LED tube lamp
10352540 ยท 2019-07-16
Assignee
Inventors
Cpc classification
F21Y2103/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V31/005
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V7/005
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V29/83
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V3/0615
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21K9/275
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V3/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21K9/278
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21K9/272
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21Y2115/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V23/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V15/015
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V23/023
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V23/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V19/009
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21K9/27
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V3/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V17/101
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V25/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F21V23/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V19/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V23/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V15/015
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V29/83
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V7/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V25/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V3/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V3/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21K9/27
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V17/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21K9/272
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21K9/275
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21K9/278
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V3/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An LED tube lamp including a glass lamp tube, an end cap disposed at one end of the glass lamp tube, a power supply provided inside the end cap, an LED light strip disposed inside the glass lamp tube with a plurality of LED light sources mounted on. At least a part of an inner surface of the glass lamp tube is formed with a rough surface, and the glass lamp tube is covered by a heat shrink sleeve. The LED light strip has a bendable circuit sheet which is made of a metal layer structure to electrically connect the LED light sources with the power supply. The glass lamp tube and the end cap are secured by a highly thermal conductive silicone gel with its thermal conductivity not less than 0.7 w/m.Math.k.
Claims
1. An LED tube lamp, comprising: a tube, comprising: a main body; and two rear end regions respectively at two ends of the main body, wherein an outer diameter of each of the rear end regions is less than that of the main body; two end caps respectively sleeving the two rear end regions, each of the end caps comprising: a metal ring member substantially coaxial with the tube, the metal ring member sleeving the respective rear end region; an insulating end wall substantially perpendicular to the axial direction of the tube; and two pins on the insulating end wall for receiving an external driving signal; an LED light strip disposed on an inner circumferential surface of the main body with a plurality of LED light sources mounted thereon; a power supply disposed at one end or two ends of the tube and configured to drive the plurality of LED light sources; and an adhesive disposed between each of the metal ring members and each of the rear end regions; wherein a rough layer is formed on the inner circumferential surface of the main body and the roughness of the rough layer is higher than that of the outer surface of the main body, so that the light emitted from the LED light sources passing through the rough layer and then through the main body.
2. The LED tube lamp of claim 1, wherein the LED light strip further comprises a mounting region and a connecting region, the plurality of LED light sources are mounted on the mounting region, the connecting region electrically connecting the plurality of LED light sources to the power supply.
3. The LED tube lamp of claim 2, wherein the mounting region is attached on the inner circumferential surface of the main body and the connecting region is detached from the inner surface of the tube to form a freely extending end portion.
4. The LED tube lamp of claim 3, wherein a portion of the freely extending end portion of the LED light strip is in the tube and another portion of the freely extending end portion of the LED light strip is extending beyond an end of the tube and into the end cap.
5. The LED tube lamp of claim 4, wherein the power supply comprises a circuit board, the circuit board being disposed in the end cap, the freely extending end portion of the LED light strip being directly soldered to the circuit board of the power supply.
6. The LED tube lamp of claim 2, wherein the power supply comprises a plurality of electronic components mounted on the connecting region.
7. The LED tube lamp of claim 6, wherein the LED light strip comprises a first wiring layer, a dielectric layer and a second wiring layer, the dielectric layer is disposed between the first wiring layer and the second wiring layer, the plurality of LED light sources are mounted on the first wiring layer.
8. The LED tube lamp of claim 7, wherein the second wiring layer is a piece of metal material and a thickness of the second wiring layer is great than the first wiring layer.
9. The LED tube lamp of claim 8, wherein the LED light strip further comprises a protective layer disposed on the first wiring layer.
10. The LED tube lamp of claim 1, wherein the LED tube lamp further comprises a diffusion film covering the outer surface of the main body, so that the light emitted from the LED light sources passing through the rough layer and then through the diffusion film.
11. The LED tube lamp of claim 10, wherein the LED tube lamp further comprises an adhesive film contained in-between the tube of glass and the diffusion film.
