1. Technical Field
In the field of testing all aspects of LEDs, the present disclosure relates to a light emitting diode (LED) light source measuring instrument.
2. Description of Related Art
An optical and electrical measuring system of LED light source is used by inserting a measuring instrument which carries a well-positioned LED light source into an integrating sphere; through connecting a peripheral spectrum analyzer, an electrical parameter measurement instrument and a LED power controller, the chromaticity coordinate, the color temperature, the color rendering index, the color tolerance adjustment, the wavelength, the color purity, the luminous flux, the voltage, the current and the power, etc., of the LED light source can be detected. The typical LED light source used for the lighting fixture is the surface mounted technology (SMT) type LED, which is suitable for mass production. But there are many differences among the SMT LED light sources regarding the sizes, shapes, structures and types.
The electrode plates of the LED light source 203 for connecting with the power source as shown in
In prior art, the measuring instrument of LED light source can be divided into two types, a pressed-type measuring instrument 1a shown in
When the pressed-type measuring instrument 1a is not placed with the LED light source 203, the end surface of the top plate 305 directly contact with the positive and negative electrodes 205a, 210a of the adjustable bolts 302. When operating, the LED light source 203 is placed on the pressed-type measuring instrument 1a, first; then the top plate 305 is pressed to adjust the position of the positive and negative electrodes 205a, 210a according to the size of the lateral positive and negative electrode plates 2232, 2233 of the LED light source 203, according to
Since the pressed seat 301, the adjustable bolts 302 and the pair of electrodes 205a, 210a of the pressed-type measuring instrument 1a are necessarily arranged above the light emitting surface 2031 of the LED light source 203, serious light blocking will further underestimate the measured luminous flux value, and the application of the pressed-type measuring instrument 1a is limited only in a few of the lateral positive and negative electrode plates 2232,2233 of the LED light source 203. Using this measuring instrument 1a to measure different sizes and shapes of LED light source 203 has its limitation and operating inconvenient, particularly in the non-temperature controlled test environment, resulting in the lack of reproducibility of measurement data, even causing the damage of the LED light source 203. Thus, the pressed-type measuring instrument 1a has serious limitations and shortcomings in both measuring quality and application level.
The movement of the positive electrode assembly 401 is along a long trench 409 which opens through the carrier plate 201b to communicate with the trench 412. A spring member 404 is arranged inside a shell portion 10b by a screw passing through the long trench 409 to connect with the positive electrode assembly 401 so that the positive electrode assembly 401 is fixed to a slider 405. The slider 405 is in the middle of the spring member 404. One side of the slider 405 along the radial direction has a guide rod 406, the end of the guide rod 406 is extending to but no over the outer wall surface of an upper stage section 101b. The other side of the slider 405 along the radial direction locates a fixing screw 407 which extends through the upper stage section 101b, and allows a spring 408 extend into a corresponding blind hole of the slider 405. The blind hole, the guide rod 406 and the fixing screw 407 are coaxially aligned. When operating the pushed-type measuring instrument 1b, gently push a certain distance of the guide rod 406 to enable the slider 405 sliding along the trench 412, making the positive electrode assembly 401 moving the same distance away from the fixed negative electrode assembly 402 to place the LED light source 203 properly between the electrode assemblies 401, 402. When the pushed force on the guide rod 406 is released, the positive electrode assembly 401 moves close to the LED light source 203 to electrically engage the longitudinal positive electrode plate 2132.
According to the size of the LED light source 203, the positive and negative electrodes 205b, 210b of the positive and negative electrodes assembly 401, 402 of the pushed-type measuring instrument 1b contact with and supply power to the longitudinal positive and negative electrode plates 2132, 2133 of the LED light source 203. However, the heights of the positive and negative electrode assemblies 401, 402 of the pushed-type measuring instrument 1b and the longitudinal positive and negative electrode plates 2132, 2133 of the LED light source 203 are fixed and may not match each other. Additionally, the amount of the displacement of the slider 405 is limited via pushing the guide rod 406, the size of the LED light source 203 is varied in the market, and the LED light source 203 may not have the longitudinal positive and negative electrode plates 2132, 2133. Therefore, using the same pushed-type measuring instrument 1b to measure different sizes and shapes of the LED light source 203 has its limitation. The pushed-type measuring instrument 1b is only suitable for the type of the LED light source 203 with the longitudinal electrode plates 2131, 2133. Particularly in the non-temperature controlled test environment where the steady-state test conditions cannot be clearly defined. Thus, the pushed-type measuring instrument 1b has its limitations and shortcomings in measuring quality and the application level.
Therefore, it is necessary to provide a LED light source measuring instrument with no light blocking, easy operation, high precision and versatility.
Many aspects of the present LED light source measuring instrument can be better understood with reference to the following drawings. The components in the drawings are not necessarily drawn to scale, the emphasis instead being placed upon clearly illustrating the principles of the present LED light source measuring instrument. In the drawing, all the views are schematic.
