• Foydalanilgan adabiyotlar
  • Elektr yordamida tola hosil qilish jarayoni va imkoniyatlari




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    FarPI Azimjon ELEKTR YORDAMIDA TOLA HOSIL QILISH JARAYONLARI
    elektronika mustaqil ish, РИВОЯТЛАРНИНГ САНЪАТ АСАРЛАРИДАГИ ТУТГАН УРНИ ВА, kengash, Taqriz, ОЛДИ СОТДИ ШАРТНОМА 1235
    Xulosa va takliflar.
    Xulosa qilib shuni aytishimiz mumkinki, bugungi kunda jahon 
    to’qimachilik sanoatining ushbu yo’nalishi keng rivojlanib bormoqda. Yuqorida aytib 
    o’tilganidek bugungi kunga kelib 200 turdan ortiq polimerlardan foydalanib bir nechta sohalar 
    uchun nanotolalar va shu tolalardan foydalanib ishlatish maqsadiga qarab materiallar ishlab 
    chiqarilmoqda. Shu o’rinda ta’kidlab o’tish lozimki, yurtimizda xali bu sohada ishlab chiqarish 
    yo’lga qo’yilmaganligini hisob olsak, ushbu yo’nalishda izlanish ishlarini olib borish maqsadga 
    muvofiqdir. O’zbekistonda to’qimachilik sanoatida o’rganilishi lozim bo’lgan sohalar talaygina, 
    shular qatorida nanotolalarni ishlab chiqarish ham jahon to’qimachilik sanoati bozoriga kirish 
    ham oldimizda turgan dolzarb muammodir. Bu muammoni yechish uchun birinchi navbatda 
    shunday tajribalar olib borish uchun yetarli sharoitlarga ega bo’lgan laboratoriyalar qurish, 
    kerakli jihozlar bilan ta’minlash, olingan tayyor mahsulotlarning sifat ko’rsatkichlarni aniqlashda 
    qo’llaniladiga laboratoriya uskunalari bilan qurollantirish va eng asosiysi ilmiy yosh hodimlarni 
    va shu sohada faoliyat yuritadigan korxona yoki tashkilot hodimlarni malakalarini oshirish 
    uchun, ushbu sohada yutuqlarga erishgan jahonning taniqli korxonalari va oliy ta’lim 
    muassasalari bilan hamkorlik aloqalarini yo’lga qo’yish bilangina erishish mumkin.
    Foydalanilgan adabiyotlar 
    1. 
    Nandana Bhardwaj, Subhas C. Kundu. Electrospinning: A fascinating fiber fabrication 
    technique. Biotechnology Advances 28 (2010) 325–347.
    2. 
    Ahn YC, Park SK, Kim GT, Hwang YJ, Lee CG, Shin HS, et al. Development of high 
    efficiency nanofilters made of nanofibers. Curr Appl Phys 2006;6:1030–5.
    3. 
    Lannutti J, Reneker D, Ma T, Tomasko D, Farson D. Electrospinning for tissue 
    engineering scaffolds. Mater Sci Eng C 2007;27:504–9.
    4. 
    Hunley MT, Long TE. Electrospinning functional nanoscale fibers: a perspective for the 
    future. Polym Int 2008;57:385–9.
    5. 
    Reneker DH, Yarin AL. Electrospinning jets and polymer nanofibers. Polymer 
    2008;49:2387–425.
    6. 
    Zussman E, Theron A, Yarin AL. Formation of nanofiber crossbars in electrospinning. 
    Appl Phys Lett 2003;82:973–5.
    7. 
    He J, Wan YQ, Yu JY. Scaling law in electrospinning: relationship between electric 
    current and solution flow rate. Polymer 2005;46:2799–801.
    8. 
    Teo WE, Ramakrishna S. A review on electrospinning design and nanofiber assemblies. 
    Nanotechnology 2006;17:89-106.
    9. 
    Reneker DH, Yarin AL, Fong H, Koombhongse S. Bending instability of electrically 
    charged liquid jets of polymer solutions in electrospinning. J Appl Phys 2000;87:4531–
    47.
    10.
    Huang ZM, Zhang YZ, Kotaki M, Ramakrishna S. A review on polymer nanofibers by 
    electrospinning and their applications in nanocomposites. Compos Sci Technol 
    2003;63:2223–53.
    11. 
    Theron SA, Yarin AL, Zussman E, Kroll E. Multiple jets in electrospinning: experiment 
    and modeling. Polymer 2005;46:2889–99.


    12. 
    Ma Z, Kotaki M, Inai R, Ramakrishna S. Potential of nanofiber matrix as tissue 
    engineering scaffolds. Tissue Eng 2005a;11:101–9.
    13. 
    Luu YK, Kim K, Hsiao BS, Chu B, Hadjiargyrou M. Development of a nanostructured 
    DNA delivery scaffold via electrospinning of PLGA and PLA-PEG block copolymers. J 
    Control Release 2003;89:341–53.
    14. 
    Cui W, Zhou S, Li X, Weng J. Drug-loaded biodegradable polymeric nanofibers 
    prepared by electrospinning. Tissue Eng 2006;12:1070.
    15. 
    Wu Y, He JH, Xu L, Yu JY. Electrospinning drug-loaded poly (Butylenes Succinate-
    cobytylene Terephthalate) (PBST) with acetylsalicylic acid (aspirin). Int J Electrospun 
    Nanofibers Appl 2007;1:1–6.
    16. 
    Barnes CP, Sell SA, Knapp DC, Walpoth BH, Brand DD, Bowlin GL. Preliminary 
    investigation of electrospun collagen and polydioxanone for vascular tissue engineering 
    applications. Int J Electrospun Nanofibers Appl 2007;1:73–87.
    17. 
    Welle A, Kroger M, Doring M, Niederer K, Pindel E, Chronakis S. Electrospun aliphatic 
    polycarbonates as tailored tissue scaffold materials. Biomaterials 2007;28:2211–9.
    18. 
    Liang D, Hsiao BS, Chu B. Functional electrospun nanofibrous scaffolds for biomedical 
    applications. Adv Drug Deliv Rev 2007;59:1392–412.
    19. 
    Chong EJ, Phan TT, Lim IJ, Zhang YZ, Bay BH, Ramakrishna S, et al. Evaluation of 
    electrospun PCL/gelatin nanofibrous scaffold for wound healing and layered dermal 
    reconstitution. Acta Mater 2007;3:321–30.
    20. 
    Yang F, Murugan R, Wang S, Ramakrishna S. Electrospinning of nano/micro scale poly 
    (L-lactic acid) aligned fibers and their potential in neural tissue engineering. Biomaterials 
    2005;26:2603–10.
    21. 
    Sill TJ, Recum HAV. Electrospinning: applications in drug delivery and tissue 
    engineering. Biomaterials 2008;29:1989–2006.
    22. Abdullaev, A.R., Rafiqov, X.M. O.,& Zulxumor, I.N.Q.(2021). A Review On: Analysis 
    Of The Properties Of Thermal Insulation Materials. The American Journal of 
    Interdisciplinary Innovations and Research, 3(05),2738. 
    https://doi.Org/10.37547/tajiir 
    Volume03Issue05-06
     
    Abdullayev Azim Rasulovich Namangan muhandislik-texnologiya instituti “Metrologiya, 
    standartlashtirish va sifatni boshqarish” kafedrasi assistenti 
    E.mail: 
    azim.zhejiangsciandtech@gmail.com
    Tel: +998990801791 
    ______________ 

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