12. The LED tube lamp of claim 10, wherein the tube is a glass tube and the LED tube lamp further comprises an anti-reflection layer coated on the inner surface of the tube which is capable of reducing a reflection occurring at an interface between the glass lamp tube's inner surface and air and allowing more light from the LED light sources transmitting through the glass lamp tube; and wherein the light output from the LED light sources transmits through the anti-reflection layer, the rough layer, the diffusion film, and the tube.
13. An LED tube lamp, comprising: a tube, comprising: a main body; and two rear end regions respectively at two ends of the main body; two end caps respectively sleeving the two rear end regions, each of the end caps comprising: a lateral wall substantially coaxial with the tube, the lateral wall sleeving the respective rear end region; an end wall substantially perpendicular to the axial direction of the tube; and two pins on the end wall for receiving an external driving signal; an LED light strip disposed on an inner circumferential surface of the main body with a plurality of LED light sources mounted thereon; a power supply comprising a circuit board and configured to drive the plurality of LED light sources, the circuit board disposed inside one of the rear end regions and one of the end caps; an adhesive disposed between each of the lateral wall and each of the rear end regions; and a diffusion film disposed on the glass lamp tube so that light emitted from the LED light sources passing through the inner surface of the glass lamp tube and then passing through the diffusion film on the glass lamp tube.
14. The LED tube lamp of claim 13, wherein a portion of the circuit board, one of the rear end regions, the adhesive and one of the lateral wall are stacked sequentially in a radial direction of the LED tube lamp.
15. The LED tube lamp of claim 14, wherein an outer diameter of each of the rear end regions is less than the outer diameter of the main body.
16. The LED tube lamp of claim 14, wherein the LED light strip further comprises a mounting region and a connecting region, the plurality of LED light sources are mounted on the mounting region, the connecting region electrically connecting the plurality of LED light sources to the power supply.
17. The LED tube lamp of claim 16, wherein the mounting region is attached on the inner circumferential surface of the main body and the connecting region is detached from the inner surface of the tube to form a freely extending end portion.
18. The LED tube lamp of claim 17, wherein the freely extending end portion of the LED light strip is directly soldered to the circuit board of the power supply.
19. The LED tube lamp of claim 14, wherein the LED light strip comprises a first wiring layer, a dielectric layer and a second wiring layer, the dielectric layer is disposed between the first wiring layer and the second wiring layer, and the plurality of LED light sources are mounted on the first wiring layer.
20. The LED tube lamp of claim 19, wherein the second wiring layer is a piece of metal material and the thickness of the second wiring layer is great than the first wiring layer.
21. The LED tube lamp of claim 20, wherein the LED light strip further comprises a protective layer disposed on the first wiring layer.
22. The LED tube lamp of claim 14, wherein the LED tube lamp further comprises an adhesive film contained in-between the glass lamp tube and the diffusion film.
23. The LED tube lamp of claim 14, wherein the LED tube lamp further comprises an anti-reflection layer coated on the inner surface of the tube.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF PREFERRED EMBODIMENTS
(19) The present disclosure provides a novel LED tube lamp based on the glass made lamp tube to solve the abovementioned problems. The present disclosure will now be described in the following embodiments with reference to the drawings. The following descriptions of various embodiments of this invention are presented herein for purpose of illustration and giving examples only. It is not intended to be exhaustive or to be limited to the precise form disclosed. These example embodiments are just thatexamplesand many implementations and variations are possible that do not require the details provided herein. It should also be emphasized that the disclosure provides details of alternative examples, but such listing of alternatives is not exhaustive. Furthermore, any consistency of detail between various examples should not be interpreted as requiring such detailit is impracticable to list every possible variation for every feature described herein. The language of the claims should be referenced in determining the requirements of the invention.
(20) Terms such as about or approximately may reflect sizes, orientations, or layouts that vary only in a small relative manner, and/or in a way that does not significantly alter the operation, functionality, or structure of certain elements. For example, a range from about 0.1 to about 1 may encompass a range such as a 0% to 5% deviation around 0.1 and a 0% to 5% deviation around 1, especially if such deviation maintains the same effect as the listed range.
