WO2009093317A1 - Elevator system, and floor arrival position detecting device for use in the system - Google Patents
Elevator system, and floor arrival position detecting device for use in the system Download PDFInfo
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- WO2009093317A1 WO2009093317A1 PCT/JP2008/050946 JP2008050946W WO2009093317A1 WO 2009093317 A1 WO2009093317 A1 WO 2009093317A1 JP 2008050946 W JP2008050946 W JP 2008050946W WO 2009093317 A1 WO2009093317 A1 WO 2009093317A1
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- landing
- car
- sill
- detection plate
- detection
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B66—HOISTING; LIFTING; HAULING
- B66B—ELEVATORS; ESCALATORS OR MOVING WALKWAYS
- B66B1/00—Control systems of elevators in general
- B66B1/34—Details, e.g. call counting devices, data transmission from car to control system, devices giving information to the control system
- B66B1/36—Means for stopping the cars, cages, or skips at predetermined levels
- B66B1/40—Means for stopping the cars, cages, or skips at predetermined levels and for correct levelling at landings
Definitions
- the present invention relates to an elevator system, and more particularly to a technique for detecting the landing position of an elevator car and landing control.
- Patent Document 1 in order to correct the car position based on the absolute position of the detection plate, even if slip occurs between the main rope that suspends the car and the driving sheave around which the main rope is wound, The effect that the car position can be accurately corrected is described. That is, even if the amount of movement of the main rope (cage) does not correspond to the output of the encoder that detects the rotation angle of the driving sheave, the above-described correction can achieve good landing accuracy.
- Patent Document 1 has a problem that the car position cannot be corrected accurately unless the absolute position of the detection plate is accurate.
- the mounting error of the detection plate appears as it is as a landing error (step difference between the landing floor surface of the target floor and the car floor surface). Therefore, at the time of installing the elevator, the engineer has to attach the detection plate with high accuracy to the regular mounting position set with reference to the landing floor surface (upper surface of the landing sill) of each floor.
- the engineer performs positioning while moving the detection plate up and down in a narrow space formed between the car and the hoistway wall surface, and fixes the detection plate to the hoistway fixing body such as the hoistway wall surface. There must be. For this reason, much time and labor are required for the position adjustment work and the fixing work of the detection plate.
- the mounting error of the detection plate (for example, differential distance data between the center position of the detection plate and the actual landing position of the car) is measured in advance, and the mounting error is also taken into consideration.
- a device that corrects the current car position has also been proposed (see, for example, Patent Document 2). According to such a configuration, the detection plate mounting error does not appear as a landing error as it is, so that it is not necessary to mount the detection plate with high accuracy. For this reason, it becomes possible to reduce the burden on the engineer when mounting the detection plate without deteriorating the landing accuracy.
- the present invention has been made to solve the above-mentioned problems, and its purpose is to increase the landing accuracy of the elevator car and to greatly reduce the burden on the technician required when installing the elevator. It is an object of the present invention to provide an elevator system that can be reduced, and a landing position detection device used therefor.
- a landing position detection apparatus is a landing position detection apparatus for detecting a landing position of an elevator car, and is provided on the car and guides a moving direction of the car door; Is provided in the hall to guide the moving direction of the hall door, and a predetermined slewing hole is formed in the longitudinal direction of the car, and the cage is provided so as to face each other with the boarding sill in plan view.
- An elevator system is an elevator system using the landing position detection device described above, and is provided on a detection plate provided on a hoistway fixing body and a car so as to correspond to each landing.
- Plate detection means for detecting the detection plate when placed at a predetermined height
- car position detector for detecting car position data corresponding to the movement displacement of the car
- a car when the plate detection means detects the detection plate
- a detection plate mounting error calculation unit for calculating a detection plate mounting error, and a detection plate calculated by the detection plate mounting error calculation unit.
- a landing correction unit that corrects the landing position so that the height of the upper surface of the car sill at the time of landing coincides with the height of the upper surface of the landing sill provided at the landing on the destination floor.
- FIG. 1 It is a block diagram which shows the elevator system in Embodiment 1 of this invention. It is a principal part side view which shows the landing state of the elevator system shown in FIG. It is a principal part perspective view of the elevator system shown in FIG. It is a flowchart which shows operation
- FIG. 1 is a block diagram showing an elevator system according to Embodiment 1 of the present invention.
- 1 is an elevator hoistway
- 2 is a car that moves up and down in the hoistway
- 3 is a counterweight that moves up and down in the hoistway 1 in the opposite direction to the car 2
- 4 is a car 2 and a counterweight 3.
- It is the main rope suspended in a fishing bottle type.
