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Journal articles on the topic 'Cleaning equipment'

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1

Lv, Chuan Dong, Ji Fei Cai, and Run Xie. "Research of Unpowered Cleaning Equipment for Blanket Cylinder." Applied Mechanics and Materials 312 (February 2013): 124–27. http://dx.doi.org/10.4028/www.scientific.net/amm.312.124.

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In order to enhance the cleaning speed, reduce the cleaning cost and solve other problems of the existing cleaning equipment for blanket cylinder, we put forward a new-type unpowered cleaning equipment for blanket cylinder after a comparative analysis between powered spurt brush type cleaning equipment and unpowered cleaning cloth type cleaning equipment with respect to their structures and characteristics. Furthermore, after we study the cylinder structure of printing press and the cleaning effect of the existing cleaning equipments, a spurt brush type is proposed. We obtain the optimal press
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2

Haydu, Juan, and Mikael Norman. "Equipment for biological cleaning." Metal Finishing 100, no. 10 (2002): 35–37. http://dx.doi.org/10.1016/s0026-0576(02)80862-5.

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3

Hu, De Dong, Zhao Kuan Ning, Bin Han, He Zhang, and Gong Ru Gao. "Precision Parts Cleaning Equipment Using Supercritical Carbon Dioxide and Ultrasonic." Key Engineering Materials 561 (July 2013): 407–10. http://dx.doi.org/10.4028/www.scientific.net/kem.561.407.

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Conventional cleaning technology and equipments could hardly satisfy effective cleaning of slit micropores from the precision parts, but using supercritical carbon dioxide(SCCO2) and ultrasonic cleaning technology with would solve this problem. SCCO2 have characteristics of low surface tension, fast moving, high dissolubility, strong diffusivity, no chemical additives and recyclable use. The precision parts would widely use this cleaning technology. In the article the precision parts cleaning equipment using SCCO2 and ultrasonic is proposed, and the equipment could use supercritical cleanout a
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Wu, Shi Hong, Bu Zhang, Feng Yu He, and Bao Fa Li. "Kinematics Simulation of Residues Cutting and Ridge Cleaning Equipment Based on ADAMS." Applied Mechanics and Materials 29-32 (August 2010): 819–23. http://dx.doi.org/10.4028/www.scientific.net/amm.29-32.819.

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The residues cutting and ridge cleaning equipments of Ridge-tillage planter are important working parts which can prevent no-tillage planter from clogging and ensure good quality of seeding. For this, How to use ADAMS software to establish the simulation model of residues cutting and cleaning equipment is introduced, and the simulation analysis of its cutting residues and cleaning the ridge is done in this paper. Simulation results show that running results are in line with the theoretical analysis, which improved the design of residues cutting and ridge cleaning equipment of No-tillage plante
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5

&NA;. "Hazards of Cleaning Medical Equipment." Advances in Neonatal Care 8, no. 2 (2008): 76. http://dx.doi.org/10.1097/01.anc.0000317253.30460.93.

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6

Nikolaikin, N. I., N. E. Nikolaikina, and O. S. Chekhov. "Equipment for cleaning effluent gases." Chemical and Petroleum Engineering 24, no. 10 (1988): 577–78. http://dx.doi.org/10.1007/bf01147213.

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7

Murtazoyev, Abduvohid O'ktam o'g'li. "COTTON CLEANING MACHINES AND EQUIPMENT." MODELS AND METHODS IN MODERN SCIENCE 1, no. 15 (2022): 47–49. https://doi.org/10.5281/zenodo.7214155.

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Cotton gin engineering is a branch of heavy machinery that supplies the cotton gin industry with machinery and equipment. This article presents the production program of cotton ginning machines, equipment and cotton ginning machines.
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8

Li, Shuo, Yichen Zhang, and Shijie Liu. "Design and Research of a New Type of Compound Automatic Cleaning Equipment for Vegetables." Journal of Engineering System 1, no. 2 (2023): 31–35. http://dx.doi.org/10.62517/jes.202302206.

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In order to adapt to different types of vegetable cleaning, improve the quality of cleaning work, this paper designs a home or small restaurant to use a new complex automatic cleaning equipment for vegetables. The equipment adopts the innovative structure of“Pipeline single-cavity multi-mode”. The whole equipment adopts assembly line layout, which is convenient for structural layout and makes cleaning work in order. The cleaning chamber integrates various functions, and different types of vegetables are cleaned in a single multi-function cleaning chamber, so that the volume of the equipment is
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9

Li, Chao, Nan Pang, Kai Xu, et al. "Application of Multi-Cylinder Synchronous Control for Telescopic Mechanism of Marine Steel Pile Cleaning Equipment." Journal of Marine Science and Engineering 11, no. 5 (2023): 1010. http://dx.doi.org/10.3390/jmse11051010.

