The present disclosure relates to lighting technology, and more particularly to a lamp which is adapted to temperature changes, and can avoid an overall length variation, and/or a bending deformation in appearance.
In recent years, more and more fluorescent lamps in lighting industry have been replaced by LED lamps using light-emitting diodes (LED) as light sources. The LED lamps are more efficient, energy-saving, and environmental-friendly. And the LED lamps have longer service life.
Linear LED lamps are also known as LED tubes. Currently, LED tubes in the market usually use tubular plastic light covers, for example, the plastic light covers may be made from polycarbonate (PC) material. The tubular light cover has two ends fixedly connected to two end-caps, and an LED light source board and a driving unit are installed inside the tubular light cover. As the LED tubes are used in different occasions and regions, even in the same area, the temperature changes will happen at different times, the tubular plastic light cover may have length variation due to thermal expansion and contraction in the case of temperature changes. For an LED tube, which has not been installed, if the LED tube becomes longer or shorter, it cannot be installed. For an LED tube, which has been installed in a lamp holder, if the LED tube becomes longer or shorter, the tubular plastic light cover will be bent and deformed in appearance, even the tubular plastic light cover will be disconnected with the end-cap, so that the LED tube will be damaged and there will be a danger of electric leakage.
To solve the above-mentioned problems, the present invention discloses a lamp which is adapted to temperature changes. The overall length variation of the lamp, and/or the bending deformation in appearance can be avoided.
The present invention discloses a lamp comprising: a tubular body having two ends of the tubular body; an elongate light source board inside the tubular body along a longitudinal direction thereof, the elongate light source board having at least one light source arranged thereon and two ends of the elongate light source board; and two end-caps are adapted to seal the two ends of the tubular body respectively, at least one end-cap being slidingly connected to one of the two ends of the tubular body and fixedly connected to one of the two ends of the elongate light source board.
In some embodiments, the at least one end-cap comprises a cavity for receiving the one of the two ends of the tubular body and being adapted to the length variation of the tubular body due to thermal expansion and contraction of the tubular body.
In some embodiments, the at least one end-cap comprises a through hole, and the one of the two ends of the elongate light source board comprises a screw hole adapted to match with the through hole. The at least one end-cap is fixedly connected to the one of the two ends of the elongate light source board through a screw.
In some embodiments, the length of the elongate light source board is longer than the length of the tubular body, and at least one end of the elongate light source board extends outside of the tubular body.
In some embodiments, the cross-section of the tubular body has a first width and a second width. The first width is the largest width parallel to the cross-section of the elongate light source board, and the second width is the largest width perpendicular to the cross-section of the elongate light source board. The first width is smaller than the second width.
In some embodiments, the cross-section of the tubular body is oval-shaped, rectangular or water-droplet-shaped.
In some embodiments, the tubular body further comprises at least one pair of fixing grooves formed on both sides of the inner surface of the tubular body for securing the elongate light source board.
In some embodiments, the tubular body comprises a light transmitting part and a light reflective part separated by a plane of the elongate light source board. The light transmitting part is toward the light-emitting direction of the at least one light source, and the light reflective part is back to the light-emitting direction of the at least one light source.
Preferably, the light transmitting part is bigger than the light reflective part.
In some embodiments, the tubular body is formed integrally.
The lamp of the present disclosure is structurally designed, so that at least one of the two end-caps is slidingly connected to one of the two ends of the tubular body and fixedly connected to one of the two ends of the elongate light source board, therefore, two ends of the tubular body are not completely fixed, and the overall length of the lamp is determined by the length of the elongate light source board, not by the length of the tubular body. When the environmental temperature changes cause the length variation due to the thermal expansion and contraction of the tubular body, the tubular body is relatively sliding with the end-cap by using the cavity of the end-cap. Furthermore, the thermal expansion and contraction of the elongate light source board is small, so the overall length variation of the lamp, and/or the bending deformation in appearance can be avoided.
The present invention is described in detail as following with reference to the accompanying drawings and embodiments.
As shown in
Furthermore, the lamp 100 of the first embodiment of the present invention is a dual-colored lamp. As shown in
Structurally, two end-caps 130, 140 of the lamp 100 of the first embodiment of the present invention are fixedly connected to two ends of the elongate light source board 120 respectively. Therefore, the overall length of the lamp 100 is determined by the length of the elongate light source board 120, not by the length of the tubular body 110. The tubular body 110, i.e. plastic light cover, has two ends 111, 113 received in the cylinder cavities 131, 141 of the two end-caps 130, 140. The design standards of the length of the tubular body 110 and the length of the cylinder cavities 131, 141 are: in a certain temperature change range, the two ends of the tubular body 110 are always sealed by the two end-caps 130,140. At the lowest temperature, either end of the tubular body 110 does not drop off the cylinder cavities 131, 141. At the highest temperature, the cylinder cavities 131, 141 still can accommodate the tubular body 110 which may become longer due to the thermal expansion.
The thermal expansion and contraction of the tubular body 110 generated by the temperature changes is obvious, because the tubular body 110 is made from plastic material. The structure design of the lamp 100 of the first embodiment of the present invention has resolved the length variation problem caused by the thermal expansion and contraction of the tubular body 110. Although the elongate light source board and the end-cap also have the problem of the thermal expansion and contraction, the size variation is quite small determined by their material used. Since the effect on overall size of the lamp 100 is quite small, it will not be discussed here.
While the invention has been illustrated, and described in typical embodiments, it is not intended to be limited to the details shown, since various modifications and substitutions can be made without departing in any way from the spirit of the present invention. As such, further modifications and equivalents of the invention herein disclosed may occur to persons skilled in the art using no more than routine experimentation, and all such modifications and equivalents are believed to be within the spirit and scope of the invention as defined by the following claims.
Number | Date | Country | Kind |
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201610242851.6 | Apr 2016 | CN | national |