- 5 is a driving sheave around which a part of the main rope 4 is wound
- 6 is a motor for driving the driving sheave 5. That is, in this type of elevator, the car 6 linked to the main rope 4 is raised and lowered in the hoistway 1 by rotating the driving sheave 5 by the motor 6 and moving the main rope 4.
- Reference numeral 7 denotes an encoder provided on the rotating shaft of the motor 6.
- the encoder 7 is directly connected to the rotation shaft of the motor 6 and outputs a pulse corresponding to the rotation angle (rotational displacement) of the rotation shaft.
- the car 2 and the fixed body of the hoistway 1 are provided with plate position detection devices.
- This plate position detection device is configured by, for example, a detection plate 8 provided on a hoistway fixing body such as a hoistway wall 1a and plate detection means 9 provided on the upper portion of the car 2 to constitute a main part thereof. .
- the detection plate 8 is provided corresponding to the landing on each floor.
- Each detection plate 8 is made of, for example, a plate-like member having a predetermined length in the vertical direction, and is positioned with a corresponding floor surface (an upper surface of a landing sill 15 described later) as a reference for its height. . That is, the detection plate 8 is disposed above or below a predetermined distance from the height of the corresponding landing floor.
- the plate detection means 9 has a detection unit for detecting the presence of the detection plate 8 and determines whether or not the detection plate 8 can be recognized by the detection unit at the current position of the car 2.
- the plate detection means 9 is configured to detect the detection plate 8 when the car 2 is arranged at a predetermined height.
- the detection position of the detection unit is the same height as the detection plate 8. Is detected, the presence of the detection plate 8 is detected.
- the car 2 and each elevator hall are provided with a landing position detection device 10 that detects whether the car 2 is stopped at an appropriate landing position when the car 2 is landing.
- a landing position detection device 10 that detects whether the car 2 is stopped at an appropriate landing position when the car 2 is landing.
- or FIG. 3 the specific structure and function of the said landing position detection apparatus 10 are demonstrated.
- 2 is a main part side view showing the landing state of the elevator system shown in FIG. 1
- FIG. 3 is a main part perspective view of the elevator system shown in FIG.
- FIG. 3 corresponds to an enlarged view of part A in FIG.
- reference numeral 11 denotes a car floor whose upper surface forms a car floor 11a
- 12 is a car sill that guides the moving direction of the lower end of the car door 13 when the car door 13 is opened and closed.
- the car floor 11 and the car sill 12 are supported by a platform 14 and are arranged such that the upper surfaces (that is, the upper surface of the car floor 11a and the car sill 12) are flush with each other.
- Reference numeral 15 denotes a landing threshold that guides the moving direction of the lower end of the landing door 16 when the landing door 16 is opened and closed.
- This landing sill 15 is supported by a building frame of the landing, and is arranged so that its upper surface is flush with the landing floor 17.
- the landing position detection device 10 has a predetermined level difference (amount of deviation in the height direction) between the upper surface of the car sill 12 and the upper surface of the landing sill 15 of the landing when the car 2 is landed on a certain landing. It is detected whether it is within the allowable range.
- the upper surface of the car sill 12 is flush with the car floor 11a, and the upper surface of the landing sill 15 is flush with the landing floor 17, so that the upper surfaces of the car sill 12 and the landing sill 15 are as follows.
- step difference which arises in between is equivalent to the level
- the landing position detection apparatus 10 is configured by the landing sill 15 having a predetermined through hole 18 and the light emitting device 19 and the light receiving device 20 provided in the car 2.
- the through-hole 18 is formed so that its axial direction coincides with the longitudinal direction of the landing sill 15, and one side thereof opens to one end surface of the landing sill 15 and the other side opens to the other end surface of the landing sill 15.
- FIG. 3 shows an example in which the joint member 21 is fixed to the car sill 12.
- the light-emitting device 19 and the light-receiving device 20 are disposed at the same height, and are disposed on both longitudinal sides of the landing sill 15 so as to face each other with the planar silling sill 15 interposed therebetween. That is, the light emitting device 19 is disposed so as to face one end surface of the planar view hall sill 15, and the light receiving device 20 is disposed so as to face the other end surface of the plan view landing sill 15.
- the light emitting device 19 and the light receiving device 20 are arranged at the same height with respect to the upper surface of the car sill 12, and the arrangement of the car 2 in the depth direction (Y direction in FIG. 3) is a plan view of the car sill 12. It is set with reference to an end face (hereinafter referred to as “front end face”) facing the landing threshold 15.
- the landing position detection device 10 In the landing position detection device 10 having the above-described configuration, when the car 2 is stopped so that the upper surface of the car sill 12 is flush with the upper surface of the landing sill 15, the light emitted from the light emitting device 19 is emitted. The light is received by the light receiving device 20 through the through hole 18. Then, the landing position detection device 10 (the landing position detection means) detects the landing position of the car 2 based on the light receiving state of the light receiving device 20, that is, the upper surface of the car sill 12 and the landing of the landing. It is determined whether or not the level difference between the upper surface of the threshold 15 is within a predetermined allowable range. The above is the main mechanical device in this elevator system.
