Light fixture with at least one LED
11805579 · 2023-10-31
Assignee
Inventors
Cpc classification
H05B45/00
ELECTRICITY
F21K9/232
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21Y2113/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H05B35/00
ELECTRICITY
Y02B20/30
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
H05B35/00
ELECTRICITY
F21K9/232
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A light fixture having at least one LED and at least one filament, wherein the at least one filament is connected in series to the at least one LED. A current supplied to the at least one LED in the light fixture is regulated by the electrical properties of the at least one filament. Thus the at least one LED in the light fixture can be run without an electrical driver.
Claims
1. A light fixture comprising: at least one LED; at least one filament, wherein the at least one filament is a glow wire connected in series to the at least one LED, wherein a current flowing through the filament always flows from the filament to the at least one LED, wherein the current supplied to the at least one LED is regulated by the filament and a part of the current flowing through the filament is converted into light energy which is mixed with a light emitted by the at least one LED; a rectifier coupled in series to the at least one filament and the at least one LED; and a glass bulb, wherein the at least one filament and the at least one LED is arranged within the glass bulb.
2. The light fixture of claim 1, wherein the glass bulb is filled with at least one of a protective gas and a gas comprising at least one halogen.
3. The light fixture of claim 1, wherein the light fixture has a first connector and a second connector for coupling to a supply voltage.
4. The light fixture of claim 1, wherein the rectifier is not between the at least one filament and the at least one LED.
5. The light fixture of claim 1, wherein the at least one LED comprises: at least one first LED; and at least one second LED connected to the at least one first LED in parallel.
6. The light fixture of claim 1, wherein the at least one LED comprises: at least one first LED; and at least one second LED connected to the at least one first LED in series.
7. The light fixture of claim 1, wherein: the at least one LED comprises: at least one first LED; and at least one second LED connected to the at least one first LED; and the at least one first LED and the at least one second LED have a different forward voltage.
8. The light fixture of claim 1, wherein between 15% and 30% of a voltage drop across the at least one LED and the at least one filament occurs on the at least one LED.
9. The light fixture of claim 1, wherein between 20% and 25% of a voltage drop across the at least one LED and the at least one filament occurs on the at least one LED.
10. The light fixture of claim 1, wherein the light fixture comprises a thermal shield, wherein the thermal shield is arranged between the at least one LED and the at least one filament.
11. The light fixture of claim 1, wherein the at least one LED and the at least one filament generate an optical performance, wherein between 70% and 90% of the optical performance is generated by the at least one LED.
12. The light fixture of claim 1, wherein the at least one LED and the at least one filament generate an optical performance, wherein between 75% and 85% of the optical performance is generated by the at least one LED.
13. The light fixture of claim 1, wherein the at least one LED and the at least one filament generate an optical performance, wherein 80% of the optical performance is generated by the at least one LED.
14. The light fixture of claim 1, wherein the glass bulb is filled with a protective gas which comprises a mixture of 93% argon and 7% nitrogen.
15. A light fixture comprising: at least one LED; at least one filament, wherein the at least one filament is a glow wire connected in series to the at least one LED; a rectifier, wherein the rectifier is connected in series to the at least one filament and the at least one LED, such that the rectifier feeds a current to the at least one filament and the at least one filament feeds the current to the at least one LED, wherein the current supplied to the at least one LED is regulated by the filament and a part of the current flowing through the filament is converted into light energy which is mixed with a light emitted by the at least one LED; and a glass bulb, wherein the at least one filament and the at least one LED is arranged within the glass bulb.
16. A light fixture comprising: at least one LED; at least one filament, wherein the at least one filament is a glow wire connected in series to the at least one LED; a rectifier, having at least two nodes, wherein the series connection of the at least one filament and the at least one LED is connected between the at least two nodes of the rectifier, wherein a current supplied to the at least one LED is regulated by the filament and a part of the current flowing through the filament is converted into light energy which is mixed with a light emitted by the at least one LED; and a glass bulb, wherein the at least one filament and the at least one LED is arranged within the glass bulb.
17. The light fixture of claim 16, wherein the at least two nodes comprises four nodes, wherein: a first node and a second node are connected to a power source; a third node is connected to the at least one LED; and a fourth node is connected to the at least one filament.
18. The light fixture of claim 1, wherein: the at least one LED and the bridge rectifier share a printed circuit board; and the at least one filament is not on the printed circuit board.
19. The light fixture of claim 1, wherein within the glass bulb: the at least one LED is disposed in a first gaseous atmosphere; and the at least one filament is disposed in a second gaseous atmosphere which differs from the first gaseous atmosphere.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Exemplary embodiments of the present invention are described in greater detail below with reference to the appended drawings. In the drawings:
(2)
(3)
(4)
(5)
(6)
DETAILED DESCRIPTION
(7) The same references are used below for elements which are the same and equivalent.
(8)
(9) As can be seen, the filament GF is not arranged on the printed circuit board 10. The outline 12 shown by a broken line should indicate that the filament GF can be operated in the same atmosphere as the LEDs, for example in a protective gas known from conventional incandescent lamps, which preferably comprises a mixture of 93% argon and 7% nitrogen, but no halogen. Alternatively, the filament GF can be operated in a different atmosphere as the LEDs (LED1, LED2) in order to produce a halogen bulb by means of the filament GF. In this case the filament GF is operated in a separate glass bulb which is filled with a gas which comprises at least one halogen, in particular bromine.
(10) The exemplary embodiment illustrated in
(11) In the exemplary embodiment of a light fixture according to the invention which is illustrated in
(12) The resistance of the filament GF defines the current also flowing through the at least one LED. The ratio of the light from the at least one LED and from the filament GF can be set, as mentioned, by means of a suitable choice of the resistance of the filament GF. The light of the two light sources is mixed, so that an efficient and, at the same time, largely flicker-free light is generated.
(13)
(14) In the exemplary embodiment illustrated in
(15)
(16) Accordingly, the working point is fixed by means of the number of LEDs connected in series, i.e. in particular the forward voltages thereof, as well as the resistance of the filament GF. As can be seen, the optical performance P.sub.opt emitted by the filament GF is greater the lower the voltage U.sub.LED is across the at least one LED. In the case of the proportion of the optical performance P.sub.opt supplied by the at least one LED, a maximum is obtained at a voltage of U.sub.LED=80 V. For the sum of the two optical partial powers, i.e. the power of the filament GF as well as the power of the at least one LED, a maximum is obtained at a voltage of U.sub.LED=54 V. At this working point the entire system would achieve an efficiency greater than 20%. If it is assumed that an incandescent lamp usually has an efficiency between 2% and 5% this results in a significant increase in the efficiency relative to an incandescent lamp alone. If LEDs are operated alone, an efficiency between 25% and 30% could be achieved, but at the expense of a costly electronic driver. This electronic driver can be omitted in a light fixture according to the invention. In this respect it should be noted that a maximum degree of efficiency can be achieved if the at least one LED and the at least one filament are designed in such a way that between 20% and 25% of the voltage drop occurs on the at least one LED. Conversely, from the representation of
LIST OF REFERENCES
(17) 10 printed circuit board 12 outline 14 bridge rectifier 16 light fixture 18 base 20 glass bulb 22 glass bulb 24 halogen bulb D1, D2, D3, D4 diodes GF filament LED1, LED2 LEDs P.sub.opt optical performance U.sub.LED voltage U.sub.V supply voltage