Besarnya Head Losses Pada Aliran Perpipaan Dari Boiler Feed Water Pump Menuju Boiler di PT. Z
Kata Kunci:
Head loss, Boiler Feed Water Pump, PompaAbstrak
The research object observed is the amount of head loss that occurs in the boiler feed water pump when pumping feed water for the boiler, head loss is a flow loss consisting of friction loss head in the pipes, and head loss in bends, reducers, valves, and so on. Head loss is divided into two, namely major head loss and minor head loss. The flow loss due to friction is also known as the major energy loss. Major head loss occurs due to the viscosity of the liquid and turbulence due to the hardness of the pipe boundary wall which will cause frictional forces which will cause loss of flow along the pipe. Minor losses are pressure loss due to friction that occurs in valves, T junctions, joints and cross sections that are not constant. This study aims to determine the magnitude of the major head loss and minor head loss that occurs in the boiler feed water pump and to determine the capacity of the boiler feed water pump after the head loss occurs. From the results of the study it can be concluded that the major head loss is 1.63 m and the major head loss minor is 0.74 m and the pump capacity after head loss is 53.81 m3/hour.
Referensi
[1] H. Darmadi, N. Kurnia, N. Nelza, And H. Sempana, “Analisa Ukuran Rpm Agitator Pada Washing Getah Di Unit Tangki Pencucian Pada Factory Precleaning Pt. X,” Reprokimia, Vol. 1, No. 1, Pp. 1–9, 2022.
[2] H. Panggabean And H. Darmadi, “Besarnya Gaya Radial Yang Terjadi Pada Sepasang Roda Gigi Lurus Akibat Adanya Sudut Tekan Dari Roda Gigi Penggerak Di Alat Double Deck Bunch Crusher,” Jurnal Vokasi Teknik, Vol. 1, No. 2, Pp. 10–16, 2023.
[3] H. Darmadi, D. Kurnia, And F. A. Malau, “Besarnya Deformasi Yang Disebabkan Oleh Tekanan Tbr
(Tandan Buah Rebus) Terhadap Poros Bunch Crusher,” Jurnal Mekanova : Mekanikal, Inovasi Dan Teknologi, Vol. 9, No. 2, 2023.
[4] H. Nugraha, I. Kusumaningtyas, And I. M. Miasa, “Analisis Buckling Dan Tegangan Bejana Tekan Horisontal Pada Tekanan Kerja Eksternal,” Journal Of Mechanical Design And Testing, Vol. 4, No. 2, Pp. 58–66, 2022, Doi: 10.22146/Jmdt.63592.
[5] M. Rodiawati, ) A Yudi, E. Risano, And A. Su’udi, “Perancangan Bejana Tekan (Pressure Vessel) Untuk Pengolahan Limbah Kelapa Sawit Dengan Variabel Kapasitas Produksi 10.000 Ton/Bulan,” Jurnal Fema, Vol. 1, No. 4, Pp. 36–41, 2013, Doi: 10.000.
[6] A. Yudi Eka Risano, A. Su, And R. Rahmat, “Oktober 2013) 1) Dosen Jurusan Teknik Mesin, Fakultas Teknik Universitas Lampung 2) Mahasiswa Jurusan Teknik Mesin, Fakultas Teknik Universitas Lampung Jln,” Jurnal Fema, Vol. 1, No. 4, Pp. 28–35, 2013, Doi: 10.000.
[7] E. Manullang, S. Tangkuman, And B. L. Maluegha, “Analisis Tegangan Pada Bejana Tekan Vertikal 13zl100040291 Di Pt. Aneka Gas Industri,” Jurnal Online Poros Teknik Mesin, Vol. 5, No. 2, Pp. 92–102, 2020.
[8] D. Darmanto And F. Adi Alfiansyah, “Prediksi Kegagalan Statis Pipa Saluran Uap (Vapor Line) Akibat Tekanan Kerj,” Jurnal Keteknikan Pertanian Tropis Dan Biosistem, Vol. 7, No. 3, Pp. 291–198, 2019.
[9] A. Husen, A. Setiyadi, And N. Cholis, “Analisis Tegangan Pipa 043-Gn-31004 Pada Scrub Coloumn Vessel Menuju Vessel Coloumn Proyek Tangguh Expansion Train 3 Papua,” Bina Teknika, Vol. 14, Pp. 139–152, 2018.
[10] A. Maulana, “Perhitungan Tegangan Pipa Dari Discharge Kompresor Menuju Air Cooler Menggunakan Software Caesar Ii 5.10 Pada Proyek Gas Lift Compressor Station,” 2016
Unduhan
Diterbitkan
Terbitan
Bagian
Lisensi
Hak Cipta (c) 2023 Manahan Hutagalung, Jhon Wira Wahyu Aritonang

Artikel ini berlisensiCreative Commons Attribution-NonCommercial-ShareAlike 4.0 International License.