- the elevator system includes a speed control unit 22, a speed command generation unit 23, a detection plate attachment error calculation unit 24, and a storage unit 25 for detection plate attachment error learning.
- the speed control unit 22 has a function of appropriately controlling the motor 6 based on the current speed of the car 2 and the input speed command.
- the speed control unit 22 is provided with a speed converter 26 for obtaining the current speed of the car 2. Specifically, the speed converter 26 outputs a speed signal of the motor 6 based on the position information from the encoder 7. Then, the speed controller 27 and the torque controller 28 output a torque command to the motor 6 so that the speed signal of the motor 6 follows the speed signal (speed command) to the landing on the target floor.
- the speed signal (speed command) to the landing on the destination floor is output from the speed command generator 23.
- speed command generator 23 there are two types of speed commands output from the speed command generator 23, and when the changeover switch 29 is operated by a command switching signal from the speed command generator 23, the two One speed command is selected from the inside and input to the speed control unit 22.
- the detection plate attachment error calculation unit 24 has a function of calculating the attachment error of the detection plate 8.
- the detection plate 8 is attached by a technician based on the height of the upper surface of the landing threshold 15 when the elevator is installed.
- the engineer must perform the mounting operation of the detection plate 8 in a narrow space. For this reason, in the elevator system of this invention, the high installation precision with respect to the detection plate 8 is not requested
- the detection plate attachment error calculation unit 24 calculates the attachment error of each detection plate 8 caused by such a reason.
- the detection plate attachment error calculation unit 24 outputs an output signal from the plate position detection device (detection timing signal 1 shown in FIG. 1), and an output signal from the landing position detection device 10 (detection timing signal shown in FIG. 1). 2)
- the mounting error of each detection plate 8 is calculated based on the car position data. That is, the detection plate mounting error calculation unit 24 receives the car position data when the plate detection means 9 detects the detection plate 8 and the light received by the light receiving device 20 after the light emitted from the light emitting device 19 passes through the through hole 18. The mounting error is calculated based on the car position data at the time.
- the first car position data holding unit 30 stores car position data when the plate detecting means 9 detects the detection plate 8, that is, when the detection timing signal 1 is inputted.
- the second car position data holding unit 31 car position data when a light beam emitted from the light emitting device 19 passes through the through hole 18 and is received by the light receiving device 20, that is, when a detection timing signal 2 is input. Is memorized.
- the car position data is detected by the car position detector 32.
- the car position detector 32 obtains the movement displacement of the car 2 by measuring the pulse output from the encoder 7 and outputs car position data corresponding to the movement displacement of the car 2.
- the computing unit 33 calculates the difference between the car position data stored in the first car position data holding unit 30 and the car position data stored in the second car position data holding unit 31 for each floor. .
- the difference calculated in this way that is, the mounting error of the detection plate 8 is associated with the landing corresponding to the detection plate 8 and stored in the storage unit 25. That is, the storage unit 25 stores the attachment error of the detection plate 8 for each floor.
- the speed command generation unit 23 described above has a function of outputting a speed command in consideration of an attachment error of each detection plate 8. For example, the target floor, a command mode described later, car position data from the car position detector 32, Based on various input information such as an output signal from the plate position detection device and an attachment error of each detection plate 8 stored in the storage unit 25, an appropriate speed command corresponding to the mode is output. Specifically, the speed command generation unit 23 calculates the travel distance of the car 2 based on the car position data, and the distance until the car 2 arrives at the landing position of the landing on the destination floor. A remaining distance calculation unit 35 for calculating (remaining distance) and a landing correction control unit 36 for correcting the landing position based on the mounting error of the detection plate 8 are provided.
- FIG. 4 is a flowchart showing the operation of the elevator system according to Embodiment 1 of the present invention, and shows an example of the operation during the learning travel.
- the traveling is continued in the state as it is (S104).
- the detection timing signal 1 is output from the plate position detection device.
- the detection plate mounting error calculation unit 24 when the detection timing signal 1 is input from the plate position detection device, the car position data at that time (for example, the pulse integrated value of the encoder 7) is converted into the first car position data holding unit 30. (S106).
- the car 2 After the detection of the detection plate 8 by the plate detection means 9, the car 2 continues to travel upward (S107), and then the light emitted from the light emitting device 19 is received by the light receiving device 20 (S108). Yes). That is, when the car 2 reaches a height at which the upper surface of the car sill 12 and the upper surface of the landing sill 15 provided at the first landing (the lowest floor landing) are flush with each other, the light is emitted from the light emitting device 19. The emitted light passes through the through hole 18 of the landing sill 15 and enters the light receiving device 20.
