Rail-type illuminance meter calibration equipment
The guide rail structure and the sliding trolley design with stable triangular support solve the accuracy and stability problems of the illuminometer calibration equipment and achieve high-precision calibration results.
Patent Information
- Application Number
- CN202411738470.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-29
- Publication Date
- 2025-09-26
- Estimated Expiration
- 2044-11-29
AI Technical Summary
In the prior art, the accuracy and stability of illuminometer calibration equipment are poor, resulting in inaccurate calibration work.
It adopts a guide rail structure, including the first and second guide rails arranged in parallel. The roller mechanism equipped on the sliding trolley forms a triangular stable support, and the precise alignment of the scale is achieved through the vernier part to ensure the stability and precise positioning of the sliding trolley.
The accuracy of illuminance meter calibration is improved, ensuring the reliability and stability of calibration work.
Smart Images

Figure CN119469388B_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the technical field of optical calibration devices, and more specifically, to a guide rail type illuminometer calibration device. Background Art
[0002] A lux meter (also known as a lux meter) is an instrument specifically designed to measure light intensity and brightness. It measures the intensity of light (illuminance), the degree to which an object is illuminated; that is, the ratio of the luminous flux received by the object's surface to the illuminated area. Lux meters typically consist of a selenium or silicon photocell and a microammeter. Existing technology often uses a standard optical track (or guide rail) to calibrate lux meters. However, the calibration device suffers from poor accuracy and stability when moving along the track, resulting in poor calibration accuracy. Summary of the Invention
[0003] In view of this, the present application provides a guide rail type illuminance meter calibration device to solve the technical problems of poor accuracy and stability of illuminance meter calibration devices in the prior art.
[0004] The present application provides a guide rail type illuminometer calibration device, wherein the guide rail type illuminometer calibration device comprises:
[0005] A support base, a first guide rail and a second guide rail provided on the support base, wherein the first guide rail and the second guide rail are arranged parallel to each other;
[0006] a ruler arranged parallel to the first guide rail, the ruler having first scale marks arranged along its length, the ruler being arranged on the supporting base and located on a side of the first guide rail facing away from the second guide rail;
[0007] A plurality of sliding carriages, each of the sliding carriages comprising a support plate and two first roller mechanisms and a second roller mechanism disposed below the support plate, the first roller mechanism being slidably supported on the first guide rail, the second roller mechanism being slidably supported on the second guide rail, the two first roller mechanisms and the second roller mechanism being correspondingly located at three corners of the same triangle;
[0008] A vernier is provided with a second scale facing the first scale. The vernier is slidably disposed on the support plate along the length direction of the scale and is arranged facing and adjacent to the scale.
[0009] Furthermore, the outer contour of the cross-section of the first guide rail and the second guide rail is circular, the first roller mechanism includes a first inclined wheel and a second inclined wheel, the first inclined wheel is supported on the circumferential surface of the first guide rail at an angle relative to the vertical plane from the side of the first guide rail facing the second guide rail, and the second inclined wheel is supported on the circumferential surface of the first guide rail at an angle relative to the vertical plane from the side of the first guide rail away from the second guide rail, the axis of the first inclined wheel and the axis of the second inclined wheel are both perpendicular to the axis of the first guide rail, and the axis of the first inclined wheel and the axis of the second inclined wheel are arranged at an angle less than 180° to each other; the second roller mechanism includes an upright wheel, the upright wheel is supported on the second guide rail and is located directly above the axis of the second guide rail, the axis of the second guide rail is perpendicular to the axis of the second guide rail and is arranged in the horizontal direction.
[0010] Furthermore, a plurality of roller adaptation stations are provided on the support plate, and each of the roller adaptation stations is optionally installed with the first roller mechanism or the second roller mechanism.
[0011] Furthermore, each of the sliding trolleys includes a limiting and fixing mechanism arranged on the support plate, and the limiting and fixing mechanism is capable of moving between a limiting position and a fixed position along a direction perpendicular to the axis of the second guide rail, and the limiting and fixing mechanism includes a first limiting plate and a second limiting plate, and the second guide rail is located between the first limiting plate and the second limiting plate, and the distance between the first limiting plate and the second limiting plate is greater than the diameter of the second guide rail, when the limiting and fixing mechanism is in the limiting position, one radial side of the second guide rail is spaced from the first limiting plate, and the other radial side of the second guide rail is spaced from the second limiting plate, and when the limiting and fixing mechanism is in the fixed position, one of the first limiting plate and the second limiting plate is pressed against the second guide rail.
[0012] 14. The repairing kit for automotive dents, according to claim 1, wherein a bottom of the foot stand comprises a through-hole, and the two foot pieces comprise two bosses, wherein the bosses comprise a through-hole, a screw bolt, and a nut.
[0013] Furthermore, the first guide rail and the second guide rail are both hollow circular tubes, and the supporting base is provided with a plurality of brackets arranged at intervals along the extension direction of the first guide rail and the second guide rail, and the upper end of the bracket has a first support head and a second support head arranged at intervals, the first guide rail is detachably mounted on the first support head, and the second guide rail is detachably mounted on the second support head, and the first support head and the second support head form a concave avoidance space.
