Claims
- 1. An air-cooled light comprising:a high intensity discharge light bulb secured in a socket; a cylindrical transparent sleeve surrounding said high intensity discharge light bulb and said socket, said cylindrical transparent sleeve having opposing ends; two sealed end plates, each being attached to one of the opposing ends of said cylindrical transparent sleeve, said socket being attached to one of the two sealed end plates; a first hose flange having one end attached to one of said sealed end plates and an opposing inlet end; a second hose flange having one end attached to the other of said sealed end plate and an opposing outlet end; a hose circumferentially attached to the inlet end of said first hose flange and the outlet end of said second hose flange, thereby forming a closed path for moving air through said cylindrical transparent sleeve; and a temperature actuated disconnect switch disposed within said cylindrical transparent sleeve, said disconnect switch adapted to disconnect an electrical power source from said high intensity discharge light bulb when temperature inside of said cylindrical transparent sleeve reaches or exceeds a predetermined temperature.
- 2. The air-cooled light according to claim 1, wherein:said cylindrical transparent sleeve is made of borosilicate glass.
- 3. The air-cooled light according to claim 1, wherein:a gap exists between said high intensity discharge light bulb and said cylindrical transparent sleeve which serves to insulate an area surrounding said high intensity discharge light bulb from heat generated by said high intensity discharge light bulb.
- 4. The air-cooled light according to claim 1, wherein:said two end plates are made of a polycarbonate material.
- 5. The air-cooled light according to claim 1, wherein:two O-rings are separately sandwiched between said cylindrical transparent sleeve and said two end plates at said opposing ends of said cylindrical transparent sleeve thereby creating a water-proof seal between said cylindrical transparent sleeve and said two end plates.
- 6. The air-cooled light according to claim 1, wherein:one of said two hose flanges has two rectangular slots formed in opposing sides therein which allows a bracket to pass through said one of said two hose flanges.
- 7. The air-cooled light according to claim 6, wherein:one of said two end plates has an aluminum bracket that is fixed in a specific position.
- 8. The air-cooled light according to claim 7, wherein:said aluminum bracket is also attached to said socket and supports said socket in a fixed position.
- 9. The air-cooled light according to claim 1, wherein:each of said two end plates has an indented portion for properly positioning one of said two hose flanges against one of said two end plates.
- 10. The method of cooling a high intensity discharge light comprising:passing high velocity air into one end of a cylindrical transparent sleeve that houses a high intensity discharge light bulb and removing the high velocity air from the opposite end of the cylindrical transparent sleeve; and disconnecting the high intensity discharge light bulb from an electrical power source if a temperature inside of said cylindrical transparent sleeve exceeds a predetermined temperature.
- 11. The method of cooling a high intensity discharge light according to claim 10, wherein:the high velocity air flows in a circular pattern.
- 12. The method of cooling a high intensity discharge light according to claim 11, wherein:the high velocity air is generated by a fan.
- 13. An air-cooled light comprising:a high intensity discharge light bulb mounted in a socket assembly wherein said socket assembly is made of a spring type material; a cylindrical transparent sleeve having opposing ends surrounds said high intensity discharge light bulb and said socket assembly; two hoses form a conduit for transporting air through said cylindrical transparent sleeve, wherein one of said two hoses is circumferentially attached to one end of said cylindrical transparent sleeve while the other of said two hoses is circumferentially attached to the opposite end of said cylindrical transparent sleeve, thereby forming a closed path for moving air through said cylindrical transparent sleeve; and a thermal protector mounted on said socket assembly that disconnects an electrical power source from said high intensity discharge light bulb when a temperature inside of said cylindrical glass sleeve reaches or exceeds a predetermined temperature.
- 14. An air-cooled light according to claim 13, wherein:said socket assembly is made of plastic.
- 15. An air-cooled light according to claim 14, wherein:said socket assembly is formed by injection molding.
- 16. An air-cooled light according to claim 13, wherein:said cylindrical transparent sleeve is made of KIMAX glass.
- 17. An air-cooled light according to claim 1, wherein:said cylindrical transparent sleeve is made of a plastic.
- 18. An air-cooled light according to claim 13, wherein:said cylindrical transparent sleeve is made of a plastic.
CROSS-REFERENCE TO RELATED APPLICATION
This application claims the benefit of U.S. Provisional Patent Application Serial No. 60/094,560, filed Jul. 29, 1998.
US Referenced Citations (13)
Foreign Referenced Citations (4)
Number |
Date |
Country |
S 41624 |
Sep 1956 |
DE |
721585 |
Jan 1955 |
GB |
2 227 827 |
Aug 1990 |
GB |
189 557 |
May 1964 |
SE |
Provisional Applications (1)
|
Number |
Date |
Country |
|
60/094560 |
Jul 1998 |
US |