CN214843431U - Photoelectric sampling device and meter - Google Patents

Photoelectric sampling device and meter Download PDF

Info

Publication number
CN214843431U
CN214843431U CN202121448897.6U CN202121448897U CN214843431U CN 214843431 U CN214843431 U CN 214843431U CN 202121448897 U CN202121448897 U CN 202121448897U CN 214843431 U CN214843431 U CN 214843431U
Authority
CN
China
Prior art keywords
light
light guide
sampling device
shading
receiver
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Active
Application number
CN202121448897.6U
Other languages
Chinese (zh)
Inventor
汉业朗
张燕斌
刘青
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Zhejiang Viewshine Intelligent Meter Co Ltd
Original Assignee
Zhejiang Viewshine Intelligent Meter Co Ltd
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Zhejiang Viewshine Intelligent Meter Co Ltd filed Critical Zhejiang Viewshine Intelligent Meter Co Ltd
Priority to CN202121448897.6U priority Critical patent/CN214843431U/en
Application granted granted Critical
Publication of CN214843431U publication Critical patent/CN214843431U/en
Active legal-status Critical Current
Anticipated expiration legal-status Critical

Links

Images

Landscapes

  • Photometry And Measurement Of Optical Pulse Characteristics (AREA)

Abstract

The utility model discloses a photoelectric sampling device and strapping table, photoelectric sampling device includes the leaded light spare, and the leaded light spare is including the light guide-in portion and a plurality of forked light guide-out portion that are equipped with the income plain noodles, and the light guide-out portion is equipped with the play plain noodles, and the play plain noodles with the income plain noodles is located the same one side of leaded light spare for send light source to income plain noodles optical emitter, the photoreceiver that is used for gathering the light signal on play plain noodles, the shading portion that sets up between leaded light spare and photoreceiver, it is equipped with the shading area and the light transmission area that correspond the play plain noodles, when shading portion is rotatory around its self, drive light transmission area and shading area pass through the play plain noodles in turn; the gauge comprises a photoelectric sampling device, wherein a basic gauge gear of the gauge drives a shading part to rotate around the gauge gear; this application is through setting up into light and light-emitting with one side, and the assembly is simple, and the reliability is higher, reduce cost.

