Multifunctional Phototherapy Device Design

Yıl: 2019 Cilt: 19 Sayı: 1 Sayfa Aralığı: 65 - 71 Metin Dili: İngilizce DOI: 10.26650/electrica.2019.18022 İndeks Tarihi: 05-12-2019

Multifunctional Phototherapy Device Design

Öz:
Today, phototherapy devices are used to treat newborn jaundice. However, there are some cases that the commercial phototherapy devices areinadequate. Most of the device are controlled only at the certain interval that prevents instantaneous monitoring the newborn’s vital parameters. Forother cases, devices are one-way lighting. In addition, when the baby is taken away from the device, unnecessary lighting causes the decrease in LED’slifetime. In the scope of the study, intensive phototherapy device was developed to eliminate deficiencies that are mentioned above. Properties of thedeveloped phototherapy device are; Automatic detection of newborn's presence, double-sided illumination, continuous monitoring with IP webcam,temperature measurement of the environment and also newborn’s body temperature. The light intensity of the device was measured with a photometeras 28.6 μW/cm²/nm that was obtained from 460nm wavelength LED illumination in both top and bottom in accordance with the American Academyof Pediatrics (AAP) guideline.
Anahtar Kelime:

Konular: Mühendislik, Elektrik ve Elektronik
Belge Türü: Makale Makale Türü: Araştırma Makalesi Erişim Türü: Erişime Açık
  • J.T. Benjamin “Neonatal Jaundice”, Medical College of Georgia, 2008.
  • S. Öztürkcan, “Yenidoğan Derisinin Fizyolojik Özellikleri”, Dermatolojide Yeni yaklaşımlar, Dermatose, vol. 2, no. 4, pp. 202-208, 2003.
  • Subcommittee on Hyperbilirubinemia, ‘’Management of hyperbilirubinemia in the newborn infant 35 or more weeks of gestation’’, Pediatrics, vol. 114, no. 1, pp. 297-316, 2004. [CrossRef]
  • A. M. Hafkamp, ‘’Oral treatment of unconjugated hyperbilirubinemia’’, University Library Groningen, 2006.
  • H. J. Vreman, R. J. Wong, D. K. Stevenson, ‘’Phototherapy: current methods and future direction’’, In Seminars in perinatology, vol. 28, No. 5, pp. 326-333, WB Saunders, Oct, 2004.
  • N. Canbulat, M. Demirgöz, ‘’Newborn’s light treatment: Phototherapyh’’, Zeynep Kamil Tıp Bülteni, vol. 40, no. 1, pp. 37-41, 2009.
  • T. Dağoğlu, F. Ovalı, ‘’İndirekt hiperbilirubinemi’’, T. Dağoğlu, Neonataloji, İstanbul, Nobel Tıp Kitabevleri Ltd, 2000 vol, 50, pp. 453-455, 2000.
  • U. Demirsoy, ‘’İndirekt Hiperbilirubinemi Nedeniyle Fototerapi Alan Term Yenidoğanlarda İntravenöz Sıvı Desteğinin Bilirubin Seviyesi Üzerine Etkisi’’, Zeynep Kamil Women and Children Diseases Training and Research Hospital, İst, 2005.
  • G. Hart, R. Cameron, ‘’The importance of irradiance and area in neonatal phototherapy’’, Archives of Disease in Childhood-Fetal and Neonatal Edition, vol. 90, no. 5, pp. F437-F440, 2005. [CrossRef]
  • P. Eggert, C. Stick, ‘’The pattern of bilirubin response to phototherapy for neonatal hyperbilirubinemia’’, Pediatric research, vol. 18, no. 7, pp. 682, 1984. [CrossRef]
  • A. Mickelson, ‘’Physical optics’’, Springer Science & Business Media, 2012.
  • E. Özcan. (11.12.2018). Available: http://www.ertuncozcan.com/images/dosyalar/Yeni_Dogan.pdf.
  • Devlet Malzeme Odası. (11.12.2018). Available:https://www.dmo.gov.tr/Katalog/Urun/Detay/1310_5645.
  • NeoBLUE cozy sistemi. (11.12.2018). Available:http://www.sgeyazilim.com/yonetimpaneli/upload/neoblue.pdf.
  • Colmed. (11.12.2018). Available: http://www.colmed.in/ge-lullaby-led-phototherapy-system.html.
  • Led Journal. Available: https://www.ledjournal.com/main/wp-content/uploads/2012/05/Philips_Understanding-Power-LED-Lifetime-Analysis.pdf.
APA Aksahin M (2019). Multifunctional Phototherapy Device Design. , 65 - 71. 10.26650/electrica.2019.18022
Chicago Aksahin Mehmet Multifunctional Phototherapy Device Design. (2019): 65 - 71. 10.26650/electrica.2019.18022
MLA Aksahin Mehmet Multifunctional Phototherapy Device Design. , 2019, ss.65 - 71. 10.26650/electrica.2019.18022
AMA Aksahin M Multifunctional Phototherapy Device Design. . 2019; 65 - 71. 10.26650/electrica.2019.18022
Vancouver Aksahin M Multifunctional Phototherapy Device Design. . 2019; 65 - 71. 10.26650/electrica.2019.18022
IEEE Aksahin M "Multifunctional Phototherapy Device Design." , ss.65 - 71, 2019. 10.26650/electrica.2019.18022
ISNAD Aksahin, Mehmet. "Multifunctional Phototherapy Device Design". (2019), 65-71. https://doi.org/10.26650/electrica.2019.18022
APA Aksahin M (2019). Multifunctional Phototherapy Device Design. Electrica, 19(1), 65 - 71. 10.26650/electrica.2019.18022
Chicago Aksahin Mehmet Multifunctional Phototherapy Device Design. Electrica 19, no.1 (2019): 65 - 71. 10.26650/electrica.2019.18022
MLA Aksahin Mehmet Multifunctional Phototherapy Device Design. Electrica, vol.19, no.1, 2019, ss.65 - 71. 10.26650/electrica.2019.18022
AMA Aksahin M Multifunctional Phototherapy Device Design. Electrica. 2019; 19(1): 65 - 71. 10.26650/electrica.2019.18022
Vancouver Aksahin M Multifunctional Phototherapy Device Design. Electrica. 2019; 19(1): 65 - 71. 10.26650/electrica.2019.18022
IEEE Aksahin M "Multifunctional Phototherapy Device Design." Electrica, 19, ss.65 - 71, 2019. 10.26650/electrica.2019.18022
ISNAD Aksahin, Mehmet. "Multifunctional Phototherapy Device Design". Electrica 19/1 (2019), 65-71. https://doi.org/10.26650/electrica.2019.18022