Referring to
The test portion 20 includes a carrier plate 201 embedded in an opening end of the shell portion 10, and the center of the outer end surface of the carrier plate 201 is for placing the LED light source 203 in the under test zone 202, with at least one air hole 204 at the center of the under test zone 202 passing through the carrier plate 201. At the portion of the under test zone 202 which is neighboring the two diagonal sides of the air holes 204, a pair of electrodes 205, 210 is provided which is for connecting with an external control power supply (not shown) to supply driving power to the LED light source 203. Each of the electrodes 205, 210 is constituted by a metal sleeve 2054 (with an outer diameter less than 3 mm), the inside of the metal sleeve 2054 being equipped with a telescopic assembly 2050 having a metal spring 2051. One of the telescopic assemblies 2050a is composed of a sleeve 2054a with two end openings, the spring 2051 is installed inside the sleeve 2054a, and the ends of the spring 2051 are separately connected to a thimble 2052 which is axially telescopic toward the opening of the sleeve 2054a, as shown in part (A) of
The center of the carrier plate 201 farthest from the under test zone 202 is fixedly connected to a rear seat 207 which is made of electrically insulating materials. At the center of the rear seat 207 a through hole 2071 is set which is communicated with the at least one air hole 204; furthermore, via a flexible tube 206 extending through a wall hole 104 passing through the rear section 102 of the shell portion 10, the air hole 204 is connected to the vacuum pump 50 outside the shell portion 10. The positive and negative electrodes 205, 210 are connected to the external control power supply (not shown) via two electric wires 208 using a plug 209, to supply the power to the LED light source 203. In an embodiment, as shown in
When operating the measuring instrument 1 to measure the characteristics of the LED light source 203, first step is to turn on the vacuum pump 50, and then place the LED light source 203 on the under test zone 202, aligning the central bottom side of the LED light source 203 on the at least one air hole 204, and make the base positive and negative electrode plates 2032, 2033 abut the corresponding protruding thimbles 2052 of the pair of electrodes 205, 210 of the measuring instrument 1. The light emitting surface 2031 of the LED light source 203 is thus at the top side thereof, which is opposite to the bottom side of the base positive and negative electrode plates 2032, 2033. Through a vacuum force provided by the vacuum pump 50, the LED light source 203 is attached and positioned on the under test zone 202 via the vacuum in the air hole 204. Simultaneously, the thimbles 2052, with different polarities, separately and forcefully abut the base positive and negative electrode plates 2032, 2033 of the LED light source 203, whereby the LED light source 203 is powered to emit light. Then the measuring instrument 1 is inserted into the entrance of the integrating sphere. Adjust and stabilize the external control power supply until the operating current and voltage of the LED light source 203 meets the specification; then, turn on the power for lighting the LED light source 203 inside the integrating sphere. Confirm the temperature of the cooling surface reaches stability state by the temperature display, and startup the optical and electrical properties automatic measurement system of the LED light source 203. When measurement is completed, turn off the external control power supply to extinguish the LED light source 203, remove the measuring instrument 1 from the integrating sphere, and remove the LED light source 203, continue to place another LED light source 203 on the under test zone 202 for measurement.
Compared to the conventional LED light source measuring instruments 1a, 1b, since the present embodiment is via a vacuum pump 50 to provide a vacuum at the bottom of the LED light source 203, the present disclosure achieves the LED light source 203 not only closely attached and easily positioned on the most front surface of the measuring instrument 1, completely excluding the light blocking shortcoming of the conventional measuring instruments 1a, 1b; the measurement instrument 1 of the present disclosure also has a more simplified structure than conventional measuring instruments 1a, 1b. In the present disclosure, power can be supplied to any SMT type LED light source with base positive and negative electrode plates 2032, 2033; the present disclosure can be used to measure different sizes, shapes, structures and types of LED light sources without any restriction, and ensure the excellent measurement quality and extremely versatile of this LED light source measuring instrument 1.
In the above embodiments the technical features and the achieved effects of the present disclosure are clearly described, which include:
A LED light source measuring instrument is provided, which has a high ability to measure the optical and the electrical properties; a vacuum is used to easily attach and position the SMT type LED on the under test zone; and the LED is powered by connecting between the base positive and negative electrode plates of the LED and the positive and negative electrodes of the measuring instrument. The LED light source is maintained at the most front surface of the measuring instrument, to overcome the light blocking shortcoming of the conventional measuring instrument, and to achieve high precision optical and electrical performance of the measuring instrument.
The present disclosure provides an optical and electrical performance measuring instrument which can be applied to any size or type of SMT type LED, supply power to any SMT type LED light source with base positive and negative electrode plates, whether with the longitudinal or lateral positive and negative electrode plates; thus all the diversified SMT type LEDs measurement can be achieved by one LED measuring instrument of the present disclosure.
The present disclosure provides an SMT type LED measuring instrument with a simple structure, easy operation, without the positioning fixture with complex structure of the conventional measuring instrument. Thus the present disclosure can simplify the operation for the installment and removal of the LED light source, achieve lowering the cost and simplify the process of the measuring instrument, and ensure the measurement quality and the long term reliability.
Although the present disclosure has been specifically described on the basis of this exemplary embodiment, the disclosure is not to be construed as being limited thereto. Various changes or modifications may be made to the embodiment without departing from the scope and spirit of the disclosure.
Number | Date | Country | Kind |
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201210141048.5 | May 2012 | CN | national |