| ³í¹®¸í |
¹ßÄÚ´Ï ÀÏüÇü ž籤¹ßÀü½Ã½ºÅÛÀÇ ¹ßÀü¼º´É ºÐ¼® / Analysis of Performance of Balcony Integrated PV System |
| ÀúÀÚ¸í |
±èÇöÀÏ ; °±âȯ ; ¹Ú°æÀº ; ¼ÒÁ¤ÈÆ ; À¯±ÇÁ¾ ; ¼½ÂÁ÷ |
| ¼ö·Ï»çÇ× |
ž翡³ÊÁö(Çѱ¹Å¾翡³ÊÁöÇÐȸ ³í¹®Áý), v.29 n.1 (2009-02) |
| ÆäÀÌÁö |
½ÃÀÛÆäÀÌÁö(32) ÃÑÆäÀÌÁö(6) |
| ÁÖÁ¦¾î |
°Ç¹° ÀÏüÇü ž籤¹ßÀü ; ¼º´É°è¼ö ; ž籤¹ßÀü ¾î·¹ÀÌ ¼Õ½Ç ; ½Ã½ºÅÛ ¼Õ½Ç ; Building Integrated Photovoltaic(BIPV) ; Performance ratio(PR) ; Capture losses(LC) ; System losses(LS) |
| ¿ä¾à2 |
Photovoltaic(PV) permits the on-site production of electricity without concern for fuel supply or environmental adverse effects. The electrical power is produced without noise and little depletion of resources. So BIPV(Building-Integrated Photovoltaic) system have been increased around the world. Hereby the relative installation costs of the system will be reatively low compared to traditional installations of PV in high-rise buildings. This paper examined possibillity of building integrated balcony PV system and analyzed both performance and problems of this system. The system is influenced by conditions such as irradiation, module temperature, shade and architectural component etc. If this BIPV system of 1.1kW is possible the natural ventilation in the summer case, the temperature of PV of BIPV system of cold facade type is about 74.4% |