(21) Unless otherwise defined, all terms (including technical and scientific terms) used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this disclosure belongs. It will be further understood that terms, such as those defined in commonly used dictionaries, should be interpreted as having a meaning that is consistent with their meaning in the context of the relevant art and/or the present application, and will not be interpreted in an idealized or overly formal sense unless expressly so defined herein.
(22) Referring to
(23) The glass lamp tube 1 is covered by a heat shrink sleeve 19. The thickness of the heat shrink sleeve 19 may range from 20 m to 200 m. The heat shrink sleeve 19 is substantially transparent with respect to the wavelength of light from the LED light sources 202 such that only a slight part of the lights transmitting through the glass lamp tube is absorbed by the heat shrink sleeve 19. The heat shrink sleeve 19 may be made of PFA (perfluoroalkoxy) or PTFE (poly tetra fluoro ethylene). Since the thickness of the heat shrink sleeve 19 is only 20 m to 200 m, the light absorbed by the heat shrink sleeve 19 is negligible. At least a part of the inner surface of the glass lamp tube 1 is formed with a rough surface and the roughness of the inner surface is higher than that of the outer surface, such that the light from the LED light sources 202 can be uniformly spread when transmitting through the glass lamp tube 1. In some embodiments, the roughness of the inner surface of the glass lamp tube 1 may range from 0.1 m to 40 m.
(24) The glass lamp tube 1 and the end cap 3 are secured by a highly thermal conductive silicone gel disposed between an inner surface of the end cap 3 and outer surfaces of the glass lamp tube 1. In some embodiments, the highly thermal conductive silicone gel has a thermal conductivity not less than 0.7 w/m.Math.k. In some embodiments, the thermal conductivity of the highly thermal conductive silicone gel is not less than 2 w/m.Math.k. In some embodiments, the highly thermal conducive silicone gel is of high viscosity, and the end cap 3 and the end of the glass lamp tube 1 could be secured by using the highly thermal conductive silicone gel and therefore qualified in a torque test of 1.5 to 5 newton-meters (Nt-m) and/or in a bending test of 5 to 10 newton-meters (Nt-m). The highly thermal conductive silicone gel has excellent weatherability and can prevent moisture from entering inside of the glass lamp tube 1, which improves the durability and reliability of the LED tube lamp.
(25) Referring to
(26) The bendable circuit sheet 205 electrically connects the LED light sources 202 with the power supply 5, and the length of the bendable circuit sheet 205 is larger than the length of the glass lamp tube 1. The bendable circuit sheet 205 has its ends extending beyond two ends of the glass lamp tube 1 to respectively form two freely extending end portions 21. As shown in
(27) Referring to
(28) In some embodiments, the inner surface of the glass lamp tube 1 is coated with an anti-reflection layer with a thickness of one quarter of the wavelength range of light coming from the LED light sources 202. With the anti-reflection layer, more light from the LED light sources 202 can transmit through the glass lamp tube 1. In some embodiments, the refractive index of the anti-reflection layer is a square root of the refractive index of the glass lamp tube 1 with a tolerance of 20%.
(29) Referring to
(30) Referring to
(31) As shown in
(32) The diffusion film 13 may be in form of an optical diffusion coating, which is composed of any one of calcium carbonate, halogen calcium phosphate and aluminum oxide, or any combination thereof. When the optical diffusion coating is made from a calcium carbonate with suitable solution, an excellent light diffusion effect and transmittance to exceed 90% can be obtained.
(33) In some embodiments, the composition of the diffusion film 13 in form of the optical diffusion coating may include calcium carbonate, strontium phosphate, thickener, and a ceramic activated carbon. Specifically, such an optical diffusion coating on the inner circumferential surface of the glass lamp tube 1 has an average thickness ranging from about 20 to about 30 m. A light transmittance of the diffusion film 13 using this optical diffusion coating may be about 90%. Generally speaking, the light transmittance of the diffusion film 13 may range from 85% to 96%. In addition, this diffusion film 13 can also provide electrical isolation for reducing risk of electric shock to a user upon breakage of the glass lamp tube 1. Furthermore, the diffusion film 13 provides an improved illumination distribution uniformity of the light outputted by the LED light sources 202 such that the light can illuminate the back of the light sources 202 and the side edges of the bendable circuit sheet 205 so as to avoid the formation of dark regions inside the glass lamp tube 1 and improve the illumination comfort. In another possible embodiment, the light transmittance of the diffusion film can be 92% to 94% while the thickness ranges from about 200 to about 300 m.