Description

Photoelectric sampling device and meter
Technical Field
The utility model relates to a smart meter measures the field, especially relates to a photoelectric sampling device and strapping table.
Background
Along with the popularization of intelligent gas meters, higher requirements are provided for the reading accuracy of the intelligent gas meters and the performance of the gas meters, the reading value of a base meter counter needs to be obtained for the existing intelligent membrane type gas, wherein the roller of the base meter counter is added according to the used gas amount, and the roller counts one more when one unit amount is used, so that the gas amount is measured. The reading of the base meter counter generally has three modes of Hall signal acquisition, reed pipe signal acquisition or photoelectric direct-reading counter signal acquisition.
Wherein, adopt hall to get letter and tongue tube to get letter and all need set up a magnet steel on base table counter, then still need to correspond on the main control circuit board of sampling again and set up 2 groups hall receiver or tongue tube, when base table counter end character wheel rotated 1 circle, the main control board can detect the signal that the magnet steel passed through hall receiver or tongue tube to realize the conversion of count value. However, the two modes are easily interfered by an external magnetic field, so that the main control circuit board counts more or fails to count, and thus electricity utilization disputes are caused.
The method of using the photoelectric direct reading counter to access the signal mainly considers the problem of interference of the ambient light to the optical receiving end.
Chinese utility model patent CN201911239332.4 discloses "photoelectric sampling device, photoelectric sampling method and strapping table of a strapping table", the base table counter through the strapping table drives the carousel rotation, sets up shading portion and printing opacity portion on the carousel, and light receiver receives or can not receive the light that the light emitter sent through rotatory carousel, and wherein light receiver and light emitter adopt the mode of relative setting.
However, the light environment adopting the scheme is not closed, the problem that the light receiver has ambient light interference is not considered, and the photoelectric sampling method is to confirm the rotation number of the turntable through the first signal and the second signal output by the receiver, so that the starting point needs to be accurately known, and the measurement and the detection are not facilitated. And the master control board of the gas meter can not be detected to be abnormal when being detached. By adopting the optical receiver and the optical transmitter which are arranged oppositely, the optical transmitter and the optical receiver need to be respectively matched with peripheral devices, for example, two circuit boards need to be configured or the two circuit boards need to be connected through independent power signal wires, so that the installation and wiring of the whole meter are difficult, the maintenance is unchanged, and the cost is improved.
SUMMERY OF THE UTILITY MODEL
The utility model discloses an overcome not enough of above technique, provide a photoelectric sampling device and strapping table, adopt the light-emitting and the income light that the homonymy set up, the assembly is simple, and the reliability is higher, and reduce cost reduces external environment light and influences, and sampling sensitivity and precision are higher, reduce the power of light emitter.
The utility model overcomes the technical scheme that its technical problem adopted is:
the utility model discloses a first aspect provides a photoelectric sampling device, includes at least: the light guide part comprises a light input part provided with a light input surface and a plurality of branched light output parts, the light output parts are provided with light output surfaces, and the light output surfaces and the light input surface are positioned on the same side of the light guide part; the light emitter is arranged corresponding to the light inlet surface and used for emitting light to the light inlet surface; the optical receiver is arranged corresponding to the light emergent surface and used for collecting optical signals of the light emergent surface; the shading part is arranged between the light guide part and the light receiver, and is provided with a shading area and a light transmission area corresponding to the light emitting surface; when the shading part rotates around itself, the light transmitting area and the shading area are driven to alternately pass through the light-emitting surface.
Further, the optical transmitter and the optical receiver are integrated on the same circuit board.
The light incident surface and the light emergent surface are arranged on the same side, and the corresponding light emitter and the corresponding light receiver are also arranged on the same side, so that the light emitting device is simple to assemble and high in reliability.
Further, the light guide member includes a first light guide portion, one end of the first light guide portion is provided with a light incident surface, the other end of the first light guide portion is coupled to a proximal end of a second light guide portion, a distal end of the second light guide portion is divided into a plurality of branches in a radial shape, a light guide column is arranged at a tail end of each branch, and a free end face of the light guide column is a light emergent surface.
The light guide part adopts a bifurcation structure, and divides one path of light into multiple paths of light emitting, thereby saving light sources and reducing cost.
Furthermore, the light guide device further comprises a supporting part used for fixing and connecting the light guide part and the shading part, and through holes are formed in the positions, corresponding to the first light guide part, the light guide columns and the transmission rod, of the supporting part.
The supporting part can be an independent part and can also be fixedly connected with the shell of the character wheel of the base meter of the meter.
Furthermore, the light-shielding cover is covered on the supporting part and is provided with light through holes corresponding to the light emitter and the light receiver, and an annular flange is arranged around the light through holes.
Further, the annular flange surrounds and shields the optical transmitter and optical receiver when the light shield is assembled with the circuit board.
The light shield ensures that the whole light path is more closed, so that the light of the light emitter and the light receiver does not interfere with each other, and meanwhile, the light shield also ensures that the light shield is not interfered by external environment light. The function failure caused by the deposition of 5 such as dust in the external environment on the luminous receiving tube after long-time use can be prevented, the luminous intensity of the luminous tube can be reduced by sealing the darkroom environment, and the power consumption is reduced.
Further, the light transmission area is an arc-shaped long hole or a fan-shaped light transmission area which is arranged by taking the self axis of the shading part as the center, and when the shading part rotates by taking the self axis as the center, at least one light guide column is always kept in the light transmission area, and only one light guide column is arranged in the light transmission area when in a specific position.
Furthermore, the number of the light guide columns is 3, the light guide columns are distributed in an isosceles triangle shape, and the opening angle of the light transmission area relative to the central axis of the isosceles triangle is 187.5-262.5 degrees.