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In order to clean up marine fouling attached to marine steel pile, this paper proposed an innovative configuration scheme of the marine steel pile cleaning equipment by the scraping method and its telescopic mechanism by applying a multi-cylinder synchronous control strategy to the cleaning equipment, and produced a test prototype of the cleaning equipment that could solve the problem of cleaning equipment eccentricity and tilt in the field of ocean engineering. Based on the MATLAB Simulink module, a simulation model of the operation process of the telescopic mechanism of the marine steel pile
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10

Ulug‘muradov, Kh Yu, E. T. Muxametshina, B. S. Altmishov, and R. M. Muradov. "CONDUCTING EXPERIMENTS BY INSTALLING A DIFFERENT MESH SURFACE ON LABORATORY EQUIPMENT THAT CLEANS FROM SMALL IMPURITIES." Mechanics and Technologies, no. 1 (March 30, 2025): 470–76. https://doi.org/10.55956/zbxo7784.

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This article presents a study on a machine designed for cleaning cotton from small impurities, focusing on its main components. A laboratory version of the cleaning equipment was developed, and its operating principle is described. Various mesh surfaces were prepared in different sizes and shapes, and their effective surface areas were measured. The research objectives were defined, and experiments were conducted using mesh surfaces of different geometries installed on the laboratory equipment. The impact of mesh surface shape on cleaning efficiency, seed damage, and the presence of fiber defe
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11

Koziy, Ivan. "SYSTEMATIC APPROACH TO SELECTION OF ENVIRONMENTAL EQUIPMENT." Technogenic and Ecological Safety, no. 11(1/2022) (April 7, 2022): 48–54. http://dx.doi.org/10.52363/2522-1892.2022.1.7.

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The article considers the optimal choice of effective dust and gas cleaning equipment taking into account the actual environmental conditions and characteristics of pollutants. Deposition of pollutants from gaseous emissions leads to soil pollution and migration of heavy metals into groundwater and surface water, so the question of optimal choice of effective environmental equipment is relevant to the study. The problem of reasonable selection of optimal dust and gas cleaning equipment should consider the parameters of pollutants and environmental conditions of the cleaning process, which can
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12

Lenehan, David. "Spring Cleaning." Manufacturing Management 2022, no. 2-3 (2022): 16–17. http://dx.doi.org/10.12968/s2514-9768(22)90297-2.

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13

Nitskaya, Svetlana G., K. R. Smolyakova, and Irina V. Shmidt. "Optimizing the Performance of Electroplating Gas-Cleaning Equipment." Solid State Phenomena 299 (January 2020): 792–97. http://dx.doi.org/10.4028/www.scientific.net/ssp.299.792.

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Electroplating industry has by-products, most of which are harmful. The paper considers the issue of removing aerosol emissions during chrome coating. We developed a droplet separator, which was granted a patent for a useful model. Based on the model, we proposed a stage-by-stage technical procedure for cleaning gas-air mixture to optimize the performance of gas-cleaning equipment during hard chrome coating. We calculated the amounts of water vapor and chromic anhydride which is released during chrome plating without cleaning and when using the developed procedure for gas mixture cleaning. We
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14

Kübler, Frank, Thomas H. J. Uhlemann, Justus Dill, and Rolf Steinhilper. "Energy Efficiency and Productivity Optimization of Industrial Cleaning Equipment." Applied Mechanics and Materials 805 (November 2015): 265–72. http://dx.doi.org/10.4028/www.scientific.net/amm.805.265.

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Advanced cleanliness requirements in production are forcing industrial companies to include new cleaning processes into their manufacturing process. Complex cleaning operation procedures can lower process productivity and at the same time are responsible for substantial parts of the overall energy consumption. An optimization of cleaning processes with respect to cleaning duration, energy consumption and efficiency can therefore contribute to cost reduction significantly. This article presents a procedure for real data based assessment of industrial cleaning equipment. Based upon the resulting
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15

FUJITA, Hisashi, Yasunori KANEKO, and Hajime SHIBATA. "Cleaning technique and equipment for semiconductor." Journal of the Japan Society for Precision Engineering 54, no. 10 (1988): 1845–48. http://dx.doi.org/10.2493/jjspe.54.1845.