(34) In another embodiment, the optical diffusion coating can also be made of a mixture including calcium carbonate-based substance, some reflective substances like strontium phosphate or barium sulfate, a thickening agent, ceramic activated carbon, and deionized water. The mixture is coated on the inner circumferential surface of the glass lamp tube 1 and may have an average thickness ranging from about 20 to about 30 m. In view of the diffusion phenomena in microscopic terms, light is reflected by particles. The particle size of the reflective substance such as strontium phosphate or barium sulfate will be much larger than the particle size of the calcium carbonate. Therefore, adding a small amount of reflective substance in the optical diffusion coating can effectively increase the diffusion effect of light.
(35) Halogen calcium phosphate or aluminum oxide can also serve as the main material for forming the diffusion film 13. The particle size of the calcium carbonate may be about 2 to 4 m, while the particle size of the halogen calcium phosphate and aluminum oxide may be about 4 to 6 m and 1 to 2 m, respectively. When the light transmittance is required to be 85% to 92%, the required average thickness for the optical diffusion coating mainly having the calcium carbonate may be about 20 to about 30 m, while the required average thickness for the optical diffusion coating mainly having the halogen calcium phosphate may be about 25 to about 35 m, the required average thickness for the optical diffusion coating mainly having the aluminum oxide may be about 10 to about 15 m. However, when the required light transmittance is up to 92% and even higher, the optical diffusion coating mainly having the calcium carbonate, the halogen calcium phosphate, or the aluminum oxide must be thinner.
(36) The main material and the corresponding thickness of the optical diffusion coating can be decided according to the place for which the glass lamp tube 1 is used and the light transmittance required. It is to be noted that the higher the light transmittance of the diffusion film 13 is required, the more apparent the grainy visual of the light sources is.
(37) In some embodiments the inner peripheral surface or the outer circumferential surface of the glass lamp tube 1 may be further covered or coated with an adhesive film (not shown) to isolate the inside from the outside of the glass lamp tube 1. In this embodiment, the adhesive film is coated on the inner peripheral surface of the glass lamp tube 1. The configuration of the adhesive film may be represented by the circular line indicated by the reference number 14 in
(38) In some embodiments, the thickness of the coated adhesive film may be between about 100 and about 140 micrometers (m). The adhesive film having a thickness being less than 100 micrometers may not have sufficient shatterproof capability for the glass lamp tube 1, and the glass lamp tube 1 is thus prone to crack or shatter. The adhesive film having a thickness being larger than 140 micrometers may reduce the light transmittance and also increases material cost. The thickness of the coated adhesive film may be between about 10 and about 800 micrometers (m) when the shatterproof capability and the light transmittance are not strictly demanded.
(39) In some embodiments, the LED tube lamp according to the embodiment of present invention can include an optical adhesive sheet. Various kinds of the optical adhesive sheet can be combined to constitute various embodiments of the present invention. The optical adhesive sheet, which is a clear or transparent material, is applied or coated on the surface of the LED light source 202 in order to ensure optimal light transmittance. After being applied to the LED light sources 202, the optical adhesive sheet may have a granular, strip-like or sheet-like shape. The performance of the optical adhesive sheet depends on its refractive index and thickness. The refractive index of the optical adhesive sheet is in some embodiments between 1.22 and 1.6. In some embodiments, it is better for the optical adhesive sheet to have a refractive index being a square root of the refractive index of the housing or casing of the LED light source 202, or the square root of the refractive index of the housing or casing of the LED light source 202 plus or minus 15%, to contribute better light transmittance. The housing/casing of the LED light sources 202 is a structure to accommodate and carry the LED dies (or chips) such as a LED lead frame. The refractive index of the optical adhesive sheet may range from 1.225 to 1.253. In some embodiments, the thickness of the optical adhesive sheet may range from 1.1 mm to 1.3 mm. The optical adhesive sheet having a thickness less than 1.1 mm may not be able to cover the LED light sources 202, while the optical adhesive sheet having a thickness more than 1.3 mm may reduce light transmittance and increases material cost.