- the detection timing signal 2 is output from the landing position detecting device 10.
- the detection plate mounting error calculation unit 24 holds the car position data (for example, the pulse integrated value of the encoder 7) at that time as the second car position data. Store in the unit 31 (S109).
- the detection plate mounting error calculation unit 24 calculates the mounting error of the detection plate 8 from the difference between the car position data acquired in S106 and the car position data acquired in S109, and the calculation result and the floor number are calculated.
- the data are stored in the storage unit 25 in association with each other (S110). Then, the operations from S103 to S110 are repeated until the car 2 reaches the top floor (S111), and the mounting error of the detection plate 8 of each floor is stored in the storage unit 25.
- FIG. 5 is a diagram showing a speed pattern during landing control of the elevator system shown in FIG.
- the speed command generation unit 23 detects the destination floor detection plate 8 by the plate detection means 9 while the car 2 is traveling with the landing position of the destination floor landing as a target.
- the upper surface height of the car sill 12 at the time of landing coincides with the upper surface height of the landing sill 15 provided at the landing on the destination floor. Correct the position.
- the car travel distance calculation unit 34 determines the travel amount of ropes (for example, the main rope 4 and the governor rope) that move in conjunction with the travel of the car 2 based on the output of the encoder 7. Calculated as mileage.
- the remaining distance calculating unit 35 calculates the remaining distance to the landing position of the landing on the destination floor based on the traveling distance of the car 2 calculated by the car traveling distance calculating unit 34.
- the landing correction control unit 36 corrects the remaining distance calculated by the remaining distance calculation unit 35 based on the mounting error of the detection plate 8 at the landing stored in the storage unit 25, and based on the correction result. Outputs speed command.
- the landing position of the destination floor is corrected in consideration of the mounting error of the detection plate 8, so that the landing accuracy of the car 2 can be improved. it can. That is, the mounting error of the detection plate 8 does not appear as it is as a floor step at the time of landing.
- the accurate landing position can be automatically detected by the landing position detection device 10. It should be noted that no particularly difficult work is required when installing the landing sill 15, the light emitting device 19, and the light receiving device 20 that constitute the main part of the landing position detecting device 10. That is, since the light emitting device 19 and the light receiving device 20 are installed in the car 2, it can be easily attached to the car sill 12 or the platform 14 by using a jig or performing appropriate dimension management. . In particular, since the light emitting device 19 and the light receiving device 20 are positioned with respect to the car sill 12, the configuration and the position adjustment work can be further simplified by fixing them to the car sill 12 through the joint member 21. Is possible. Further, the landing sill 15 is conventionally arranged such that its upper surface is flush with the landing floor 17 and can be installed by the same work as before.
- FIG. FIG. 6 is a perspective view showing a main part of an elevator system according to Embodiment 2 of the present invention.
- FIG. 6 corresponds to an enlarged view of part A in the second embodiment.
- the landing sill 15 is provided with a convex portion 37 having a predetermined width projecting toward the car sill 12 on an end surface (hereinafter referred to as “front end surface”) facing the car sill 12 in plan view.
- the car sill 12 has a recess 38 corresponding to the protrusion 37 on the front end surface thereof.
- a predetermined through hole (not shown) is formed in the convex portion 37 provided on the landing threshold 15.
- This through hole formed in the convex portion 37 is formed in a straight line and horizontally along the longitudinal direction of the landing sill 15, one side of which is one side of the convex portion 37, and the other side is the other side of the convex portion 37. Open to the side.
- the concave portion 38 formed in the car sill 12 has a groove shape formed in the ascending / descending direction of the car 2 and has a predetermined width larger than that of the convex portion 37. That is, the convex portion 37 is disposed in the U-shape of the concave portion 38 so that the main portion thereof is opposed to the concave portion 38 with a slight gap in plan view. Therefore, when the car 2 passes through the landing, the convex portion 37 passes through the U-shape (inside the groove) of the concave portion 38 without contacting the car sill 12.
- Reference numeral 39 denotes a light emitting device of the landing position detection device 10
- reference numeral 40 denotes a light receiving device of the landing position detection device 10.
- the light emitting device 39 and the light receiving device 40 are provided inside or below the car sill 12.
- the light-emitting device 39 and the light-receiving device 40 are arranged at the same height, and are arranged on both sides of the concave portion 38 so as to face each other with the convex portion 37 interposed therebetween in plan view.
- the light receiving device 40 is configured to receive light through a through hole formed in the convex portion 37. Other configurations and operations are the same as those in the first embodiment.
