira L, Fraile C, Valerio L, Balboa MA, et al. Roles of palmitoleic acid and its positional iso mers, hypogeic and sapienic acids, in inflammation, metabolic diseases and cancer. Cells. 2022;11(14):2146. https://doi.org/10.3390/cells11142146
57. Takahashi H, Kamakari K, Goto T, Hara H, Mohri S, et al. 9-Oxo-10(E),12(Z),15(Z)-octadecatrienoic acid acti vates peroxisome proliferator-activated receptor α in Hepatocytes. Lipids. 2015;50(11):1083–1091. https://doi.org/10.1007/s11745-015-4071-3
58. Zhong N, Han P, Wang Y, Zheng C. Associations of polyunsaturated fatty acids with cardiovascular disease and mortality: A study of NHANES database in 2003–2018. BMC Endocrine Disorders. 2023;23(1):185. https://doi.org/10.1186/s12902-023-01412-4
59. Li L, Wang P, Jiao X, Qin S, Liu Zh, et al. Fatty acid esters of hydroxy fatty acids: A potential treatment for obesity-related diseases. Obesity Reviews. 2024;25(6):e13735. https://doi.org/10.1111/obr.13735
60. Młynarska E, Hajdys J, Czarnik W, Fularski P, Leszto K, et al. The role of antioxidants in the therapy of cardiovascular diseases – A literature review. Nutrients. 2024;16(16):2587. https://doi.org/10.3390/nu16162587
61. Taie H, Abd-Alla HI, Ali S, Aly HH. Chemical composition and biological activities of two Solanum tuberosum cultivars grown in Egypt. International Journal of Pharmacy and Pharmaceutical Sciences. 2015;7(6):311–320.
62. Lee KJ, Lee G-A, Ma K-H, Raveendar S, Cho Y-H, et al. Chemical constitutions and antioxidant activities of tomato leaf extracts. Plant Breeding and Biotechnology. 2016;4:362–372. https://doi.org/10.9787/PBB.2016.4.3.362
63. Kudale S, Ghatge S, Shivekar A, Sule C, Desai N. Comparative study of antioxidant potential in hairy roots and field grown roots of Solanum nigrum L. International Journal of Current Microbiology and Applied Sciences. 2016;5(8):42–54. http://dx.doi.org/10.20546/ijcmas.2016.508.005
64. Vázquez-Lorente H, Herrera-Quintana L, Jiménez-Sánchez L, Fernández-Perea B, Plaza-Diaz J. Antioxidant functions of vitamin D and CYP11A1-derived vitamin D, tachysterol, and lumisterol metabolites: Mechanisms, clinical implications, and future directions. Antioxidants. 2024;13(8):996. https://doi.org/10.3390/antiox13080996
65. Brancaccio M, Mennitti C, Cesaro A, Fimiani F, Vano M, et al. The biological role of vitamins in athletes’ muscle, heart and microbiota. International Journal of Environmental Research Public Health. 2022;19(3):1249. https://doi.org/10.3390/ijerph19031249
Review
For citations:
Mezenov A.A., Grigorev N.N., Kashevarov N.I. Hammer Grain Crushers: Classification and Efficiency Assessment. Food Processing: Techniques and Technology. 2025;55(1):214-225. (In Russ.) https://doi.org/10.21603/2074-9414-2025-1-2566
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