[0014] Furthermore, the guide rail type illuminometer calibration device further comprises a plurality of support tubes passing through each of the brackets, and the support tubes are the same hollow circular tubes as the first guide rail and the second guide rail.
[0015] Furthermore, the guide rail type illuminance meter calibration equipment includes a standard light source installation module, a first calibration installation module, a second calibration installation module and a height ratio module. The standard light source installation module, the first calibration installation module, the second calibration installation module and the height ratio module are respectively installed on the support plate of any sliding trolley among a plurality of sliding trolleys. The standard light source installation module is used to install a standard light source, the first calibration installation module is used to install the illuminance meter to be calibrated, and the second calibration installation module is used to install the probe of the illuminance meter to be calibrated.
[0016] Furthermore, the standard light source installation module, the first calibration installation module, and the second calibration installation module all include a basic lifting support mechanism, the basic upgrade support mechanism includes a stud threadedly connected to the support plate, the axis of the stud is arranged in the vertical direction, and the basic lifting support mechanism also includes a first support platform, a second support platform, a third support platform and a rotating platform, the rotating platform can be mounted on the third support platform so as to rotate around the vertical axis, the first support platform is mounted on the top of the stud, the second support platform is mounted on the first support platform through a leveling assembly, and a horizontal displacement mechanism is installed on the second support platform , the third support platform is installed on the horizontal displacement mechanism, the first calibration installation module also includes a swing guide groove and a U-shaped swing clamp block arranged on the corresponding rotating platform, one end of the U-shaped swing clamp block is provided with a connecting column, the connecting column is swingably installed in the swing guide groove, the U-shaped swing clamp block forms a rectangular clamping groove for clamping the illuminance meter to be calibrated, the second calibration installation module also includes a mounting ring arranged on the corresponding rotating platform and three clamping claws connected to the mounting ring, the clamping head of each clamping claw extends into the inner ring of the mounting ring to be used for clamping and fixing the probe of the illuminance meter to be calibrated in the inner ring of the mounting ring.
[0017] Furthermore, the guide rail type illuminance meter calibration equipment also includes a plurality of aperture frames that can be selectively supported on the first guide rail and the second guide rail, each of the aperture frames is equipped with an aperture, the standard light source mounting module is located on one side of the plurality of aperture frames, and the first calibration mounting module, the second calibration mounting module and the height comparison module are located on the other side of the plurality of aperture frames.
[0018] Since in the guide rail type illuminometer calibration equipment provided by the present invention, the two first roller mechanisms and the one second roller mechanism in the sliding trolley are located at the three corners of the same triangle in a one-to-one correspondence, forming a triangle firmly supported on the first guide rail and the second guide rail, ensuring the stability of various devices and facilities equipped on the sliding trolley (such as standard light source, installation of the illuminometer to be calibrated, installation of the probe of the illuminometer to be calibrated, etc.), and can ensure that the illuminometer calibration work is carried out reliably and stably. In addition, the guide rail type illuminometer calibration equipment includes a vernier, which can slide along the length direction of the scale so that the first scale and the second scale are accurately aligned to achieve the precise rivet of the initial position of the sliding trolley. After the trolley moves one end distance along the first guide rail and the second guide rail again, the distance change between the first scale and the second scale compared to the initial alignment position is compared, and the displacement of the sliding trolley can be accurately adjusted. Therefore, the accuracy of the guide rail type illuminometer calibration equipment is very high, which can improve the accuracy of the illuminometer calibration work. BRIEF DESCRIPTION OF THE DRAWINGS
[0019] In order to more clearly illustrate the technical solutions in the embodiments of the present application, the following briefly introduces the drawings required for use in the embodiments or descriptions of the prior art. Obviously, the drawings described below are only some embodiments of the present application. For ordinary technicians in this field, other drawings can be obtained based on these drawings without any creative work.
[0020] Figure 1 A perspective view of a guide rail type illuminometer calibration device according to an embodiment of the present application;
[0021] Figure 2 for Figure 1 Enlarged view of point A in the middle;
[0022] Figure 3 for Figure 1 Enlarged view of point B in the middle;
[0023] Figure 4 for Figure 1 Enlarged view of point C in the middle;
[0024] Figure 5 for Figure 1 Enlarged view of point D in the middle;
[0025] Figure 6 A partial enlarged view of the second guide rail in the guide rail type illuminometer calibration device according to one embodiment of the present application;
[0026] Figure 7 A partial enlarged view of a vernier component in a guide rail type illuminometer calibration device according to an embodiment of the present application;
[0027] Figure 8 This is a partial enlarged view of the installation location of the first calibration installation module in the guide rail type illuminometer calibration device according to one embodiment of the present application;
[0028] Figure 9 for Figure 8 Enlarged view of point A in the middle;
[0029] Figure 10 for Figure 8 Enlarged view of point B in the middle;
[0030] Figure 11 for Figure 8 Enlarged view of point C in the middle. DETAILED DESCRIPTION
[0031] To facilitate understanding of the present application, a more comprehensive description of the present application will be provided below with reference to the accompanying drawings. The accompanying drawings provide exemplary embodiments of the present application to provide a more accurate and thorough understanding of the technical solutions disclosed herein. However, it should be understood that the present application can be implemented in a variety of different forms and is not limited to the embodiments described below.