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16

Bueno-Borges, Larissa, and Marisa Regitano-d'Arce. "Cleaning oxidative-stability-index-equipment components." INFORM: International News on Fats, Oils, and Related Materials 27, no. 9 (2016): 16–19. http://dx.doi.org/10.21748/inform.10.2016.16.

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17

Saito, Tetsuya. "Operating Experience of Canvas Cleaning Equipment." JAPAN TAPPI JOURNAL 75, no. 9 (2021): 822–25. http://dx.doi.org/10.2524/jtappij.75.822.

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18

Juwarkar, ChitraSanjeev. "Cleaning and sterilisation of anaesthetic equipment." Indian Journal of Anaesthesia 57, no. 5 (2013): 541. http://dx.doi.org/10.4103/0019-5049.120152.

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19

Zatsarinnaya, Yu N., and D. I. Amirov. "New equipment for cleaning solar panels." IOP Conference Series: Materials Science and Engineering 971 (December 1, 2020): 052005. http://dx.doi.org/10.1088/1757-899x/971/5/052005.

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20

Sharbaugh, Robert J. "Cleaning Reusable Equipment in the ICU." Critical Care Nursing Quarterly 24, no. 2 (2001): 48–54. http://dx.doi.org/10.1097/00002727-200108000-00007.

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21

Lewis, Simon, and Andrew K. McIndoe. "Cleaning, disinfection and sterilization of equipment." Anaesthesia & Intensive Care Medicine 5, no. 11 (2004): 360–63. http://dx.doi.org/10.1383/anes.5.11.360.53403.

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22

McGoldrick, Mary. "Cleaning and Disinfecting Prothrombin Monitoring Equipment." Home Healthcare Now 34, no. 10 (2016): 574. http://dx.doi.org/10.1097/nhh.0000000000000470.

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23

Kanegsberg, Barbara, and Ed Kanegsberg. "Coatings, Cleaning Equipment, and HCFC 225." Metal Finishing 110, no. 8 (2012): 28–29. http://dx.doi.org/10.1016/s0026-0576(13)70146-6.

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24

Sutherland, Ken. "Choosing equipment: Cleaning air and gas." Filtration & Separation 44, no. 1 (2007): 16–19. http://dx.doi.org/10.1016/s0015-1882(07)70020-4.

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25

de Zoysa, Himala, and Emma Morecroft. "Cleaning, disinfection and sterilization of equipment." Anaesthesia & Intensive Care Medicine 8, no. 11 (2007): 453–56. http://dx.doi.org/10.1016/j.mpaic.2007.09.001.

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26

Veerabadran, Sethu, and Ian M. Parkinson. "Cleaning, disinfection and sterilization of equipment." Anaesthesia & Intensive Care Medicine 11, no. 11 (2010): 451–54. http://dx.doi.org/10.1016/j.mpaic.2010.08.005.

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27

Gaikovoi, V. P. "New centrifugal equipment for cleaning sewage." Chemical and Petroleum Engineering 26, no. 5 (1990): 250–53. http://dx.doi.org/10.1007/bf01149683.

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28

Kadoya, Kanichiro. "Operating Experience of Canvas Cleaning Equipment." JAPAN TAPPI JOURNAL 68, no. 4 (2014): 371–75. http://dx.doi.org/10.2524/jtappij.68.371.

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29

Springer, Rachelle. "Cleaning and Disinfection of Anesthesia Equipment." Plastic Surgical Nursing 30, no. 4 (2010): 254–55. http://dx.doi.org/10.1097/psn.0b013e3181fd4a13.

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30

Fatyukhin, D. S. "Ultrasonic cleaning equipment for automobile components." Russian Engineering Research 32, no. 3 (2012): 305–7. http://dx.doi.org/10.3103/s1068798x12030100.

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31

Honda, Satoru. "Operating Experience of Canvas Cleaning Equipment." JAPAN TAPPI JOURNAL 76, no. 11 (2022): 986–91. http://dx.doi.org/10.2524/jtappij.76.986.

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32

Moshkina, S. A., and S. A. Vas’kov. "Modern gas-cleaning equipment for metallurgy." Metallurgist 52, no. 7-8 (2008): 382–87. http://dx.doi.org/10.1007/s11015-008-9074-3.