- the light emitting device 39 and the light receiving device 40 are provided inside or below the car sill 12, it is possible to provide a compact landing position detecting device 10 having excellent space efficiency. It becomes. That is, it is not necessary to arrange the light emitting device 39 and the light receiving device 40 in a narrow space provided between the car 2 and the hoistway wall 1a as in the first embodiment, and effectively use the space in the hoistway 1. Will be able to.
- the light receiving device 40 when the light receiving device 40 is arranged inside the car sill 12, the light receiving device 40 can be covered by the car sill 12, so that an effect of reducing the influence of disturbance light can be expected.
- the distance between the light emitting device 39 and the light receiving device 40 can be shortened. .
- the optical axis can be easily adjusted, and the mounting property can be further improved.
- Other effects are the same as those of the first embodiment.
- FIG. 7 is a perspective view showing a main part of an elevator system according to Embodiment 3 of the present invention.
- FIG. 7 corresponds to an enlarged view of part A in the third embodiment.
- the through-hole 41 formed in the longitudinal direction of the landing sill 15 has a width in the depth direction of the car 2 (Y direction in FIG. 7), the opening facing the light emitting device 19 rather than the vertical width.
- Others have the same configuration as in the first embodiment.
- Embodiment 3 of the present invention even if the positions of the car sill 12 and the landing sill 15 are shifted in the depth direction of the car 2 (Y direction in FIG. 7) for some reason, When the upper surfaces of the landing sill 15 are arranged at the same height, the light emitted from the light emitting device 19 can be received by the light receiving device 20.
- the landing position detecting device 10 Even when the car floor surface 11a is inclined due to the unbalanced load of the passengers in the car 2 and the positional deviation in the Y direction occurs between the car sill 12 and the landing sill 15, the landing position detecting device 10 There is no loss of functionality. Further, even if the mounting accuracy in the Y direction of the light emitting device 19 and the light receiving device 20 is relaxed, the same effect as in the first embodiment can be expected.
- the elevator system and landing position detection apparatus according to the present invention can be applied to all types of elevators, and the above-described effects can be expected.
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Abstract
Description
特許文献1には、検出プレートの絶対位置を基準にかご位置を補正するため、かごを懸架する主ロープとこの主ロープが巻き掛けられた駆動綱車との間に滑りが発生しても、かご位置を正確に補正することができる旨の効果が記載されている。即ち、主ロープ(かご)の移動量が、駆動綱車の回転角度を検出するエンコーダの出力と対応しなくなっても、上記補正によって良好な着床精度を実現することができる。 For example, as a conventional technique, a detection plate is attached to the hoistway wall surface with respect to the elevator hall height, and this detection plate is detected by a detector provided in the car, so that the absolute position of the detection plate is used as a reference. The one that corrects the car position has been proposed (see Patent Document 1).
In
かかる構成によれば、検出プレートの取付誤差がそのまま着床誤差として現れることはないため、検出プレートを精度良く取り付ける必要がなくなる。このため、着床精度を悪化させることなく、検出プレート取付時の技術者の負担を軽減させることができるようになる。 Further, as another conventional technique, the mounting error of the detection plate (for example, differential distance data between the center position of the detection plate and the actual landing position of the car) is measured in advance, and the mounting error is also taken into consideration. A device that corrects the current car position has also been proposed (see, for example, Patent Document 2).
According to such a configuration, the detection plate mounting error does not appear as a landing error as it is, so that it is not necessary to mount the detection plate with high accuracy. For this reason, it becomes possible to reduce the burden on the engineer when mounting the detection plate without deteriorating the landing accuracy.
更に、検出プレートの取付誤差の測定は専門の技術者によって行われるものの、人為的作業によるものであるため、測定ミスの発生は回避できないといった問題もあった。 However, in the thing of patent document 2, the operation | work which measures correctly the attachment error of a detection plate at the time of installation of an elevator is needed for an engineer. In particular, when an elevator is installed in a high-rise building, the number of detection plates for detecting an installation error is large, and there is a problem that the work load on the engineer who performs the measurement becomes extremely high. In high-rise buildings and the like, there are not a few buildings in which a plurality of elevators operate in one building. In such a case, the above measurement work is required for each elevator.
Furthermore, although the measurement of the mounting error of the detection plate is performed by a professional engineer, it is due to human work, so that there is a problem that the occurrence of a measurement error cannot be avoided.