Furthermore, the number of the light guide columns is 4, the light guide columns are distributed in a quadrilateral mode, and the angle formed by the light transmission area relative to the center of a circle circumscribing the quadrilateral is 97.5-172.5 degrees.
The distribution of leaded light post and the regional angle setting of the circumcircle for leaded light post distribution figure of printing opacity guarantee that light receiver can gather a light signal at least, and the shading area then will guarantee that any angle can not shelter from all light receiver simultaneously, and 2 light receiver can be sheltered from to specific angle. The distribution of the light guide column and the angle setting of the light transmission area relative to the central axis of the shading part ensure that the light receiver can collect at least one light signal.
Furthermore, a transmission rod for driving the shading part to rotate is arranged at the bottom of the shading part.
The utility model discloses the second aspect is to provide a strapping table, disposes above-mentioned photoelectric sampling device, and the count output gear of strapping table drives photoelectric sampling device's shading portion is rotatory around its self.
The utility model has the advantages that:
1. the light emitting surface and the light incident surface are arranged on the same side, so that the installation and maintenance are simple, the reliability is higher, and the cost is reduced;
2. the light path adopts a totally-enclosed design, is not influenced by light rays of the external environment, can also ensure that the light receiver is not influenced by the light rays emitted by the light emitter, and can realize photoelectric sampling by reducing the power of the light emitter and reduce the power consumption;
3. the correlation type optical sampling structure has higher sampling sensitivity and precision;
4. a fork-type light guide structure is adopted to realize one light inlet and a plurality of light outlet light paths, so that light sources are saved, and the cost is reduced;
5. the meter reading is carried out through optical signal sampling, so that the problem of magnetic interference can be effectively reduced;
6. the light emitting of at least one light emitting surface can be collected through the arranged continuous light transmitting areas, the combination with the sampling coding and the sampling method can realize fault detection, and when the main control board is dismounted, the receiving tubes are not conducted, so that whether the main control board is abnormally dismounted can be judged.
Drawings
Fig. 1 is a schematic structural diagram of an embodiment of the photoelectric sampling apparatus of the present invention;
FIG. 2 is a schematic structural view of an embodiment of a light guide member of the photoelectric sampling apparatus of the present invention;
fig. 3 is a schematic structural diagram of a circuit board of the photoelectric sampling apparatus of the present invention;
FIG. 4 is a schematic structural diagram of an embodiment of a shading portion of the optoelectronic sampling device of the present invention;
fig. 5 is a schematic structural diagram of an embodiment of a light shield of the photoelectric sampling device of the present invention;
fig. 6 is a schematic structural diagram of an embodiment of a supporting portion of the photoelectric sampling apparatus of the present invention;
fig. 7 is a schematic view of a part of the structure of the photoelectric sampling apparatus according to the embodiment of the present invention;
fig. 8 is a partial structural sectional view of an embodiment of the optoelectronic sampling device of the present invention;
in the figure, 1-circuit board; 11-a light emitter; 12-an optical receiver; 2-a light shield; 21-light inlet through holes; 22-light-emitting through holes; 23-shading surface; 24-ring-shaped surrounding placket; 25-an annular flange; 3-a light guide; 31-a first light directing portion; 32-a second light directing portion; 33-a light guide; 4-a light-shielding portion; 41-light transmitting area; 42-a transmission rod; 5-a support part; 51-circular plane; 52-step extension face; 6-a counter; 7-gears.
Detailed Description
In order to facilitate better understanding of the present invention for those skilled in the art, the present invention will be described in further detail with reference to the accompanying drawings and specific embodiments, which are given by way of illustration only and thus do not limit the scope of the present invention.
As shown in fig. 1, a schematic structural diagram of an embodiment of the photoelectric sampling apparatus of the present invention includes a light guide member 3 as shown in fig. 2, including a first light guide portion 31, one end of the first light guide portion 31 is provided with a light incident surface, the other end is coupled to a proximal end of a second light guide portion 32, a distal end of the second light guide portion 32 is radially bifurcated into a plurality of branches, and a light guide column 33 is provided at an end of each branch, a free end surface of the light guide column 33 is a light emergent surface, and the light emergent surface and the light incident surface are located at the same side of the light guide member.
In an embodiment of the present invention, the light guide posts 33 are arranged in 3, which are distributed in an isosceles right triangle.
In some embodiments, the number of the light guide posts may also need to be adjusted according to the encoding precision or other requirements.
Further comprises an optical transmitter 11 and an optical receiver 12 as shown in fig. 3, in an embodiment of the present invention, the optical transmitter 11 and the optical receiver 12 are disposed on the circuit board 1 at the same side. The light emitter 11 is arranged corresponding to the light incident surface and used for emitting light to the light incident surface; and the optical receiver 12 is arranged corresponding to the light emergent surface and is used for collecting optical signals of the light emergent surface.
The light-shading structure further comprises a light-shading part 4 shown in fig. 4 and arranged above the light-emitting surface, wherein a light-shading area and a continuous light-transmitting area 41 are arranged on the light-shading part 4, and a transmission rod 42 for driving the light-shading part to rotate is further arranged at the bottom of the light-shading part. The light shielding part 4 is driven by the base meter of the meter to rotate, so that the light transmitting area 41 and the light shielding area are driven to alternately pass through the light emitting surface.
In some embodiments, the light guide columns 33 are arranged in 3 numbers, arranged in an isosceles triangle, and the opening angle of the light transmission region with respect to the outer center of the isosceles triangle is 187.5 ° to 262.5 °.
In some embodiments, the light guide posts 33 are arranged in 4 numbers, and are distributed in a quadrilateral shape, and the opening angle of the light transmission area relative to the circumscribed circle of the quadrilateral shape is 97.5-172.5 degrees, and the preferred angle is 135 degrees.
Wherein, the light transmission region sets up to arc slot hole or fan-shaped light transmission region with shading portion self axle as the center, and when shading portion used self axle as the center rotation, it was located to keep at least one leaded light post all the time the light transmission region is intra-area, and only one leaded light post was located when specific position the light transmission region is intra-area. Correspondingly, the shading area can not shade all the light guide columns at any position, and 2 light guide columns can be shaded at a specific position.
