FIELD OF THE INVENTION
[0001] The present invention relates to a lamp (AR111 for example), in particular, to a
reflective cup-shaped lamp configuring to a high-power light-emitting diode to generate
high luminous efficiency.
BACKGROUND OF THE INVENTION
[0002] Conventionally, a lamp (AR111 for example) has advantages such as, high brightness,
great color-rendering, producing whiter and soft light, concentrating and projecting
light and lower color temperature.
[0003] However, the lamp has serious drawback of high power consumption and producing considerable
wasted heat. Light-emitting diode is then adopted as the light source in the art to
resolve the issue of high power consumption. But, the problem of wasted heat still
exists, resulting the luminous efficiency and the life time of the light-emitting
diode are severally degraded and reduced.
[0004] Therefore, a reflective cup-shaped lamp is disclosed in this invention to resolve
the drawbacks in the art.
SUMMARY OF THE INVENTION
[0005] An objective of this invention is to reveal a new and improved reflective cup-shaped
lamp, which comprises a lens unit, a fixing unit, a housing and an electrical-connection
unit. Through the structure of the lens unit, the light from the light-emitting diode,
which is similar to that from a point light source, is reflected to the interior surface
of the housing, and is uniformly emitted from the interior surface as a planar light
source.
[0006] Another objective of this invention is to provide a new and improved reflective cup-shaped
lamp, wherein the housing of the lamp is coated by a layer of transparent radiative
thermal-dissipated paint to rapidly dissipate the heat generated by the light-emitting
diode.
[0007] Another objective of this invention is to provide a new and improved reflective cup-shaped
lamp, wherein the light-emitting diode possesses high luminous efficiency by the abovementioned
effect of great heat dissipation.
[0008] Another objective of this invention is to provide a new and improved reflective cup-shaped
lamp, wherein the housing is configured into the specification of AR111 so that the
light-emitting diode is utilized to replace the conventional halogen bulb to achieve
low power consumption, long life time and high luminance.
[0009] Another objective of this invention is to provide a new and improved reflective cup-shaped
lamp, wherein an insulating thermal-conductive gel is injected into the interstice
between the bottom of the housing and the electrical-connection unit in order to rapidly
dissipate the heat generated by the light-emitting diode.
[0010] Another objective of the invention is to provide a new and improved reflective cup-shaped
lamp, wherein the snap-fits are utilized to integrate the lens unit, the fixing unit,
the housing, and the electrical-connection unit so that fewer or none of screws may
be used.
[0011] The foregoing and other objectives are achieved in accordance with the teachings
and principles of the present invention through the provision of a new and improved
reflective cup-shaped lamp connecting a light-emitting diode and a driving circuit.
The reflective cup-shaped lamp of the present invention comprises a lens unit, a fixing
unit, a housing and an electrical-connection unit. The lens unit has a first holding
part and a reflection part, where there is an included angle between the first holding
part and the reflection part. The fixing unit has a second holding part and a base,
wherein the lens unit is stacked on the fixing unit, and the first holding part and
the second holding part form a holding space to hold the light-emitting diode. The
housing has a body, a third holding part, an emitting part and a bottom, wherein the
emitting part is at one end of the body and the bottom is at other end of the body.
The third holding part is configured in the housing. A reflective layer is coated
on the interior surface of the body. The third holding part holds the fixing unit,
wherein the fixing unit is fixed on the housing. The electrical-connection unit is
attached to the bottom.
[0012] Compared to prior arts, the reflective cup-shaped lamp of this invention is uniformly
emitted the light from the light-emitting diode as a planar light source. Further,
the reflective cup-shaped lamp of the present invention is capable of rapidly dissipating
the wasted heat generated by the light-emitting diode. A layer of transparent radiative
thermal-dissipated paint is coated on the housing or/and a thermal-conductive gel
is injected into the interstices between the bottom and the electrical-connection
unit to dissipating the wasted heat. Therefore, the improved lamp of the present invention
brings excellent luminance efficiency to the light-emitting diode.
BRIEF DESCRIPTION OF THE DRAWINGS
[0013]
FIG. 1 illustrates a schematic cross-sectional view of a reflective cup-shaped lamp
in accordance with one embodiment of the invention ;
FIGS. 2 to 6 illustrate each unit of the reflective cup-shaped lamp of FIG. 1 of this
invention.
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0014] To fully understand the objectives, the features and the effects of the invention,
several embodiments are disclosed hereinafter in conjunction with the accompanying
drawings to interpret the invention in detail.
[0015] Refer to FIG. 1, the structure of an embodiment of the reflective cup-shaped lamp
of the invention. In FIG. 1, the reflective cup-shaped lamp 10 combines a light-emitting
diode 2 and a driving circuit 4. The driving circuit 4 generates a voltage V to drive
the light-emitting diode 2 to produce a beam of light LB. In this embodiment, a high
power COB (Chip on Board) light-emitting diode is applied as an example for the light-emitting
diode
2. In this example, the so-called "high power" is supposed to range from 8 watts to
13 watts. However, it should be noted that, the numerical range of "high power" is
only an example rather than a limitation to the light-emitting diode
2.
[0016] The reflective cup-shaped lamp
10 comprises a lens unit
12, a fixing unit
14, a housing
16, and an electrical-connection unit
18.
[0017] Together, refer to FIG. 2, which shows the lens unit
12 comprises a first holding part
122 and a reflection part
124. An included angle θ is formed between the edge of the reflection part
124 and the first holding part
122, wherein the beam of light LB from the light-emitting diode
2 is reflected to the interior surface
162 of the housing
16 according to the inclined plane of the reflection part
124, wherein the slope of the inclined plane is determined by the included angle θ. It
should be noted that, the reflection part
124 is configured cyclically on the lens unit
12 in order to uniformly reflect the beam of light LB from the light-emitting diode
2 to the interior surface
162 of the housing
16. The material of the central portion of the reflection part
124 can consist of either high optical transmittance or low optical transmittance. In
this embodiment, the material of the central portion of the reflection part
124 has low optical transmittance so that the beam of light LB from the light-emitting
diode
2 does not emit from the central portion.