5 駆動綱車、 6 モータ、 7 エンコーダ、 8 検出プレート、
9 プレート検出手段、 10 着床位置検出装置、 11 かご床、
11a かご床面、 12 かご敷居、 13 かごドア、 14 プラット、
15 乗場敷居、 16 乗場ドア、 17 乗場床面、 18 貫通孔、
19 発光装置、 20 受光装置、 21 継手部材、 22 速度制御部、
23 速度指令発生部、 24 検出プレート取付誤差算出部、 25 記憶部、
26 速度変換器、 27 速度制御器、 28 トルク制御器、
29 切替スイッチ、 30 第1かご位置データ保持部、
31 第2かご位置データ保持部、 32 かご位置検出器、 33 演算器、
34 かご走行距離算出部、 35 残距離算出部、 36 着床補正制御部、
37 凸部、 38 凹部、 39 発光装置、 40 受光装置、 41 貫通孔 1 hoistway, 1a hoistway wall, 2 cage, 3 counterweight, 4 main rope,
5 Drive sheave, 6 Motor, 7 Encoder, 8 Detection plate,
9 Plate detection means, 10 Landing position detection device, 11 Car floor,
11a car floor, 12 car sills, 13 car doors, 14 platforms,
15 landing thresholds, 16 landing doors, 17 landing floors, 18 through holes,
19 light emitting device, 20 light receiving device, 21 joint member, 22 speed control unit,
23 speed command generation unit, 24 detection plate mounting error calculation unit, 25 storage unit,
26 speed converter, 27 speed controller, 28 torque controller,
29 changeover switch, 30 first car position data holding unit,
31 second car position data holding unit, 32 car position detector, 33 calculator,
34 car mileage calculation unit, 35 remaining distance calculation unit, 36 landing correction control unit,
37 convex portion, 38 concave portion, 39 light emitting device, 40 light receiving device, 41 through hole
図1はこの発明の実施の形態1におけるエレベータシステムを示す構成図である。図1において、1はエレベータ昇降路、2は昇降路1内を昇降するかご、3は昇降路1内をかご2とは逆方向に昇降する釣合い重り、4はかご2と釣合い重り3とを釣瓶式に懸架する主ロープである。5は主ロープ4の一部が巻き掛けられた駆動綱車、6は駆動綱車5を駆動するためのモータである。即ち、この種のエレベータでは、モータ6によって駆動綱車5を回動して主ロープ4を移動させることにより、主ロープ4に連動するかご2を、昇降路1内で上昇及び下降させる。7はモータ6の回転軸に設けられたエンコーダである。このエンコーダ7は、例えば、モータ6の回転軸に直結され、この回転軸の回転角度(回転変位)に応じたパルスを出力する。
1 is a block diagram showing an elevator system according to
プレート検出手段9は、検出プレート8の存在を検出するための検出部を有しており、現在のかご2の位置において検出部により検出プレート8が認識できるか否かを判定する。具体的に、プレート検出手段9は、かご2が所定の高さに配置された際に検出プレート8を検出するように構成され、例えば、上記検出部の検出位置が検出プレート8と同じ高さに配置された時に検出プレート8有りを検出する。 The detection plate 8 is provided corresponding to the landing on each floor. Each detection plate 8 is made of, for example, a plate-like member having a predetermined length in the vertical direction, and is positioned with a corresponding floor surface (an upper surface of a landing
The plate detection means 9 has a detection unit for detecting the presence of the detection plate 8 and determines whether or not the detection plate 8 can be recognized by the detection unit at the current position of the car 2. Specifically, the plate detection means 9 is configured to detect the detection plate 8 when the car 2 is arranged at a predetermined height. For example, the detection position of the detection unit is the same height as the detection plate 8. Is detected, the presence of the detection plate 8 is detected.
以上が、このエレベータシステムにおける主要な機械装置である。 In the landing
The above is the main mechanical device in this elevator system.
図1に示すように、このエレベータシステムには、速度制御部22、速度指令発生部23、検出プレート取付誤差算出部24、検出プレート取付誤差学習用の記憶部25が備えられている。 Next, main control functions in this elevator system will be described.
As shown in FIG. 1, the elevator system includes a
このエレベータシステムの基本動作は、各検出プレート8の取付誤差を学習するための学習走行と、乗客を目的階まで運ぶ通常走行との2つに大別される。先ず、図4に基づいて、上記学習走行時の動作について具体的に説明する。図4はこの発明の実施の形態1におけるエレベータシステムの動作を示すフローチャートであり、上記学習走行時の動作の一例を示している。 Next, the operation of the elevator system having the above configuration will be described.
The basic operation of this elevator system is broadly divided into two types: a learning run for learning the attachment error of each detection plate 8 and a normal run that carries passengers to the destination floor. First, based on FIG. 4, the operation | movement at the time of the said learning driving | running | working is demonstrated concretely. FIG. 4 is a flowchart showing the operation of the elevator system according to
図6はこの発明の実施の形態2におけるエレベータシステムの要部を示す斜視図である。図6は実施の形態2におけるA部拡大図に相当する。図6において、乗場敷居15には、平面視かご敷居12に対向する端面(以下、「前端面」という)に、かご敷居12側に突出する所定の幅の凸部37が設けられている。また、かご敷居12には、その前端面に、上記凸部37に対応する凹部38が形成されている。 Embodiment 2. FIG.