In an embodiment of the present invention, it is preferable that the light-transmitting region is a circular arc, the angle is 225 °, and the three light guide posts are distributed in an isosceles right angle shape.
In a preferred embodiment of the present invention, the light shielding cover 2 is further included, as shown in fig. 5, the light shielding cover 2 includes a light shielding surface 23 and an annular surrounding flap 24 extending from the edge of the light shielding surface 23 to one side, the light shielding surface 23 is provided with at least one light through hole, and a through hole is provided corresponding to the light emitter 11 and the light receiver 12, and an annular flange 25 is provided around the through hole. The annular flange completely shields the light emitter 11 and the light receiver 12 when the light shield 2 is mounted with the circuit board 1.
In some embodiments of the present invention, the light emitter and the light receiver may be separated by a partition plate, so that they do not relate to each other.
In some embodiments, a support portion 5 is further included as shown in fig. 6, for fixing and connecting the light guide member 3 and the light shielding portion 4, and the support portion 5 is provided with a through hole corresponding to the first light guide portion 31, the light guide pillar 33 and the transmission rod 42, and at least a part of the shape of the through hole is matched with the annular surrounding flap 24 of the light shield 2. The support portion 5 includes a circular plane 51 fitted with the light shielding portion 4 and a step extension surface 52 connected to a part of the edge of the circular plane 51. The circular plane 51 is provided with through holes corresponding to the positions of the light guide pole 33 and the transmission rod 42, and the step extension surface 52 is provided with through holes corresponding to the positions of the light emergent surface.
In some embodiments, the support portion may be integrally formed with the base-case housing of the meter. In order to make the light path of leaded light spare transmission more stable, the gap is not left as far as possible in the installation between leaded light spare and the supporting part, can fill through gluing or other materials, perhaps fixed connection between supporting part and the leaded light spare, can not the split.
As shown in fig. 7 and fig. 8, it is respectively the schematic view of the partial structure installation and the partial structure sectional view of the embodiment of the photoelectric sampling device of the present invention, the contact installation of the light shield and the circuit board, the light shield inner cavity sequentially set the light shield, the support portion 5 and the light guide member 3. The transmission rod 42 penetrates through the through hole of the support part 5 corresponding to the transmission rod 42 from top to bottom, the first light guide part 31 of the light guide member 3 penetrates through the through hole of the support part 6 corresponding to the first light guide part 31 from bottom to top, and the light guide column 33 of the light guide member 3 penetrates through the through hole of the light guide column 33 corresponding to the support part 5 from bottom to top, but the height of the penetrated light guide column 33 is not more than the height of the light shielding part.
When the last print wheel of the counter of the meter in fig. 1 rotates 1 revolution, the output gear drives the corresponding gear 7 shown in fig. 8 to rotate, thereby driving the transmission rod 42 to rotate. Thereby rotating the light shielding portion 4. The shading part 4 can collect at least any light in the light guide column 33 in the rotating process, and the meter main control board comprises a light emitter 11 and a light receiver 12, wherein the light emitter 11 is a light emitting diode, and the light receiver 12 is a photoelectric receiving tube. The MCU of the meter main control board controls the light emitting diode to emit light at certain intervals and frequency, and the light guide column 33 is subjected to photoelectric sampling through the meter main control board, because the light emitting surface of the light guide column 33 can be shielded by the shielding part 4, or the light transmitting area 41 is not shielded. The MCU of main control board reads the reading of strapping table through gathering 3 leaded light post 33's code.
The utility model discloses a pair of strapping table, including above-mentioned photoelectric sampling device, the basic table count output gear of strapping table drives photoelectric sampling device's shading portion rich in its self rotation.
The embodiment of the utility model provides an only use the diaphragm type gas table as the example, in any kind of strapping tables such as gas table, water gauge, calorimeter can also be applied to this scheme.
The utility model discloses an in the embodiment, the light emitter is emitting diode and sets up to 1, and the light receiver is the photoelectric receiving tube and sets up to 3, and MCU control emitting diode on the circuit board switches on to emitting light source is to going into the plain noodles. The shading area and the light transmission area of the shading part pass through the upper parts of the 3 light guide columns alternately under the driving of the tail character wheel of the counter, so that the light emergent surface corresponding to the photoelectric receiving tube is shaded by the shading part or transmits light through the light transmission area. Under the condition that the light-emitting surface is shielded, the optical signal code of the light-emitting surface collected by the photoelectric receiving tube is 0, and under the condition that the light-emitting surface is not shielded, the optical signal code of the light-emitting surface collected by the photoelectric receiving tube is 1.
In an embodiment of the present invention, 3 light emitting diodes correspond to 3 light emitting surfaces, and the light transmission region is a 225 ° arc shape with the transmission rod as a center of circle and is correspondingly disposed above the light emitting surface. And the last character wheel of the counter rotates for a circle, and the code value acquired at the later stage is preset to be 100- >101- >001- >011- >111- >110 at each interval. The rotation direction of the last character wheel can be judged through the change value of the codes.
The utility model discloses an embodiment, if under the circumstances of normal work, the condition that the coded value is 000 can not appear, if this kind of condition appears, can think that the main control board of strapping table is pulled down, and all photoelectric receiving tube can't receive the light that emitting diode sent, consequently judge the trouble that photoelectric sampling device appears.
Taking a civil diaphragm gas meter as an example, the maximum flow rate of the gas meter is 6 square meters per hour, so that 6 seconds are needed for each rotation of the last character wheel by 1 circle, the time for each digit of the last character wheel to appear is 600ms, and the scanning period is set to be less than 600ms, namely, the code of each digit can be read. However, since the counting mode does not need to accurately know the position of the numerical value, only the change value needs to be accurately read when the code changes every time, namely, the scanning period is shorter than the time required by the character wheel rotating by 90 degrees. The maximum preset interval time may be set to 1.5 seconds, i.e., the preset period maximum is 1.5 s.
The foregoing has described only the basic principles and preferred embodiments of the present invention and numerous changes and modifications may be made by those skilled in the art in light of the above teachings and shall fall within the scope of the present invention.