[0018] Together, refer to FIG. 3, wherein the fixing part
14 possesses a second holding part
142 and a base
144. The material of the fixing part
14 shall be composed by at least one of the following material: metal, non-metal and
thermal-conductive plastic. In this embodiment, T-shape is applied as an example for
the cross-section of the fixing unit
14. It should be noted that, the structure of the base
144 can be either solid or hollow. For example, while the structure of the base 144 is
hollow, it provides a space for configuration of electrical-wire routing (not shown
in the figure), wherein the electrical wire connects the light-emitting diode
2 and the driving circuit
4. The lens unit
12 is stacked on the fixing unit
14 so that the first holding part
122 and the second holding part
142 form a holding space to hold the light-emitting diode
2.
[0019] Together, refer to FIG. 4, which shows that the housing
16 comprises a body
164, a third holding part
166, an emitting part
168 and a bottom
1610. The material of the housing
16 is composed by at least one of the following material: metal, non-metal and thermal-conductive
plastic. The emitting part
168 is at one end of the body
164, and the bottom
1610 is at the other end of the body
164. A reflective layer (not shown in the figure) is coated on the interior surface
162 of the body
164. The third holding part
166 can accommodate the fixing unit
14 and hold the fixing unit
14 onto the housing
16. Furthermore, the body
164 fulfils the specification requirements of AR111. The shape of the body
164 is cone-like shape, wherein the surface area of the emitting part
168 is larger than the base area of the bottom
1610.
[0020] Together, refer to FIG. 5, wherein the electrical-connection unit
18 is attached to the bottom
1610. The electrical-connection unit
18 may hold the driving circuit
4. The voltage V generated by the driving circuit
4 may be outputted to the fixing unit
14 from the bottom
1610 via, for example, an electrical wire. It should be noted that, besides of being held
in the electrical-connection unit
18, the driving circuit
4 may be configured anywhere of the reflective cup-shaped lamp
10 as shown in FIG. 6.
[0021] In another embodiment, the reflective cup-shaped lamp
10 further comprises an isolating thermal-conductive gel (not shown in the figure).
The isolating thermal-conductive gel is injected into the interstices between the
bottom
1610 and the electrical-connection unit
18. The isolating thermal-conductive increases the dissipation of the heat which is generated
by the light-emitting diode
2.
[0022] In another embodiment, the reflective cup-shaped lamp
10 further comprises a transparent radiative thermal-dissipated paint (not shown in
the figure). The transparent radiative thermal-dissipated paint is coated on the partial
or the whole surface of the housing
16. The transparent radiative thermal-dissipated paint increases the dissipation of the
heat which is generated by the light-emitting diode
2.
[0023] In another embodiment, the reflective cup-shaped lamp
10 further comprises a sheltering part (not shown in the figure). The sheltering part
is configured somewhere of the lens unit
12. For example, the sheltering part may be configured at the central portion of the
lens unit
12 so that the beam of light LB may not be emitted from the reflection part
124 directly.
[0024] This invention is disclosed by the preferred embodiments above, but a person having
ordinary skill in the art shall understand that, the embodiments are used only to
describe this invention rather than to limit this invention. It should be noted that,
those equivalent or substantially equivalent replacements or changes shall be covered
by this invention. The protection range of this invention shall be therefore subject
to the claims thereinafter.
1. A reflective cup-shaped lamp to connect a light-emitting diode and a driving circuit,
comprising
a lens unit, having a first holding part and a reflection part, wherein an included
angle is formed between the first holding part and the reflection part; and
a fixing unit, having a second holding part and a base, wherein the lens unit is stacked
on the fixing unit, wherein the first holding part and the second holding part form
a holding space to hold the light-emitting diode; and
a housing, having a body, a third holding part, an emitting part and a bottom, wherein
the emitting part is at one end of the body, and the bottom is at the other end of
the body, wherein the third holding part is configured in the housing, wherein a reflective
layer is coated on the interior surface of the body, wherein the third holding part
accommodates the fixing unit and holds the fixing unit on the housing; and
an electrical-connection unit, being attached to the bottom.
2. A reflective cup-shaped lamp according to claim 1, wherein the reflection part is
configured cyclically on the lens unit, wherein the reflection part reflects the beam
of light from the light-emitting diode to the interior surface of the body.
3. A reflective cup-shaped lamp according to claim 1, wherein the material of the fixing
unit is composed by at least one of the following material: metal, non-metal and thermal-conductive
plastics, and the material of the housing is composed by at least one of the following
material: metal, non-metal and thermal-conductive plastics.
4. A reflective cup-shaped lamp according to claim 1, wherein the body meets the specification
of AR111.
5. A reflective cup-shaped lamp according to claim 4, wherein the shape of the body is
cone-like and the surface area of the emitting part is larger than the base area of
the bottom.
6. A reflective cup-shaped lamp according to claim 1, further comprising an isolating
thermal-conductive gel, which is injected into the interstices between the bottom
and the electrical-connection unit.
7. A reflective cup-shaped lamp according to claim 1, wherein the housing is coated by
a transparent radiative thermal-dissipated paint.
8. A reflective cup-shaped lamp according to claim 1, further comprising a sheltering
part, which is configured on the lens unit.
9. A reflective cup-shaped lamp according to claim 1, wherein the electrical-connection
unit is provided to hold the driving circuit, wherein a voltage generated by the driving
circuit is outputted to the fixing unit from the bottom.