[0032] The same or similar numbers in the drawings of this application correspond to the same or similar parts; in the description of this application, it should be understood that if there are terms such as "up", "down", "left", "right", etc. indicating directions or positional relationships, they are based on the directions or positional relationships shown in the drawings. This is only for the convenience of describing this application and simplifying the description, and does not indicate or imply that the device or element referred to must have a specific direction, be constructed and operated in a specific direction. Therefore, the terms describing the positional relationship in the drawings are only used for illustrative purposes and cannot be understood as limiting this application. For ordinary technicians in this field, the specific meanings of the above terms can be understood according to specific circumstances.
[0033] In addition, if there are descriptions involving "first", "second", etc. in the embodiments of the present application, the descriptions of "first", "second", etc. are only for descriptive purposes and cannot be understood as indicating or implying their relative importance or implicitly indicating the number of the indicated technical features. Therefore, the features defined as "first" and "second" may explicitly or implicitly include at least one of such features. In addition, if "and / or" or "and / or" appears in the full text, its meaning includes three parallel schemes. Taking "A and / or B" as an example, it includes scheme A, scheme B, or schemes in which A and B are satisfied at the same time.
[0034] In addition, the technical solutions between the various embodiments can be combined with each other, but they must be based on the fact that ordinary technicians in this field can implement them. When the combination of technical solutions is mutually contradictory or cannot be implemented, it should be deemed that such a combination of technical solutions does not exist and is not within the scope of protection required by this application.
[0035] See also Figures 1 to 6 The present invention provides a guide rail type illuminance meter calibration device, wherein the guide rail type illuminance meter calibration device comprises:
[0036] A supporting base 1 (which may be a cabinet, a frame, or other structure), a first guide rail 2 and a second guide rail 3 provided on the supporting base 1, wherein the first guide rail 2 and the second guide rail 3 are arranged parallel to each other;
[0037] a ruler 4 arranged parallel to the first guide rail 2, having first scale marks 41 arranged along its length, the ruler 4 being arranged on the supporting base 1 and located on a side of the first guide rail 2 facing away from the second guide rail 3;
[0038] Multiple sliding carriages 100, each sliding carriage 100 includes a support plate 101 and two first roller mechanisms and one second roller mechanism disposed below the support plate 101, the first roller mechanism being slidably supported on a first guide rail 2, and the second roller mechanism being slidably supported on a second guide rail 3, the two first roller mechanisms and the one second roller mechanism being correspondingly located at three corners of the same triangle;
[0039] The main structure of the cursor member 5 may be a cursor block having a second scale 51 facing the first scale 41 . The cursor member 5 is slidably disposed on the support plate 101 along the length direction of the scale 4 and is arranged facing and adjacent to the scale 4 .
[0040] Since the two first roller mechanisms and one second roller mechanism in the slide trolley 100 of the present invention are located at the three corners of the same triangle in a one-to-one correspondence, a triangle is formed that is firmly supported on the first guide rail 2 and the second guide rail 3, ensuring the stability of various devices and facilities equipped on the slide trolley 100 (such as a standard light source, a probe for installing a illuminometer to be calibrated, etc.), and ensuring that the illuminometer calibration work is carried out reliably and stably. In addition, the guide rail illuminometer calibration device It includes a vernier part 5, which can slide along the length direction of the scale 4 so that the first scale 41 and the second scale 51 are accurately aligned to achieve accurate positioning of the initial position of the sliding trolley 100. After the trolley moves a distance along the first guide rail 2 and the second guide rail 3 again, the distance change between the first scale 41 and the second scale 51 compared with the initial alignment position is compared, and the displacement of the sliding trolley 100 can be accurately adjusted. Therefore, the accuracy of the guide rail type illuminance meter calibration equipment is very high, which can improve the accuracy of the illuminance meter calibration work.
[0041] According to a preferred embodiment of the present application, the second scale 51 may include at least 5 scale lines, such as 5 equally spaced scale lines or 10 equally spaced scale lines that match the 5 adjacent scale lines on the first scale 41, to accurately position the initial position of the sliding trolley 100, ensuring that the 5 scale lines on the second scale 51 are aligned with the 5 scale lines on the first scale 41, so as to further improve the alignment accuracy between the first scale 41 and the second scale 51. It can be understood that the first scale 41, as a scale on the ruler 4, obviously includes all scale lines for each standard distance over a certain length, for example, one scale line per millimeter or one scale line per centimeter.