Claims (10)

1. An optoelectronic sampling device, comprising at least:
the light guide part comprises a light input part provided with a light input surface and a plurality of branched light output parts, the light output parts are provided with light output surfaces, and the light output surfaces and the light input surface are positioned on the same side of the light guide part;
the light emitter is arranged corresponding to the light inlet surface and used for emitting light to the light inlet surface; the optical receiver is arranged corresponding to the light emergent surface and used for collecting optical signals of the light emergent surface;
the shading part is arranged between the light guide part and the light receiver, and is provided with a shading area and a light transmission area corresponding to the light emitting surface; when the shading part rotates around the central axis of the shading part, the light transmitting area and the shading area are driven to alternately pass through the light emitting surface.
2. The optoelectronic sampling device of claim 1, wherein the optical transmitter and the optical receiver are integrated on the same circuit board.
3. The optical-electrical sampling device according to claim 1, wherein the light guide member includes a first light guide portion, one end of the first light guide portion is provided with a light incident surface, the other end of the first light guide portion is coupled to a proximal end of a second light guide portion, a distal end of the second light guide portion is branched into a plurality of branches in a radial shape, a light guide pillar is disposed at a terminal of each branch, and a free end surface of the light guide pillar is a light emitting surface.
4. The optoelectronic sampling device of claim 1, further comprising a support portion for fixing and connecting the light guide member and the light shielding portion, wherein the support portion has a through hole corresponding to the first light guide portion, the light guide pillar, and the transmission rod.
5. The optoelectronic sampling device of claim 4, further comprising a light shield covering the support portion and having light through holes corresponding to the light emitter and the light receiver, wherein an annular flange is disposed around the light through holes, and the annular flange surrounds and shields the light emitter and the light receiver when the light shield is assembled with the circuit board.
6. The optoelectronic sampling device of any one of claims 1-5, wherein the light-transmitting region is configured as an arc-shaped long hole or a fan-shaped light-transmitting region centered on the self-axis of the light-shielding part, and when the light-shielding part rotates centered on the self-axis, at least one light-guiding rod is always kept in the light-transmitting region, and only one light-guiding rod is in the light-transmitting region at a specific position.
7. The optical-electrical sampling device according to claim 6, wherein the number of the light guide posts is 3, the light guide posts are distributed in an isosceles triangle, and the light transmission area is arranged at an angle of 187.5 ° to 262.5 ° with respect to the outer center of the isosceles triangle.
8. The photoelectric sampling device of claim 6, wherein the number of the light guide columns is 4, the light guide columns are distributed in a quadrilateral manner, and the opening angle of the light transmission area relative to the center of a circle circumscribing the quadrilateral is 97.5-172.5 degrees.
9. The optoelectronic sampling device of claim 1, wherein the bottom of the light shielding portion is provided with a transmission rod for driving the light shielding portion to rotate.
10. A meter provided with an optoelectronic sampling device as claimed in any one of claims 1 to 9, wherein a base-case wheel of the meter rotates the light shielding portion of the optoelectronic sampling device around itself.
CN202121448897.6U 2021-06-25 2021-06-25 Photoelectric sampling device and meter Active CN214843431U (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
CN202121448897.6U CN214843431U (en) 2021-06-25 2021-06-25 Photoelectric sampling device and meter