(40) In process of assembling the LED light sources to the LED light strip 2, the optical adhesive sheet is firstly applied on the LED light sources 202; then an insulation adhesive sheet is coated on one side of the LED light strip 2; then the LED light sources 202 are fixed or mounted on the LED light strip 2; the other side of the LED light strip 2 being opposite to the side of mounting the LED light sources 202 is bonded and affixed to the inner surface of the lamp tube 1 by an adhesive sheet; finally, the end cap 3 is fixed to the end portion of the lamp tube 1, and the LED light sources 202 and the power supply 5 are electrically connected by the LED light strip 2.
(41) In one embodiment, each of the LED light sources 202 may be provided with a LED lead frame having a recess, and an LED chip disposed in the recess. The recess may be one or more than one in amount. The recess may be filled with phosphor covering the LED chip to convert emitted light therefrom into a desired light color. Compared with a conventional LED chip being a substantial square, the LED chip in this embodiment is in some embodiments rectangular with the dimension of the length side to the width side at a ratio ranges generally from about 2:1 to about 10:1, in some embodiments from about 2.5:1 to about 5:1, and in some more desirable embodiments from 3:1 to 4.5:1. Moreover, the LED chip is in some embodiments arranged with its length direction extending along the length direction of the glass lamp tube 1 to increase the average current density of the LED chip and improve the overall illumination field shape of the glass lamp tube 1. The glass lamp tube 1 may have a number of LED light sources 202 arranged into one or more rows, and each row of the LED light sources 202 is arranged along the length direction (Y-direction) of the glass lamp tube 1.
(42) Referring to
(43) The glass lamp tube 1 is covered by a heat shrink sleeve 19. The heat shrink sleeve 19 is substantially transparent with respect to the wavelength of light from the LED light sources 202 and may be made of PFA (perfluoroalkoxy) or PTFE (poly tetra fluoro ethylene). At least a part of the inner surface of the glass lamp tube 1 is formed with a rough surface and the roughness of the inner surface is higher than that of the outer surface, such that the light from the LED light sources 202 can be uniformly spread when transmitting through the glass lamp tube 1.
(44) The glass lamp tube 1 and the end cap 3 are secured by a highly thermal conductive silicone gel disposed between an inner surface of the end cap 3 and outer surfaces of the glass lamp tube 1. In some embodiments, the highly thermal conductive silicone gel has a thermal conductivity not less than 0.7 w/m.Math.k. In some embodiments, the thermal conductivity of the highly thermal conductive silicone gel is not less than 2 w/m.Math.k. In some embodiments, the highly thermal conducive silicone gel is of high viscosity, and the end cap 3 and the end of the glass lamp tube 1 could be secured by using the highly thermal conductive silicone gel and therefore qualified in a torque test of 1.5 to 5 newton-meters (Nt-m) and/or in a bending test of 5 to 10 newton-meters (Nt-m). The highly thermal conductive silicone gel has excellent weatherability and can prevent moisture from entering inside of the glass lamp tube 1, which improves the durability and reliability of the LED tube lamp.
(45) Referring to
(46) In the previously-described first embodiment, the bendable circuit sheet 205 is made of a metal layer structure 2a, and the thickness of the heat shrink sleeve 19 is between 20 m and 200 m. However, in the second embodiment, the structure of the bendable circuit sheet 205 and the thickness of the heat shrink sleeve 19 are not limited.
(47) In the second embodiment, the inner surface of the glass lamp tube 1 may be coated with an anti-reflection layer with a thickness of one quarter of the wavelength range of light coming from the LED light sources 202. The configuration of the anti-reflection layer may be represented by the circular line indicated by the reference number 14 in
(48) Referring to
(49) Referring to
(50) In the second embodiment, the inner peripheral surface or the outer circumferential surface of the glass lamp tube 1 may be further covered or coated with an adhesive film (not shown) to isolate the inside from the outside of the glass lamp tube 1. The adhesive film may be coated on the inner peripheral surface of the glass lamp tube 1.