[0042] According to one embodiment of the present application, the outer contour of the cross section of the first guide rail 2 and the second guide rail 3 is circular. The first guide rail 2 and the second guide rail 3 are preferably hollow circular tubes, but can also be cylinders or round rods. The first roller mechanism includes a first inclined wheel 102 and a second inclined wheel 103. The first inclined wheel 102 is supported on the circumferential surface of the first guide rail 2 at an angle relative to the vertical plane from the side of the first guide rail 2 facing the second guide rail 3. The second inclined wheel 103 is supported on the circumferential surface of the first guide rail 2 at an angle relative to the vertical plane from the side of the first guide rail 2 facing away from the second guide rail 3. The axis of the first inclined wheel 102 and the axis of the second inclined wheel 103 are aligned. The lines are perpendicular to the axis of the first guide rail 2, and the axis of the first inclined wheel 102 and the axis of the second inclined wheel 103 are arranged at an angle less than 180° to each other. This arrangement allows the first inclined wheel 102 and the second inclined wheel 103 to form a certain clamping friction force on the upper surface of the first guide rail 2, ensuring that the first inclined wheel 102 and the second inclined wheel 103 are more stably supported on the first guide rail 2; the second roller mechanism includes an upright wheel 104, which is supported on the second guide rail 3 and is located directly above the axis of the second guide rail 3. The axis of the second guide rail 3 is perpendicular to the axis of the second guide rail 3 and is arranged in the horizontal direction.
[0043] According to a preferred embodiment of the present application, a plurality of roller adaptation stations are provided on the support plate 101, and each roller adaptation station is optionally installed with a first roller mechanism or a second roller mechanism, so that the first roller mechanism and the second roller mechanism can be conveniently replaced as standard parts. For example, the same sliding trolley 100 is not limited to installing two first roller mechanisms and one second roller mechanism, and can also be replaced and matched, such as installing three first roller mechanisms. In this case, there is no need to set the limiting fixing mechanism 300 mentioned below, or when the number of one of the first roller mechanism and the second roller mechanism is insufficient, the first roller mechanism and the second roller mechanism can also be replaced with each other. However, considering the use of the vertical wheel 104 in the second roller mechanism, it is necessary to pay attention to controlling the number of the second roller mechanisms. The roller adaptation station preferably has four threaded mounting holes 105 arranged in a matrix. The first roller mechanism includes a first standard block 106 that can be detachably connected to the bottom of the four threaded mounting holes 105 by four threaded fasteners. The second roller mechanism includes a second standard block 107 that can be detachably connected to the bottom of the four threaded mounting holes 105 by four threaded fasteners. Both sides of the first standard block 106 are inclined surfaces 108, and two inclined shafts 109 distributed in an eight-shaped shape extend from the two inclined surfaces 108. The first inclined wheel 102 and the second inclined wheel 103 are rotatably mounted on the inclined shaft 109 one by one. A horizontal transverse shaft 110 is installed below the second standard block 107, and the vertical wheel 104 is rotatably mounted on the horizontal transverse shaft 110.
[0044] See also Figure 7 and Figures 8 to 11 According to a preferred embodiment of the present application, one side of the support plate 101 includes two spaced first protruding plates 111, and the other side includes a second protruding plate 112. The first roller mechanism is connected to the first protruding plate 111, and the second roller mechanism is connected to the second protruding plate 112. A U-shaped frame 200 is detachably connected between the two spaced first protruding plates 111. The two side arms 201 of the U-shaped frame 200 are arranged in a direction parallel to the first guide rail 2 and the second guide rail 3. The guide rail illuminometer calibration device includes a vernier screw 19 passing through the two side arms 201 of the U-shaped frame 200 and a vernier screw sleeved on the vernier screw. The sleeve 6 on the lever 19 has a limit opening 61 in the middle of the sleeve 6, and the end of the cursor member 5 away from the second scale 51 (the end of the cursor member 5 away from the second scale 51 forms a sleeve 52, and the sleeve 52 has an internal thread) is threadedly connected to the cursor screw 19 through the limit opening 61. The end of the cursor screw 19 has a knob 7 protruding from the end of the sleeve 6. The outer wall of the sleeve 6 is fixed to the two side arms 201. The axial length of the limit opening 61 along the sleeve 6 is greater than the axial length of the cursor member 5 and the sleeve 6, so that when the knob 7 is screwed, the cursor member 5 can move axially along the sleeve 6 in the limit opening 61.
[0045] According to a preferred embodiment of the present application, each sliding trolley 100 includes a limiting and fixing mechanism 300 provided on the support plate 101, and the limiting and fixing mechanism 300 can move between a limiting position and a fixed position along a direction perpendicular to the axis of the second guide rail 3, and the limiting and fixing mechanism 300 includes a first limiting plate 301 and a second limiting plate 302, and the second guide rail 3 is located between the first limiting plate 301 and the second limiting plate 302, and the distance between the first limiting plate 301 and the second limiting plate 302 is greater than the diameter of the second guide rail 3, and when the limiting and fixing mechanism 300 is in the limiting position, one radial side of the second guide rail 3 is spaced from the first limiting plate 301, and the other radial side of the second guide rail 3 is spaced from the second limiting plate The plates 302 are spaced apart. When the limiting and fixing mechanism 300 is in a fixed position, one of the first limiting plate 301 and the second limiting plate 302 presses against the second guide rail 3. The second guide rail 3 is limited between the first limiting plate 301 and the second limiting plate 302, which can improve the stability of the vertical wheel 104 supported on the second guide rail 3, so that the vertical wheel 104 will not slide off the second guide rail 3. In fact, since the first inclined wheel 102 and the second inclined wheel 103 form a certain clamping friction force on the upper surface of the first guide rail 2, this also improves the stability of the entire sliding trolley 100 supported on the first guide rail 2 and the second guide rail 3, including improving the stability of the vertical wheel 104 supported on the second guide rail 3.