FIG. 6 is a perspective view showing a main part of an elevator system according to Embodiment 2 of the present invention. FIG. 6 corresponds to an enlarged view of part A in the second embodiment. In FIG. 6, the landing
その他の構成及び動作等は、実施の形態1と同様である。
Other configurations and operations are the same as those in the first embodiment.
その他の効果は、実施の形態1と同様である。 Furthermore, by forming a through hole in the
Other effects are the same as those of the first embodiment.
図7はこの発明の実施の形態3におけるエレベータシステムの要部を示す斜視図である。図7は実施の形態3におけるA部拡大図に相当する。図7において、乗場敷居15の長手方向に形成された貫通孔41は、発光装置19に対向するその開口部が、上下方向の幅よりもかご2の奥行方向(図7におけるY方向)の幅の方が長い長孔状を呈している。
その他は、実施の形態1と同様の構成を有する。 Embodiment 3 FIG.
FIG. 7 is a perspective view showing a main part of an elevator system according to Embodiment 3 of the present invention. FIG. 7 corresponds to an enlarged view of part A in the third embodiment. In FIG. 7, the through-
Others have the same configuration as in the first embodiment.
Claims (5)
- エレベータのかごの着床位置を検出するための着床位置検出装置であって、
前記かごに設けられ、かごドアの移動方向を案内するかご敷居と、
エレベータの乗場ドアの移動方向を案内するために乗場に設けられ、所定の貫通孔がその長手方向に形成された乗場敷居と、
前記かごに設けられ、平面視、前記乗場敷居を間に挟んで対向するように配置された発光装置及び受光装置と、
前記受光装置の受光状態に基づいて、前記かごの着床位置を検出する着床位置検出手段と、
を備え、
前記かご敷居の上面と前記乗場敷居の上面とが同じ高さに配置された際に、前記発光装置から出射された光線が、前記乗場敷居の前記貫通孔を通過して、前記受光装置に受光されることを特徴とする着床位置検出装置。 A landing position detection device for detecting a landing position of an elevator car,
A car sill provided in the car to guide the direction of movement of the car door;
A landing threshold provided in the landing to guide the moving direction of the landing door of the elevator, and a predetermined through hole formed in the longitudinal direction;
A light-emitting device and a light-receiving device that are provided in the cage and arranged to face each other with the landing sill interposed therebetween, in plan view;
A landing position detecting means for detecting a landing position of the car based on a light receiving state of the light receiving device;
With
When the upper surface of the car sill and the upper surface of the landing sill are arranged at the same height, the light emitted from the light emitting device passes through the through hole of the landing sill and is received by the light receiving device. A landing position detecting device characterized by being provided. - 発光装置と受光装置とは、かご敷居に固定された継手部材によってそれぞれ支持されたことを特徴とする請求項1に記載の着床位置検出装置。 2. The landing position detecting device according to claim 1, wherein the light emitting device and the light receiving device are respectively supported by joint members fixed to a car sill.
- 乗場敷居は、その前端面に、かご敷居側に突出する凸部が設けられるとともに、前記凸部に所定の貫通孔が形成され、
かご敷居は、その前端面に、前記凸部に対応する凹部が形成され、
発光装置及び受光装置は、平面視、前記凸部を間に挟んで対向するように、前記かご敷居の前記凹部の両側に設けられ、
前記かご敷居の上面と前記乗場敷居の上面とが同じ高さに配置された際に、前記発光装置から出射された光線が、前記凸部の前記貫通孔を通過して、前記受光装置に受光されることを特徴とする請求項1に記載の着床位置検出装置。 The landing sill is provided on the front end surface thereof with a convex portion protruding toward the car sill side, and a predetermined through hole is formed in the convex portion,
The basket sill has a concave portion corresponding to the convex portion formed on the front end surface thereof,
The light emitting device and the light receiving device are provided on both sides of the concave portion of the car sill so as to face each other with the convex portion interposed therebetween in plan view.
When the upper surface of the car sill and the upper surface of the landing sill are arranged at the same height, the light emitted from the light emitting device passes through the through hole of the convex portion and is received by the light receiving device. The landing position detection apparatus according to claim 1, wherein - 乗場敷居に形成された貫通孔は、上下方向の幅よりもかごの奥行方向の幅の方が長いことを特徴とする請求項1から請求項3の何れかに記載の着床位置検出装置。 The landing position detecting device according to any one of claims 1 to 3, wherein the through-hole formed in the landing sill has a longer width in the depth direction of the car than a width in the vertical direction.