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33

Abduraxmon, Sulaymonov, and Alizafarov Bekzod. "ANALYSIS OF TOXIC GAS CLEANING EQUIPMENT." EURASIAN JOURNAL OF MATHEMATICAL THEORY AND COMPUTER SCIENCES 1, no. 3 (2021): 16–18. https://doi.org/10.5281/zenodo.5703181.

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Nowadays, with the development of machinery and technology, the demand and supply of production is growing. As a result, the quality and volume of products are in line with modern requirements. Until the raw material becomes a finished product, the secondary waste dust and gases emitted from them are released into the atmosphere as emissions. This, in turn, is causing environmental damage.
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34

Brooks, Rich. "“IC Packaging Trends Causing Concerns in Complete Flux Removal”." International Symposium on Microelectronics 2011, no. 1 (2011): 000971–78. http://dx.doi.org/10.4071/isom-2011-tha3-paper3.

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The complete cleaning and removal of flux / soil residues under low profile components (especially flip-chip devices) are becoming more critical, especially as the conductor spacing’s decreases and the power increases. The reliability of the circuit can be greatly affected when residues are not completely removed. Flip chip bump pitch and die size push packaging trends resulting in tighter and smaller spaces underneath the devices. A majority of flip-chip assemblers are using water soluble fluxes and they typically use only DI water to remove the flux residues. Because of the tighter spaces an
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35

Massé, Daniel I., Lucie Masse, Edward Topp, et al. "Maintenance strategies for on-site water disinfection by ultraviolet lamps on dairy farms." Water Quality Research Journal 46, no. 1 (2011): 2–12. http://dx.doi.org/10.2166/wqrjc.2011.014.

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Bacteria have been detected in many water supplies on dairy farms, and the water used to wash milking equipment should be free of bacteria. This study evaluated two ultraviolet (UV) technologies, with and without automatic sleeve cleaning device, as on-farm water disinfection system. No fouling was observed during 6 months of continuous operation of the self-cleaning UV system. The dose provided by a non self-cleaning UV lamp decreased by 41% and 96% after 30 and 60 days of continuous operation, respectively, at the maximum recommended water hardness and iron levels. However, when the lamp was
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36

Iskandar, Iskandar, and Aris Kurniawan Santoso. "Analysis of the Effect of Equipment Readiness on the Tank Cleaning Process (Case Study of MT. Akra 102)." RSF Conference Series: Engineering and Technology 3, no. 1 (2023): 184–94. http://dx.doi.org/10.31098/cset.v3i1.747.

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Tank cleaning is defined as the activity of cleaning tanks from residues of previous cargo, including cleaning and checking pumping equipment, heater equipment, filling pipes, ventilation pipes and auxiliary engines. During the tank cleaning process there were many obstacles such as the tool not working normally, the crew's lack of knowledge, and the tank not being clean and dry which resulted in an attack on the loading process. This study set out to ascertain how equipment preparedness affected tank cleaning. This study employed a descriptive method with a quantitative approach as its resear
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37

Korcok, Davor, and Nada Trsic-Milanovic. "The application of cleaning validation principles on dietary supplements production equipment." Acta Periodica Technologica, no. 48 (2017): 141–53. http://dx.doi.org/10.2298/apt1748141k.

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Cleaning validation for pharmaceutical production equipment is a documented proof of the efficient cleaning, and one of prerequisites of good manufacturing practice in medicine production. Successful validation confirms the efficiency of the procedures of cleaning, washing, and disinfecting of the manufacturing equipment, and records results of the chemical and microbiological analyses, which are a prerequisite for a safe final dietary product. The main goal of this study was to improve the cleaning process of the production equipment by using cleaning validation procedures on the solid form p
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38

Soubieux, Annaelle, Marie Palamini, Cynthia Tanguay, and Jean-François Bussières. "Evaluation of decontamination strategies for cyclophosphamide." Journal of Oncology Pharmacy Practice 26, no. 2 (2019): 413–22. http://dx.doi.org/10.1177/1078155219865931.

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Purpose The main objective was to determine the efficacy of various types of cleaning equipment and products after deliberate contamination with cyclophosphamide. The secondary objective was to test various cleaning scenarios using these equipment and products. Methods The study had two phases: testing of cleaning equipment (wipe : woven microfibers – Hygen®, two layers of non-woven microfibres and an inner layer of highly absorbent viscose fibres – MicronSolo®, two layers of non-woven microfibres and an inner layer of highly absorbent viscose fibres – MicroMix®, simili-tissu (low filament pro
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39

Egamberdiyev, Fazliddin, Qadam Jumaniyazov, Bektosh Doniyorov, and El’mira Muxametshina. "IMPROVING THE CLEANING EFFICIENCY OF ADVANCED DOUBLE-DRUM STRAIGHT-THROUGH EQUIPMENT FOR FIBER CLEANING." TECHNICAL SCIENCES 5, no. 3 (2020): 71–78. http://dx.doi.org/10.26739/2181-9696-2020-5-11.