[0046] According to a specific embodiment of the present application, a first rectangular through hole 113 and a second rectangular through hole 114 are arranged at intervals on the support plate 101 in a direction perpendicular to the axis of the second guide rail 3. The limiting and fixing mechanism 300 also includes a rotating limiting block 304, a screw 305 and an intermediate connecting plate 303. One end of the intermediate connecting plate 303 is connected to the first limiting plate 301, and the other end of the intermediate connecting plate 303 is connected to the second limiting plate 302. The intermediate connecting plate 303 is supported on the support plate 101, and the intermediate connecting plate 303 is connected to the second limiting plate 302. The plate 303, the first limiting plate 301 and the second limiting plate 302 can be integrally formed U-shaped steel plates. The first limiting plate 301 extends from the middle connecting plate 303 and passes through the first rectangular through hole 113 from top to bottom, and can move in the first rectangular through hole 113 along the axial direction of the screw 305. The second limiting plate 302 extends from the middle connecting plate 303 and passes through the second rectangular through hole 114 from top to bottom, and can move in the second rectangular through hole 114 along the axial direction of the screw 305. 05 passes through the first limiting plate 301 and the second limiting plate 302, the first limiting plate 301 is located on the side of the second guide rail 3 facing the first guide rail 2, the rotation limiting block 304 is detachably connected to the first limiting plate 301 by a threaded fastener and has an internal threaded hole, the screw rod 305 is also threadedly matched with the internal threaded hole, one end of the screw rod 305 is connected to a screw head 306, the screw head 306 is located on the side of the second limiting plate 302 away from the first limiting plate 301 and the first side of the screw head 306 abuts against The support plate 101 and the first side of the screwing head 306 are connected to the screwing screw 305. When the screwing head 306 is rotated, the first limit plate 301 and the second limit plate 302 can be moved along the axial direction of the screw 305. The first limit plate 301 can be adjusted to press against the second guide rail 3 as needed, so that the corresponding sliding trolley 100 is positioned on the first guide rail 2 and the second guide rail 3. It is also possible to make both sides of the second guide rail 3 have a gap with the first limit plate 301 and the second limit plate 302 as needed.
[0047] According to one embodiment of the present application, the first guide rail 2 and the second guide rail 3 are both hollow circular tubes, and a plurality of brackets 400 are arranged at intervals along the extension direction of the first guide rail 2 and the second guide rail 3. The upper end of the bracket 400 has a first support head 401 and a second support head 402 arranged at intervals. The first guide rail 2 is detachably mounted on the first support head 401, and the second guide rail 3 is detachably mounted on the second support head 402. The first support head 401 and the second support head 402 form a concave avoidance space, so that when the sliding trolley 100 moves on the first guide rail 2 and the second guide rail 3, the components on the sliding trolley 100 located below the support plate 101 (such as the section of the stud 501 mentioned below located below the support plate 101) will not interfere with the bracket 400.
[0048] See also Figure 3According to a preferred embodiment of the present application, the guide rail type illuminance meter calibration device further includes a plurality of support tubes 8 passing through each bracket 400, and the support tubes 8 are the same hollow circular tubes as the first guide rail 2 and the second guide rail 3. For example, a support tube 8 is provided below each of the first guide rail 2 and the second guide rail 3, and a support tube 8 is provided in the middle of the bottom of the bracket 400, and so on. Since the support tubes 8 are the same hollow circular tubes as the first guide rail 2 and the second guide rail 3, when the first guide rail 2 and the second guide rail 3 are worn, they can be replaced with the support tubes 8, and the support tubes 8 below can be disassembled and assembled to the original positions of the first guide rail 2 and the second guide rail 3 as new first guide rails 2 and the second guide rail 3.
[0049] According to a specific embodiment of the present application, the guide rail type illuminance meter calibration device also includes a connecting block 9, and the upper ends of the first support head 401 and the second support head 402 are provided with an upward opening groove 10, and the two side surfaces of the opening groove 10 form an inclined surface that gradually expands upward and outward, and the circumferential surface of the hollow circular tube (referring to the first guide rail 2 or the second guide rail 3) is supported on the two side surfaces of the corresponding opening groove 10, and the bottom surface of the opening groove 10 is provided with a first connecting screw hole, and the connecting block 9 is inserted into the hollow circular tube, and the two sides of the connecting block 9 form an outer convex arc surface that is adapted to the shape of the inner circumferential surface of the hollow circular tube. The outer convex arc surfaces on both sides of the connecting block 9 are pressed against the inner circumferential surface of the hollow circular tube, and are installed in the first connecting screw hole on the bottom surface of the opening groove 10 by passing through the connecting block 9 and the side wall of the hollow circular tube, thereby fixing the hollow circular tube on the two side surfaces of the opening groove 10.