- 請求項1から請求項4の何れかに記載の着床位置検出装置を用いたエレベータシステムであって、
各乗場に対応するように、昇降路固定体に設けられた検出プレートと、
かごに設けられ、前記かごが所定の高さに配置された際に前記検出プレートを検出するプレート検出手段と、
かごの移動変位に対応するかご位置データを検出するかご位置検出器と、
前記プレート検出手段が前記検出プレートを検出した時に前記かご位置検出器によって検出されたかご位置データ、及び、発光装置から出射された光線が乗場敷居の貫通孔を通過して受光装置に受光された時に前記かご位置検出器によって検出されたかご位置データに基づいて、前記検出プレートの取付誤差を算出する検出プレート取付誤差算出部と、
前記検出プレート取付誤差算出部によって算出された前記検出プレートの取付誤差を、その検出プレートが対応する乗場に関連付けて記憶する記憶部と、
目的階の乗場の着床位置に前記かごを走行させる際に、前記記憶部に記憶された前記検出プレートの取付誤差に基づいて、着床時のかご敷居の上面高さが目的階の乗場に設けられた前記乗場敷居の上面高さに一致するように、着床位置を補正する着床補正部と、
を備えたことを特徴とするエレベータシステム。 An elevator system using the landing position detection device according to any one of claims 1 to 4,
A detection plate provided on the hoistway fixing body so as to correspond to each landing,
Plate detecting means provided on a car and detecting the detection plate when the car is arranged at a predetermined height;
A car position detector for detecting car position data corresponding to the movement displacement of the car;
The car position data detected by the car position detector when the plate detecting means detects the detection plate, and the light beam emitted from the light emitting device is received by the light receiving device through the through hole of the landing sill. A detection plate mounting error calculation unit for calculating a mounting error of the detection plate based on car position data sometimes detected by the car position detector;
A storage unit that stores the detection plate mounting error calculated by the detection plate mounting error calculation unit in association with a landing corresponding to the detection plate;
When traveling the car to the landing position of the landing on the destination floor, the height of the upper surface of the car sill at the time of landing becomes the landing on the destination floor based on the mounting error of the detection plate stored in the storage unit. A landing correction unit that corrects the landing position so as to coincide with the upper surface height of the boarding sill provided;
An elevator system characterized by comprising:
Priority Applications (3)
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PCT/JP2008/050946 WO2009093317A1 (en) | 2008-01-24 | 2008-01-24 | Elevator system, and floor arrival position detecting device for use in the system |
CN200880119422.3A CN101888963B (en) | 2008-01-24 | 2008-01-24 | Elevator system, and floor arrival position detecting device for use in the system |
JP2009550399A JP5195766B2 (en) | 2008-01-24 | 2008-01-24 | Elevator system and landing position detection device used therefor |
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PCT/JP2008/050946 WO2009093317A1 (en) | 2008-01-24 | 2008-01-24 | Elevator system, and floor arrival position detecting device for use in the system |
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JP (1) | JP5195766B2 (en) |
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CN113086786A (en) * | 2021-03-31 | 2021-07-09 | 日立电梯(中国)有限公司 | Method for determining door opening position of elevator car, storage medium and elevator |
CN114394511A (en) * | 2022-01-19 | 2022-04-26 | 日立楼宇技术(广州)有限公司 | Elevator maintenance door opening method, device, equipment and storage medium |
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CN110723612B (en) * | 2015-06-19 | 2021-05-14 | 三菱电机株式会社 | Elevator control device and speed governor rope expansion amount estimation method |
CN105110113A (en) * | 2015-07-28 | 2015-12-02 | 苏州汇川技术有限公司 | Elevator floor leveling position control system and method |
WO2018198224A1 (en) * | 2017-04-26 | 2018-11-01 | 三菱電機株式会社 | Height difference inspection device for elevators |
CN108910641A (en) * | 2018-07-24 | 2018-11-30 | 日立楼宇技术(广州)有限公司 | Elevator landing information processing method, system, equipment and readable storage medium storing program for executing |
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CN113086786A (en) * | 2021-03-31 | 2021-07-09 | 日立电梯(中国)有限公司 | Method for determining door opening position of elevator car, storage medium and elevator |
CN113086786B (en) * | 2021-03-31 | 2023-12-29 | 日立电梯(中国)有限公司 | Method for determining door opening position of elevator car, storage medium and elevator |
CN114394511A (en) * | 2022-01-19 | 2022-04-26 | 日立楼宇技术(广州)有限公司 | Elevator maintenance door opening method, device, equipment and storage medium |
CN114394511B (en) * | 2022-01-19 | 2023-08-15 | 日立楼宇技术(广州)有限公司 | Elevator maintenance door opening method, device, equipment and storage medium |
Also Published As
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CN101888963A (en) | 2010-11-17 |
CN101888963B (en) | 2013-05-22 |
JPWO2009093317A1 (en) | 2011-05-26 |
JP5195766B2 (en) | 2013-05-15 |
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