Device and method for measuring retina safety improvement index
11422087 · 2022-08-23
Assignee
Inventors
Cpc classification
G01N21/31
PHYSICS
G01J3/027
PHYSICS
G02C7/104
PHYSICS
G02C7/10
PHYSICS
G02B5/208
PHYSICS
G01N21/255
PHYSICS
G01J3/36
PHYSICS
G01J3/506
PHYSICS
International classification
G01N21/31
PHYSICS
G02C7/10
PHYSICS
Abstract
Disclosures of the present invention describe a device for measuring retina safety improvement index, comprising: a light receiving unit, a first data processing unit and a second data processing unit. The light receiving unit receives a first visible light and a second visible light that is obtained by letting the first visible light pass through a blue light blocking product. The first data processing unit calculates a first maximum permissible exposure (MPE) of the first visible light and a second MPE of the second visible light. The second data processing unit calculates a retina safety improvement (RSI) index based on the first MPE and the second MPE. As such, by using this device, a consumer is facilitated to know how much eyes-protecting ability does a specific blue light blocking product have, without needing to read any numeric value of blue light filtering percentage and/or unfamiliar spectrogram.
Claims
1. A method for measuring a retina safety improvement index of a blue light filter, comprising the steps of: electrically connecting a light sensor to an electronic device comprising a processor and a memory; operating the electronic device so as to install an application program in the memory, wherein the application program comprises instructions of a first mathematical model defended as E.sub.B=Σ.sub.300.sup.700E.sub.λ.Math.B(λ), a second mathematical model defended as
2. The method of claim 1, wherein the electronic device further comprises: a display, being coupled to the processor, and being controlled by the processor so as to show the retina safety improvement index of the blue light filter; and a communication interface, being coupled to the processor, such that the processor communicates with an external electronic device through the communication interface.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The invention as well as a preferred mode of use and advantages thereof will be best understood by referring to the following detailed description of an illustrative embodiment in conjunction with the accompanying drawings, wherein:
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
(14) To more clearly describe a device and method for measuring retina safety improvement index (RSI) disclosed by the present invention, embodiments of the present invention will be described in detail with reference to the attached drawings hereinafter.
(15) With reference to
(16) The microprocessor 10 comprises a main control unit 100, a first data processing unit 101 coupled to the main control unit 100, and a second data processing unit 102 coupled to the main control unit 100. In a normal operation of the device 1, the light receiving unit 11 is used for receiving a first visible light and a second visible light, wherein the second visible light is a light that passes through the blue light blocking product 2. Moreover, the first data processing unit 101 is configured for calculating a first maximum permissible exposure (MPE) of the first visible light and a second maximum permissible exposure (MPE) of the second visible light.
(17) As described in more detail below, the second data processing unit 102 is configured for calculating a retina safety improvement (RSI) index based on the first MPE and the second MPE. Herein, it needs to explain that, how to calculate a specific light source's MPE has been disclosed in American National Standards Institute (ANSI) Z136.1-1. On the other hand, although
(18) Therefore, in one embodiment, the first data processing unit 101 can be configured for calculating the first MPE and the second MPE by using the MPE calculation formula that is disclosed by ANSI Z136.1-1. However, for effectively saving computing time as well as preventing the computing resources of the microprocessor 10 from being occupied exceedingly, the present invention provides following two mathematical equations for facilitating the first data processing unit 101 calculate the first MPE and the second MPE rapidly and effectively.
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(20) In the forgoing mathematical equations (1) and (2), E.sub.B is an index of blue light hazard, B(λ) is a function of blue light hazard, and E.sub.λ is irradiance of the light under test. It is worth noting that, unit of the maximum permissible exposure (MPE) that is calculated by using the forgoing mathematical equations (1) and (2) is second. Consequently, after the first MPE and the second MPE are obtained, the second data processing unit 102 is able to further calculate a retina safety improvement (RSI) index based on the first MPE and the second MPE. Particularly, the present invention provides following mathematical equation for facilitating the second data processing unit 102 calculate the RSI index rapidly and effectively.
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(22) In the forgoing mathematical equation (3), RSI is the index for describing a retina safety improvement of a specific blue light blocking product 2. From the mathematical equation (3), it should be understood that, the RSI index is a ratio of the second MPE and the first MPE. In addition,
(23) Herein, it needs further explain that,
(24) It should be understood that, the display unit 13 shown in
(25) Experiment
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(27) During the execution of a second experiment, the identical LED desk lamp E4 is also prepared, and the device 1 of the present invention is adopted for measuring a first MPE of a first visible light (i.e. white light) radiated from the LED desk lamp E4. After that, a blue-light blocking (filtering) protector made by B company is attached onto a light emission plane of the LED desk lamp E4, so as to subsequently use the device 1 of the present invention to measure a second MPE of a second visible light (i.e. a light obtained by letting the white light pass through the blue-light blocking protector) radiated from the LED desk lamp E4. In a normalized situation, the device 1 calculates the first MPE and the second MPE to 100 seconds and 870 seconds respectively, such that the device 1 of the present invention consequently calculates the RSI index of the LED desk lamp E4 to 8.7.
(28) From above descriptions, it is understood that, by using this novel device 1, a consumer is facilitated to know how much eyes-protecting ability does a specific blue light blocking (filtering) product have, without needing to read any numeric value of blue light filtering percentage and/or unfamiliar spectrogram. For example, in the case of an eye protection effect of the LED desk lamp E4 is set to 1, the eye protection effect of the LED desk lamp E4 that is equipped with the blue-light blocking (filtering) protector made by A company is increased to 4.68, and the eye protection effect of the LED desk lamp E4 that is equipped with the blue-light blocking (filtering) protector made by B company largely grows to 8.7. As described in more detail below, in the case of the LED desk lamp E4 has a recommended use time of 1 hour, the recommended use time of the LED desk lamp E4 can be prolonged to 4.68 (8.7) hours after being equipped with the blue-light blocking (filtering) protector made by A company (B company).
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(30) Therefore, through above descriptions, all embodiments and their constituting elements of the device and for measuring retina safety improvement index (RSI) proposed by the present invention have been introduced completely and clearly; in summary, the present invention includes the advantages of:
(31) (1) The present invention discloses a device 1 for measuring retina safety improvement index (RSI), mainly comprising: a light receiving unit 11, a first data processing unit 101 and a second data processing unit 102. The light receiving unit 11 is used for receiving a first visible light and a second visible light that is obtained by letting the first visible light pass through a blue light blocking product. On the other hand, the first data processing unit 101 is configured for calculating a first maximum permissible exposure (MPE) of the first visible light and a second MPE of the second visible light, such that the second data processing unit 102 is able to eventually calculate a retina safety improvement (RSI) index based on the first MPE and the second MPE.
(32) (1) As such, by using this novel device 1, a consumer is facilitated to know how much eyes-protecting ability does a specific blue light blocking (filtering) product have, without needing to read any numeric value of blue light filtering percentage and/or unfamiliar spectrogram.
(33) The above description is made on embodiments of the present invention. However, the embodiments are not intended to limit scope of the present invention, and all equivalent implementations or alterations within the spirit of the present invention still fall within the scope of the present invention.