[0050] According to a preferred embodiment of the present application, the open groove 10 is formed on the detachable groove block 11, the detachable groove block 11 can be detachably connected to the upper ends of the first support head 401 and the second support head 402 by threaded fasteners, and the ruler 4 can be detachably connected to one side of each detachable groove block 11 corresponding to the first guide rail 2 by threaded fasteners.
[0051] See also Figure 1 、 Figure 4 、 Figure 5 、 Figures 8 to 11In addition, the guide rail illuminometer calibration device includes a standard light source installation module 12, a first calibration installation module 13, a second calibration installation module 14 and a height comparison module 15. The standard light source installation module 12, the first calibration installation module 13, the second calibration installation module 14 and the height comparison module 15 are each installed on the support plate 101 of any sliding trolley 100 in the multiple sliding trolleys 100. The standard light source installation module 12 is used to install a standard light source (for example, various suitable types of lamps, including incandescent lamps, halogen lamps, LED lamps, etc.), the first calibration installation module 13 is used to install the illuminometer to be calibrated, and the second calibration installation module 14 is used to install the probe of the illuminometer to be calibrated. The first calibration installation module 13 and the second calibration installation module 14 are selectively arranged in the guide rail illuminometer calibration device (no need to be arranged at the same time). Since the models and appearances of illuminometers are different, they can be roughly divided into two types in general: one is: the illuminometer reading device and the probe are on the same body (integrated illuminometer); the other is: the illuminometer reading device and the probe are connected by a wire (split illuminometer). The probe of a split-type illuminance meter is generally a circular probe, so the first calibration installation module 13 is used to install and fix the illuminance meter reading device and the probe on the same body of the integrated illuminance meter, while the second calibration installation module 14 is used to install and fix the circular probe.
[0052] See also Figure 1 、 Figure 4 、 Figure 5 、 Figures 8 to 11According to a specific embodiment of the present application, the standard light source installation module 12, the first calibration installation module 13, and the second calibration installation module 14 all include a basic lifting support mechanism 500, and the basic upgrading support mechanism includes a stud 501 threadedly connected to the support plate 101, and the axis of the stud 501 is arranged in the vertical direction. The basic lifting support mechanism 500 also includes a first support platform 502, a second support platform 503, a third support platform 504 and a rotating platform 515. The first support platform 502 is installed on the top of the stud 501, and the second support platform 503 is installed on the first support platform 502 through a leveling component. A horizontal displacement mechanism is installed on the second support platform 503, and the third support platform 504 is installed on the horizontal displacement mechanism. The rotating platform 515 5 can be mounted on the third support platform 504 to rotate around the vertical axis. The horizontal displacement mechanism may include a horizontally arranged screw and nut mechanism, etc. The lower end of the third support platform 504 is connected to a horizontal slider 506, and the upper end of the second support platform 503 is provided with a slide rail 505. The horizontal slider 506 and the guide screw 516 in the screw and nut mechanism form a screw and nut mechanism and slide with the slide rail 505. The first calibration installation module 13 also includes a swing guide groove 131 and a U-shaped swing clamp 132 provided on the corresponding rotation platform 515. The swing guide groove 131 can be formed by two spaced semicircular plates 133 connected at the bottom. One end of the U-shaped swing clamp 132 is provided with a connecting column 134, which can be swingably mounted. Installed in the swing guide groove 131, the arrangement inclination angle of the U-shaped swing clamp 132 in the vertical plane can be adjusted, thereby adjusting the inclination angle of the integral illuminometer clamped and fixed by the U-shaped swing clamp 132. The side of the semicircular plate 133 is formed with an arcuate through groove 136, and the side of the connecting column 134 is formed with a positioning screw hole. When the connecting column 134 swings, the positioning screw hole is always aligned with the arcuate through groove 136, which facilitates the positioning screw to pass through the arcuate through groove 136 and screw into the positioning screw hole to fix the connecting column 134 to the semicircular plate 133. The U-shaped swing clamp 132 is formed with a rectangular clamping groove 135 for clamping the illuminometer to be calibrated to facilitate clamping the integral illuminometer. The side of the rectangular clamping groove 135 is provided with a locking through hole 138, which is convenient for screwing in a threaded fastener to lock the integral The second calibration installation module 14 further includes a mounting ring 141 provided on the corresponding rotating table 515 and three clamping claws 142 connected to the mounting ring 141. The chuck of each clamping claw 142 extends into the inner ring of the mounting ring 141 to clamp and fix the probe of the illuminometer to be calibrated in the inner ring of the mounting ring 141. Each clamping claw 142 is hinged to the mounting ring 141, and a pressing force toward the inner ring is formed by a spring connected to the mounting ring 141. The upper part of the rotating table 515 is used to directly install the individual parts of the standard light source mounting module 12, the first calibration mounting module 13, and the second calibration mounting module 14: for example, the standard light source connecting rod 16 of the standard light source mounting module 12 (for directly connecting the standard light source,The standard light source connecting rod 16 can be threaded and connected to the threaded hole of the standard lamp spacing), the swing guide groove 131 and U-shaped swing clamp 132 of the first calibration installation module 13, the mounting ring 141 of the second calibration installation module 14 and the three clamping claws 142 connected to the mounting ring 141, etc. However, in other embodiments, the second calibration installation module 14 and the standard light source installation module 12 do not need to be provided with a rotating platform 515. That is, the second calibration installation module 14 and the standard light source installation module 12 can be directly installed on the third support platform 504.