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This article provides data on the need to improve the fiber-cleaning equipment used at ginneries in order to increase the efficiency of cleaning machine cotton picking. The equipment is equipped with a special design guide device. The results of analyzes conducted on advanced equipment are presentedin tabular and graphical form. Recommendations are given on the introduction of a special design guide device.
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40

Ulugmuradov, Xamroz, Ilkhom Abbazov, Bobir Sharopov, Rustam Muradov, and Maxfuza Gapparova. "Basis of the improved construction of cotton cleaning equipment." E3S Web of Conferences 434 (2023): 03022. http://dx.doi.org/10.1051/e3sconf/202343403022.

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In this article, the analysis of news on the development of the cotton industry in our republic is presented. In addition, based on theoretical studies and analyzes of cleaning processes used in foreign countries, ways to improve the cleaning efficiency of the pile drum, which is the main working organ of cotton cleaning equipment from small impurities. It is based on the need to carry out theoretical calculations of the cleaning surface to improve the cleaning efficiency of the cleaning equipment from small impurities. The results of the theoretical research on calculation of useful surfaces
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41

Spoerk, Martin, Ioannis Koutsamanis, Josip Matić, et al. "Novel Cleaning-in-Place Strategies for Pharmaceutical Hot Melt Extrusion." Pharmaceutics 12, no. 6 (2020): 588. http://dx.doi.org/10.3390/pharmaceutics12060588.

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To avoid any type of cross-contamination, residue-free production equipment is of utmost importance in the pharmaceutical industry. The equipment cleaning for continuous processes such as hot melt extrusion (HME), which has recently gained popularity in pharmaceutical applications, necessitates extensive manual labour and costs. The present work tackles the HME cleaning issue by investigating two cleaning strategies following the extrusion of polymeric formulations of a hormonal drug and for a sustained release formulation of a poorly soluble drug. First, an in-line quantification by means of
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42

Groysman, Alec. "Cleaning Oil Refining and Petrochemical Process Equipment." Materials Performance 57, no. 2 (2018): 40–43. https://doi.org/10.5006/mp2018_57_2-40.

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This article discusses mechanical and chemical cleaning procedures along with safety, environmental, and general recommendations for equipment cleaning, including cooling water systems in the oil refining and petrochemical industries. These methods can also be used in other industries.
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43

Dahiya, Saurabh, Diwan Chand, Yachika Goyal, and Chanchal Sharma. "Cleaning Validation: A Crucial Step in Assuring Quality During Pharmaceutical Manufacturing." INTERNATIONAL JOURNAL OF PHARMACEUTICAL QUALITY ASSURANCE 13, no. 04 (2022): 484–89. http://dx.doi.org/10.25258/ijpqa.13.4.22.

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Cleaning procedures for manufacturing equipment have been shown to prevent product contamination through the cleaning validation process. This review aims to understand how the cleaning validation plays a critical role in managing contamination or cross-contamination issues during good manufacturing practices (GMP). Emphasis on the quantity of cleaning required for the machinery, the elimination of contamination during manufacturing procedures are discussed here. The article describes various cleaning agents as well as sampling methods for cleaning equipment. Focus is laid on the elements of c
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44

Xu, Yan Yan, Shi Hui Gao, Lai Jiu Zheng, Juan Zhang, Bing Du, and Ju Wei. "The Research of Cleaning Process for Supercritical Carbon Dioxide Dyeing Equipment." Advanced Materials Research 1048 (October 2014): 515–18. http://dx.doi.org/10.4028/www.scientific.net/amr.1048.515.

