• م.م. علي عارف حاتم
  • تدريسي : قسم هندسة تقنيات التبريد والتكييف
  • Teaching : Department of Refrigeration and Air Conditioning Technologies Engineering
  • ماجستير هندسة ميكانيك /اختصاص ديناميك الموائع
  • ali.hatem@esraa.edu.iq
  • ali_atieh@yahoo.com
  • Syllabuses

    Syllabuses

    Syllabuses - 4
    Dep. Step. Sem. code No. Des. Syllabuses
    Department of Refrigeration and Air Conditioning Technologies Engineering one full Mech 120 6 الميكانيك الهندسي
    Department of Refrigeration and Air Conditioning Technologies Engineering two full St Ma 211 6 مقاومة مواد
    Department of Refrigeration and Air Conditioning Technologies Engineering two full ME Dr 231 5 الرسم الهندسي والوصفية
    Department of Refrigeration and Air Conditioning Technologies Engineering three full El Ee311 6 هندسة كهربائية والكترونية
    Lectures

    Lectures

    المحاضرات الالكترونية - 5
    year syllabuses Dep. Step Lectures
    2017-2018 الرسم الهندسي والوصفية Department of Refrigeration and Air Conditioning Technologies Engineering المرحلة الثانية طريقة رسم التروس المختلفة (الاسطوانية , المخروطية , الحلزونية)
    2017-2018 الرسم الهندسي والوصفية Department of Refrigeration and Air Conditioning Technologies Engineering المرحلة الثانية تشغيل السطوح وعلامات التشغيل
    2017-2018 الرسم الهندسي والوصفية Department of Refrigeration and Air Conditioning Technologies Engineering المرحلة الثانية التفاوتات والتوافقات (الخلوصي , الانتقالي,التداخلي)
    2017-2018 الرسم الهندسي والوصفية Department of Refrigeration and Air Conditioning Technologies Engineering المرحلة الثانية اللحام وطريقة ترميز مواقع اللحام
    2017-2018 الرسم الهندسي والوصفية Department of Refrigeration and Air Conditioning Technologies Engineering المرحلة الثانية وسائل الربط (براغي ,مسامير , خوابير , براشيم , النوابض)
    Research

    Research

    2022 Cleaner Engineering and Technology

    The impact of utilizing Nanofluids with different metal oxide nanoparticles on heat transfer enhancement and fluid flow for concentration photovoltaic thermal the CPVT collector with Fresnel lens is demonstrated using CFD simulation. With the rising temperature, the electrical efficiency and output power of Multi-Junction Solar Cells drop. Four different types of nanofluids and water are utilized as cooling fluids to disperse heat from Multi-Junction Solar Cells by moving the fluid within the mini-channel beneath the PV Solar Cells. In the current analysis, the Reynolds numbers range from 2000 to 18000. For all forms of cooling fluids, the average Nusselt numbers are augmented by rising Reynolds numbers. The CFD results demonstrated that the Nusselt number of all nanofluid cooling fluids is greater than that of water. When compared to water in a CPVT collector, water-SiO2 nanofluid provides the maximum heat transfer improvement of 12.5%. The silicon dioxide nanoparticles have high thermal conductivity, with the water-SiO2 nanofluid exhibiting the greatest heat transfer increase, followed by water-Al2O3, water-ZnO, water-CuO, and water. The average top surface temperature of the mini-channel for the CPVT collector is reduced by 7% when water-SiO2 nanofluid is used as a cooling fluid and by 3.4% when water is used. The usage of water-SiO2 nanofluid has a significant impact on the heat dissipation with high heat transfer enhancement from Multi-Junction Solar Cells in CPVT collector, leading to an increase in electrical efficiency.