[0053] See also Figure 4 、 Figure 5 、 Figures 8 to 11 According to a specific embodiment of the present application, the leveling assembly includes an intermediate disk 507, a plurality of leveling support columns 508, a plurality of leveling screw sleeves 509 corresponding to the number of the leveling support columns 508, and a plurality of rotating support round seats 511 corresponding to the number of the leveling support columns 508. The edge of the intermediate disk 507 has a plurality of notches 510 at equal angles corresponding to the number of the leveling support columns 508. For example, three leveling support columns 508 correspond to three notches 510 distributed at 180° intervals. The leveling support columns 508 are clamped in the notches 510. The rotating support round seat 511 is rotatably installed in the corresponding plurality of grooves on the first support platform 502. The rotating support round seat 511 is above The second support platform 503 has a support groove 512 with a V-shaped longitudinal cross-section. The lower end of the leveling support column 508 is supported on the support groove 512. The upper end of the leveling support column 508 has threads for threaded connection with the leveling screw sleeve 509. The second support platform 503 is provided with a settlement limit groove along the vertical direction corresponding to the position of the notch 510 of the intermediate disk 507. A rotating block 513 is installed in each settlement limit groove. The upper end of the leveling screw sleeve 509 is fixedly connected to the rotating block 513. The first support platform 502 and the intermediate disk 507 are also movably connected by a threaded fastener (not shown). The threaded fastener (not shown) allows the first support platform 502 and the intermediate disk 507 to be inseparable from each other but to be able to move axially relative to each other. The leveling support column 508 is also formed with an elastic pressure plate 514 that presses against the upper surface of the intermediate disk 507. Rotating the leveling screw sleeve 509 can achieve leveling of the second support platform 503 relative to the first support platform 502.
[0054] The rail-mounted illuminometer calibration device also includes multiple aperture mounts 17, optionally supported on the first and second rails 2 and 3. Each aperture mount 17 is mounted with an aperture 18. The standard light source mounting module 12 is located on one side of the aperture mounts 17, while the first calibration mounting module 13, the second calibration mounting module 14, and the height-comparison module 15 are located on the other side. The apertures 18 serve two functions in the rail-mounted illuminometer calibration device: First, they control the size and intensity of the light beam. The apertures 18 adjust the aperture of the light beam, thereby controlling its intensity and size. This is crucial for ensuring stable and accurate light during measurement. Second, they reduce stray light. In photometric measurements, stray light can affect the accuracy of measurement results. Proper design and placement of the apertures 18 can effectively reduce their impact and improve measurement accuracy. Two apertures 18 in this rail-mounted illuminometer calibration device meet these basic requirements.
[0055] The guide rail type illuminometer calibration device provided in the present application is used to calibrate the illuminometer. According to the type of the instrument under test (whether it is an integral illuminometer or a split illuminometer), the first calibration mounting module 13 and the second calibration mounting module 14 are selected. If it is an integral illuminometer, the first calibration mounting module 13 is arranged and the integral illuminometer is fixed in the U-shaped swing clamp 132. If it is a split illuminometer, the second calibration mounting module 14 is arranged and the probe of the split illuminometer is clamped and fixed in the inner ring of the mounting ring 141 by three clamping claws 142. A standard lamp is installed on the standard light source mounting module 12. By adjusting the vertical lifting, rotation angle, and swing angle of the standard lamp and the instrument under test (the probe of the integral illuminometer or the split illuminometer), it is satisfied that the light-emitting surface of the standard lamp and the receiving plane of the instrument under test are perpendicular to the first guide rail 2 and the second guide rail 3, and the center of the standard lamp and the instrument under test are located on the same measurement axis, and the same measurement axis is parallel to the first guide rail 2 and the second guide rail 3. Light up the standard lamp. According to the measuring range of the instrument under test, the sliding carriage 100 is accurately moved by comparing the second scale 51 of the first scale 41 on the ruler 4 and the vernier 5. The distance between the instrument under test and the standard lamp is accurately changed by comparing the second scale 51 of the first scale 41 on the ruler 4 and the vernier 5. At the same time, the position of the aperture 18 is adjusted so that the light beam of the standard lamp is not blocked and is just projected onto the receiving surface of the instrument under test. The display values of the instrument under test are recorded twice, and the average of the two display values of the instrument under test is used as the calibration result.
[0056] It should be noted that the above embodiments merely represent preferred implementations of the present application, and while the descriptions are relatively specific and detailed, they should not be construed as limiting the present application. It should be noted that those skilled in the art may, without departing from the spirit of the present application, make various modifications and improvements, such as combining different features from the various embodiments, and all of these modifications and improvements should fall within the scope of protection of the present application.
