The invention relates to a lamp shield, more particularly to a lamp shield adapted to be mounted on an illuminating device to provide the illuminating device with another way of illumination.
Commercially available illuminating devices have developed into various types for different purposes. For example, some illuminating devices are mounted on ceilings and walls of a building for indoor illumination, some illuminating devices are disposed on a desk for local illumination, and some portable illuminating devices such as flashlights and warning lights are for outdoor use so as to provide condense illumination.
However, each of the abovementioned illuminating devices is for a particular use. For example, the flashlights that provide condense illumination cannot serve as the lamps that provide even illumination. As a result, the application range of the illuminating devices is limited.
Therefore, the object of the invention is to provide a lamp shield capable of alleviating the above drawbacks of the prior art.
Accordingly, a lamp shield of the present invention is adapted to be coupled to an illuminating device and that includes a housing and a light source disposed in the housing. The lamp shield includes a top wall having a reflecting surface that is adapted for facing the light source, and a surrounding wall surrounding an axis and connected to and cooperating with the top wall to define an inner space therein. The surrounding wall has a light transmissive portion that is proximate to the top wall along the axis, and an engaging portion that is distal from the top wall along the axis. The engaging portion has a bottom edge opposite to the light transmissive portion along the axis, is formed with at least one slit extending from the bottom edge toward the light transmissive portion along the axis, and is adapted to engage the housing of the illuminating device. Light projected by the light source is transmitted into the inner space and reflected by the reflecting surface and travels outwardly of the light transmissive portion. The light transmissive portion of the surrounding wall includes a plurality of angularly spaced-apart connecting ribs that interconnect the top wall and the engaging portion of the surrounding wall, and a plurality of light-passage holes that are angularly spaced apart from each other and that alternate with the connecting ribs.
Other features and advantages of the invention will become apparent in the following detailed description of the preferred embodiments with reference to the accompanying drawings, of which:
Before the invention is described in greater detail with reference to the accompanying embodiments, it should be noted herein that like elements are denoted by the same reference numerals throughout the disclosure.
Referring to
The lamp shield 1 comprises a top wall 11 and a surrounding wall 12 that surrounds an axis (X), and that is connected to and cooperates with the top wall 11 to define an inner space 13 therein.
The top wall 11 has a main part 111 and a reflecting part 112. The main part 111 is made of plastic and is connected to the surrounding wall 12. The reflecting part 112 is connected to the main part 111 and is formed with a reflecting surface 114 adapted for facing the light source 22 of the illuminating device 2. The reflecting surface 114 is configured as a cone that converges toward the light source 22 and that is covered by an electroplated layer. The surrounding wall 12 can be welded to the main part 111 of the top wall 11, or be connected integrally to the top wall 11.
The surrounding wall 12 has a light transmissive portion 121 that is proximate to the top wall 11 along the axis (X), and an engaging portion 122 that is distal from the top wall 11 along the axis (X) and that is adapted to engage the housing 21 of the illuminating device 2.
The light transmissive portion 121 of the surrounding wall 12 includes a plurality of angularly spaced-apart connecting ribs 123 that interconnect the top wall 11 and the engaging portion 122 of the surrounding wall 12, and a plurality of light-passage holes 124 that are angularly spaced apart from each other and that alternate with the connecting ribs 123.
In this embodiment, the engaging portion 122 is formed with a plurality of angularly spaced-apart slits 14 and has a bottom end part, an inner surrounding surface 125, an outer surrounding surface 126, a bottom edge 127, a plurality of reinforcement ribs 128, and a plurality of engaging step units 120. The inner surrounding surface 125 is formed in the bottom end part confronts the inner space 13, and the outer surrounding surface 126 is opposite to the inner surrounding surface 125. The bottom edge 127 is opposite to the light transmissive portion 121 along the axis (X).
The slits 14 extend from the bottom edge 127 toward the light transmissive portion 121 along the axis (X) and are aligned respectively with the connecting ribs 123. Each of the slits 14 has a large slit section 141 that extends from the bottom edge 127 of the engaging portion 122, and a small slit section 142 that extends from the large slit section 141 toward the light transmissive portion 121 of the surrounding wall 12, and that has a dimension smaller than that of the large slit section 141. The reinforcement ribs 128 protrude from the outer surrounding surface 126 and are arranged alternately with the slits 14. The engaging step units 120 are formed on the inner surrounding surface 125 and each of the engaging step units 120 has a plurality of juxtaposed engaging steps 129 that extend circumferentially and that are for engaging detachably the housing 21 of the illuminating device 2. The engaging step units 120 are disposed at a height substantially the same as the length of each slits 14.
By virtue of the slits 14, when the engaging portion 122 of the surrounding wall 12 is coupled to a top end of the housing 21 of the illuminating device 2, the resiliency of the surrounding wall 12 is improved. Further, the engaging step units 120 improve the stability of engagement between the surrounding wall 12 of the lamp shield 1 and the illuminating device 2. Therefore, the light beam (indicated by an arrow shown in
Referring to
Number | Date | Country | Kind |
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2010 2 0193667 U | May 2010 | CN | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/CN2010/077816 | 10/18/2010 | WO | 00 | 11/12/2012 |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO2011/143894 | 11/24/2011 | WO | A |
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Number | Date | Country | |
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20130063954 A1 | Mar 2013 | US |