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
CN202121448897.6U CN214843431U (en) 2021-06-25 2021-06-25 Photoelectric sampling device and meter

Publications (1)

Publication Number Publication Date
CN214843431U true CN214843431U (en) 2021-11-23

Family

ID=78810961

Family Applications (1)

Application Number Title Priority Date Filing Date
CN202121448897.6U Active CN214843431U (en) 2021-06-25 2021-06-25 Photoelectric sampling device and meter

Country Status (1)

Country Link
CN (1) CN214843431U (en)

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN113340362A (en) * 2021-06-25 2021-09-03 浙江威星智能仪表股份有限公司 Photoelectric sampling device, metering gauge and photoelectric sampling method

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN113340362A (en) * 2021-06-25 2021-09-03 浙江威星智能仪表股份有限公司 Photoelectric sampling device, metering gauge and photoelectric sampling method

Similar Documents

Publication Publication Date Title
US4728950A (en) Magnetic sensor apparatus for remotely monitoring a utility meter or the like
US4645357A (en) Electroptical detector for determining the position of the time display mechanism of a timepiece
CN214843431U (en) Photoelectric sampling device and meter
CN101308550B (en) Counting digit wheel radial transmitting photoelectric direct-reading apparatus of long distance transmitting meter
KR200323744Y1 (en) Apparatus for counting the rotation number of a numeric wheel of a meter for a remote metering system
CN111121890A (en) Photoelectric sampling device and method for meter and meter
CN1945218B (en) Coder for remote transmitting direct reading water meter
CN106679753B (en) Water meter sensor
CN106650908B (en) Axial reflection type photoelectric direct-reading device
EP0179918A1 (en) Optical rotary encoder
CN214843430U (en) Photoelectric sampling device and meter
US4780600A (en) Optical displacement transducer
WO2005064563A1 (en) Automatic meter reading method and apparatus using pattern analysis for levels of output signals from multiple photoelectric sensors
CN113340362A (en) Photoelectric sampling device, metering gauge and photoelectric sampling method
CN113503932A (en) Photoelectric sampling device, metering gauge and photoelectric sampling method
CN101451870B (en) Counter based on photoelectric sending and receiving sensor and implementing method thereof
US4658132A (en) Rotational angle detecting device with full circumference illumination and detection
CN209027671U (en) A kind of real-time light intensity test device of photoelectric encoder
CN212482604U (en) High-precision photoelectric coding counter assembly
CN200962039Y (en) Encoder for remote direct reading water meter
CN215067400U (en) Bifurcated light guide part and bifurcated light guide structure
CN101865703A (en) Coding counter of remote transmission instrument
CN214843429U (en) Photoelectric sampling lens hood and photoelectric sampling device
CN110132327B (en) Photoelectric encoder
WO1986006529A1 (en) Apparatus for converting analog meter indications to electrical signals

Legal Events

Date Code Title Description
GR01 Patent grant
GR01 Patent grant