Claims
1. A guide rail type illuminometer calibration device, characterized in that: The guide rail type illuminometer calibration equipment comprises: A support base, a first guide rail and a second guide rail provided on the support base, wherein the first guide rail and the second guide rail are arranged parallel to each other; a ruler arranged parallel to the first guide rail, the ruler having first scale marks arranged along its length, the ruler being arranged on the supporting base and located on a side of the first guide rail facing away from the second guide rail; A plurality of sliding carriages, each of the sliding carriages comprising a support plate and two first roller mechanisms and a second roller mechanism disposed below the support plate, the first roller mechanism being slidably supported on the first guide rail, the second roller mechanism being slidably supported on the second guide rail, the two first roller mechanisms and the second roller mechanism being correspondingly located at three corners of the same triangle; a vernier having a second scale facing the first scale, the vernier being slidably disposed on the support plate along the length direction of the scale and arranged facing and adjacent to the scale; The outer contours of the cross-sections of the first guide rail and the second guide rail are circular, the first roller mechanism includes a first inclined wheel and a second inclined wheel, the first inclined wheel is supported on the circumferential surface of the first guide rail at an angle relative to a vertical plane from a side of the first guide rail facing the second guide rail, and the second inclined wheel is supported on the circumferential surface of the first guide rail at an angle relative to a vertical plane from a side of the first guide rail facing away from the second guide rail, the axis of the first inclined wheel and the axis of the second inclined wheel are both perpendicular to the axis of the first guide rail, and the axes of the first inclined wheel and the second inclined wheel are arranged at an angle less than 180° to each other; the second roller mechanism includes an upright wheel, the upright wheel is supported on the second guide rail and is located directly above the axis of the second guide rail, the axis of the second guide rail is perpendicular to the axis of the second guide rail and is arranged in a horizontal direction; and a second limiting plate, wherein the limiting plate is a first limiting plate and a second limiting plate are provided for limiting the rotation of the second guide rail. The cam is secured to the first and second guide rails and has a pivotal portion for securing the second guide rail to the cam, the pivot portion being a portion of a second upper edge of the cam and the lower edge of the cam.
2. The guide rail type illuminometer calibration device according to claim 1, characterized in that: A plurality of roller adaptation stations are provided on the support plate, and each of the roller adaptation stations is optionally installed with the first roller mechanism or the second roller mechanism.
3. The guide rail type illuminometer calibration device according to claim 1, characterized in that: The first guide rail and the second guide rail are both hollow circular tubes. The support base is provided with a plurality of brackets arranged at intervals along the extension direction of the first guide rail and the second guide rail. The upper end of the bracket has a first support head and a second support head arranged at intervals. The first guide rail is detachably mounted on the first support head, and the second guide rail is detachably mounted on the second support head. The first support head and the second support head form a concave avoidance space.
4. The guide rail type illuminometer calibration device according to claim 3, characterized in that: The guide rail type illuminometer calibration device further comprises a plurality of support tubes passing through each of the brackets, and the support tubes and the first guide rail and the second guide rail are the same hollow circular tubes.
5. The guide rail type illuminometer calibration device according to any one of claims 1 to 4, characterized in that: The guide rail type illuminometer calibration equipment includes a standard light source installation module, a first calibration installation module, a second calibration installation module and a height comparison module. The standard light source installation module, the first calibration installation module, the second calibration installation module and the height comparison module are respectively installed on the support plate of any sliding trolley among multiple sliding trolleys. The standard light source installation module is used to install a standard light source, the first calibration installation module is used to install the illuminometer to be calibrated, and the second calibration installation module is used to install the probe of the illuminometer to be calibrated.
6. The guide rail type illuminometer calibration device according to claim 5, characterized in that: The standard light source installation module, the first calibration installation module, and the second calibration installation module all include a basic lifting support mechanism, the basic lifting support mechanism includes a stud threadedly connected to the support plate, the axis of the stud is arranged in the vertical direction, the basic lifting support mechanism also includes a first support platform, a second support platform, a third support platform and a rotating platform, the rotating platform can be rotatably installed on the third support platform around the vertical axis, the first support platform is installed on the top of the stud, the second support platform is installed on the first support platform through a leveling component, and the second support platform is installed with a horizontal displacement mechanism. The third support platform is installed on the horizontal displacement mechanism. The first calibration installation module also includes a swing guide groove and a U-shaped swing clamp block arranged on the corresponding rotating platform. A connecting column is provided at one end of the U-shaped swing clamp block, and the connecting column is swingably installed in the swing guide groove. The U-shaped swing clamp block forms a rectangular clamping groove for clamping the illuminance meter to be calibrated. The second calibration installation module also includes a mounting ring arranged on the corresponding rotating platform and three clamping claws connected to the mounting ring. The clamping head of each clamping claw extends into the inner ring of the mounting ring to clamp and fix the probe of the illuminance meter to be calibrated in the inner ring of the mounting ring.
7. The guide rail type illuminometer calibration device according to claim 5, characterized in that: The guide rail type illuminance meter calibration equipment also includes a plurality of aperture frames that can be selectively supported on the first guide rail and the second guide rail, each of the aperture frames is equipped with an aperture, the standard light source mounting module is located on one side of the plurality of aperture frames, and the first calibration mounting module, the second calibration mounting module and the height comparison module are located on the other side of the plurality of aperture frames.
Citation Information
Patent Citations
Illuminometer calibrating device
CN210198560U