(51) Referring to
(52) The glass lamp tube 1 is covered by a heat shrink sleeve 19. The heat shrink sleeve 19 is substantially transparent with respect to the wavelength of light from the LED light sources 202 and may be made of PFA (perfluoroalkoxy) or PTFE (poly tetra fluoro ethylene). At least a part of the inner surface of the glass lamp tube 1 is formed with a rough surface with a roughness from 0.1 m to 40 m. The roughness of the inner surface is higher than that of the outer surface, such that the light from the LED light sources 202 can be uniformly spread when transmitting through the glass lamp tube 1.
(53) The end cap 3 is disposed at one end of the glass lamp tube 1 and the power supply 5 is provided inside the end cap 3. The glass lamp tube 1 and the end cap 3 are secured by a highly thermal conductive silicone gel disposed between an inner surface of the end cap 3 and outer surfaces of the glass lamp tube 1. In some embodiments, the highly thermal conductive silicone gel has a thermal conductivity not less than 0.7 w/m.Math.k. In some embodiments, the thermal conductivity of the highly thermal conductive silicone gel is not less than 2 w/m.Math.k. In some embodiments, the highly thermal conducive silicone gel is of high viscosity, and the end cap 3 and the end of the glass lamp tube 1 could be secured by using the highly thermal conductive silicone gel and therefore qualified in a torque test of 1.5 to 5 newton-meters (Nt-m) and/or in a bending test of 5 to 10 newton-meters (Nt-m). The highly thermal conductive silicone gel has excellent weatherability and can prevent moisture from entering inside of the glass lamp tube 1, which improves the durability and reliability of the LED tube lamp.
(54) Referring to
(55) Referring to
(56) In the third embodiment, the inner surface of the glass lamp tube 1 is coated with an anti-reflection layer with a thickness of one quarter of the wavelength range of light coming from the LED light sources 202. With the anti-reflection layer, more light from the LED light sources 202 can transmit through the glass lamp tube 1.
(57) Referring to
(58) Referring to
(59) In the third embodiment, the inner peripheral surface or the outer circumferential surface of the glass lamp tube 1 may be further covered or coated with an adhesive film (not shown) to isolate the inside from the outside of the glass lamp tube 1. The adhesive film may be coated on the inner peripheral surface of the glass lamp tube 1.
(60) An embodiment of the invention provides an LED tube lamp, referring to
(61) The LED light strip 2 is fixed on an internal wall of the housing 1 by the adhesive 4. As shown in
(62) The LED light strip 2 is provided with the female plug 201. The end cap 3 is provided with hollow conductive pins 301. The metal pin 502 on the LED power 5 is plugged into the hollow conductive pin 301 on the end cap 3. The male plug 501 is plugged into the female plug 201 of the LED light strip 2 to be electrical connection. Current passing through the hollow conductive pin 301 of the end cap 3 is transmitted to the metal pin 502 of the power 5. After being transformed by the power 5, the current is outputted by the male plug 501 and is transmitted to the LED light strip 2 through the female plug 201 of the LED light strip 2. As such, the LED light sources 202 on the LED light strip 2 can be turned on. The fabrication is simple, which is benefit to be automatic.
(63) In addition, please refer to the cross sectional schematic view of the housing of
(64) In addition, please refer to the three dimensional schematic view of the end cap of
(65) In addition, please refer to
(66) Please refer to
(67) Referring to
(68) Referring to
(69) When the bendable circuit sheet of the LED light strip 2 includes in sequence the first wiring layer 2a, the dielectric layer 2b, and the second wiring layer 2c as shown in
(70) The above-mentioned features of the present invention can be accomplished in any combination to improve the LED tube lamp, and the above embodiments are described by way of example only. The present invention is not herein limited, and many variations are possible without departing from the spirit of the present invention and the scope as defined in the appended claims.