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A cleaning process for dyeing apparatus was investigated by employed a self-developed supercritical equipment. The solubility of C.I. Disperse Red 167 was evaluated with acetone, ethanol and carbinol in supercritical carbon dioxide at temperatures of 60, 80,100 and 120 °C and pressures ranging from 12 to 28 MPa. As revealed from the experimental results, the optimal cleaning conditions were as follows: cleaning temperature 100 °C, cleaning pressure 18 MPa, and cleaning time 40 min. Acetone was the most suitable cosolvent and the best cleaning effect was obtained when its concentration was 1%.
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45

Kang, Di, Youhua Fan, Zejun Chen, Fang Ma, Shaofeng Peng, and Yong Wang. "Fruit Processing Equipment based on Model Processing." Journal of Physics: Conference Series 2066, no. 1 (2021): 012111. http://dx.doi.org/10.1088/1742-6596/2066/1/012111.

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Abstract The technology and equipment of this study can improve the technical level of the equipment for peeling and cleaning of Camellia oleifera fruit. Based on the biological characteristics of Camellia oleifera fruit, the size distribution model of Camellia oleifera fruit was established, and the equipment structure and key parameters were determined based on the working principle and design method of the shelling and cleaning mechanism. Based on the analysis of the movement track of the shell stripping and cleaning executive parts, the test scheme is established, and it is optimized that
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46

Gold, Kathryn M., Anne Lucas, and Victoria M. Hitchins. "Lack of Correlation between Age and/or Gender with the Force Utilized in Cleaning an Anesthesia Machine." Biomedical Instrumentation & Technology 47, no. 4 (2013): 343–46. http://dx.doi.org/10.2345/0899-8205-47.4.343.

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Several human factors influence the cleaning of reusable medical devices and equipment. This study evaluated whether a correlation exists between age and/or gender of a person cleaning, with the force applied to remove artificial blood soil on the surface of an anesthesia machine. The findings from this study may be used to increase our understanding of human factors in the cleaning of reusable medical equipment and suggest improvements in equipment design to address issues of concern.
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47

Piddubnyi, Volodymyr, Yuliia Khvesyk, Igor Stadnyk, and Ievgenii Petrychenko. "LEVEL OF SELECTION AND INERTIONAL SEPARATION OF INHOMOGENEOUS SYSTEMS AT FOOD ENTERPRISES." Environmental Economics and Sustainable Development, no. 11(30) (2022): 53–61. http://dx.doi.org/10.37100/2616-7689.2022.11(30).6.

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Issues related to protection of the air basin from pollution by industrial and ventilation emissions, which is one of the most important problems of our time, study of the principles of sustainable nature management based on new effective methods and cleaning devices, improvement of existing gas cleaning equipment, search for solutions. problems of the industry and formation of the effective dust-cleaning equipment. Possible ways to improve the equipment for cleaning gases from dust by creating dust collectors, where the principles of operation of several devices are combined, are considered.
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48

M.Musaboyev, F.O.Egamberdiyev B.Т.Abbazov. "CONSTRUCTION ANALYSIS OF LARGE POLLUTERS COTTON CLEANING MACHINES." CENTRAL ASIAN JOURNAL OF EDUCATION AND INNOVATION 2, no. 6 (2023): 237–42. https://doi.org/10.5281/zenodo.8115511.

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The article presents the data of the structural analysis of ginning equipment installed at ginning plants. It is based on the fact that vibration motors can improve the cleaning efficiency to improve the cleaning efficiency of the UXK ginning equipment installed in ginneries. This takes into account the change in the distance between the saw drum and the saw grate, depending on the amount of cotton supplied to the equipment. To improve the efficiency of machine cleaning and cleaning of hand-picked cotton, it is recommended to introduce newly designed UXK cleaners in place of the UXK cleaners u
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49

M.Musaboyev, F.O.Egamberdiyev B.Т.Abbazov. "CONSTRUCTION ANALYSIS OF LARGE POLLUTERS COTTON CLEANING MACHINES." CENTRAL ASIAN JOURNAL OF EDUCATION AND INNOVATION 2, no. 6 (2023): 237–42. https://doi.org/10.5281/zenodo.8115515.

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The article presents the data of the structural analysis of ginning equipment installed at ginning plants. It is based on the fact that vibration motors can improve the cleaning efficiency to improve the cleaning efficiency of the UXK ginning equipment installed in ginneries. This takes into account the change in the distance between the saw drum and the saw grate, depending on the amount of cotton supplied to the equipment. To improve the efficiency of machine cleaning and cleaning of hand-picked cotton, it is recommended to introduce newly designed UXK cleaners in place of the UXK cleaners u
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50

DiVittorio, Joseph. "Pest prevention through equipment inspection and cleaning." Crops & Soils 48, no. 4 (2015): 34–38. http://dx.doi.org/10.2134/cs2015-48-4-11.

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