Guide rail device for elevator
12187581 ยท 2025-01-07
Assignee
Inventors
Cpc classification
International classification
Abstract
Provided is a guide rail device for an elevator, which includes a plurality of fixing bodies. Among the plurality of fixing bodies, a fixing body that is the closest to a fishplate is referred to as a first fixing body, and a fixing body that is the second closest to the fishplate is referred to as a second fixing body. Further, a distance between a position of the first fixing body and a position of the second fixing body in a vertical direction is referred to as a rail fixing distance. In this case, a distance from the position of the first fixing body to a position of the fishplate in the vertical direction is one-third or less of the rail fixing distance.
Claims
1. A guide rail device for an elevator, comprising: a guide rail main body that is installed in a hoistway, includes a plurality of rail members joined together in an up-and-down direction, and is configured to guide vertical movement of a vertically movable body; a fishplate configured to couple two of the plurality of rail members, the two rail members being adjacent to each other in the up-and-down direction; and a plurality of fixing bodies configured to fix the guide rail main body to a building, wherein the hoistway has a flexible structure, and wherein, when a fixing body that is the closest to the fishplate among the plurality of fixing bodies is referred to as a first fixing body, a fixing body that is the second closest to the fishplate is referred to as a second fixing body, and a distance between a position of the first fixing body and a position of the second fixing body in a vertical direction is referred to as a rail fixing distance, a distance from the position of the first fixing body to a position of the fishplate in the vertical direction is one-third or less of the rail fixing distance.
2. The guide rail device for an elevator according to claim 1, wherein the distance from the position of the first fixing body to the position of the fishplate in the vertical direction is one-quarter of the rail fixing distance.
3. A guide rail device for an elevator, comprising: a guide rail main body including a plurality of rails joined together in an up-and-down direction, the guide rail main body to guide vertical movement of a vertically movable body; a fishplate coupling two of the plurality of rails, the two rails being adjacent to each other in the up-and-down direction; and a plurality of fixing bodies to fix the guide rail main body to a building, the plurality of fixing bodies including a first fixing body that is the closest to the fishplate among the plurality of fixing bodies, and a second fixing body that is a second closest fixing body to the fishplate, wherein a distance from a position of the first fixing body to a position of the fishplate in the vertical direction is one-third or less of a rail fixing distance which is a distance between a position of the first fixing body and a position of the second fixing body in a vertical direction.
4. The guide rail device for an elevator according to claim 3, wherein: the distance from the position of the first fixing body to the position of the fishplate in the vertical direction is one-quarter of the rail fixing distance.
5. The guide rail device for an elevator according to claim 3, wherein: the distance from the position of the first fixing body to the position of the fishplate in the vertical direction is one-quarter or less of the rail fixing distance.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
DESCRIPTION OF THE EMBODIMENTS
(7) Now, an embodiment is described with reference to the drawings.
First Embodiment
(8)
(9) The elevator hoisting machine 3 includes a hoisting machine main body 4 and a driving sheave 5. The hoisting machine main body 4 includes a hoisting machine motor and a hoisting machine brake. The hoisting machine motor rotates the driving sheave 5. The hoisting machine brake holds the driving sheave 5 in a stationary state. Further, the hoisting machine brake brakes rotation of the driving sheave 5.
(10) Suspension bodies 7 are wound around the driving sheave 5 and the deflector sheave 6. A plurality of ropes or a plurality of belts are used as the suspension bodies 7. A car 8 serving as a vertically movable body is connected to a first end portion of the suspension bodies 7. A counterweight 9 serving as a vertically movable body is connected to a second end portion of the suspension bodies 7.
(11) The car 8 and the counterweight 9 are suspended by the suspension bodies 7 in the hoistway 1. Further, the car 8 and the counterweight 9 are vertically moved in the hoistway 1 through rotation of the driving sheave 5.
(12) A guide rail device 10 is provided in the hoistway 1. The guide rail device 10 includes a plurality of guide rail main bodies 11. The plurality of guide rail main bodies 11 include a pair of car guide rail main bodies and a pair of counterweight guide rail main bodies.
(13) The pair of car guide rail main bodies are configured to guide vertical movement of the car 8. The pair of counterweight guide rail main bodies are configured to guide vertical movement of the counterweight 9.
(14) A plurality of car guide shoes 8a are provided to the car 8. When the car 8 is vertically moved, each of the car guide shoes 8a is moved in contact with a corresponding one of the car guide rail main bodies.
(15) A plurality of counterweight guide shoes 9a are provided to the counterweight 9. When the counterweight 9 is vertically moved, each of the counterweight guide shoes 9a is moved in contact with a corresponding one of the counterweight guide rail main bodies.
(16)
(17) Although not shown in
(18) Each of the fishplates 13 couples two of the plurality of rail members 12, which are adjacent to each other in the up-and-down direction. Each of the fishplates 13 is fixed to two rail members 12 by a plurality of bolts (not shown).
(19) The fixing bodies 14 fix the guide rail main body 11 to a building. Specifically, each of the guide rail main bodies 11 is installed in the hoistway 1 through intermediation of the plurality of fixing bodies 14.
(20) The hoistway 1 according to the first embodiment has a flexible structure. Thus, each of the fixing bodies 14 is fixed to a corresponding one of building beams 20.
(21) Each of the fixing bodies 14 includes a base plate 15, a rail bracket 16, and a pair of rail clips 17.
(22) The base plate 15 is fixed to the building beam 20 by, for example, welding. The rail bracket 16 is fixed to the base plate 15 by, for example, welding.
(23) The guide rail main body 11 is sandwiched between the pair of rail clips 17 and the rail bracket 16 in each of the fixing bodies 14. Specifically, the guide rail main body 11 is fixed to the rail bracket 16 by the pair of rail clips 17 in each of the fixing bodies 14.
(24)
(25) In the model of the guide rail device 10, the guide rail main body 11 is represented by a straight line. Further, a position of each of the fishplates 13, that is, a boundary between two adjacent rail members 12 is represented by a straight line that is orthogonal to the guide rail main body 11. Further, a position of each of the fixing bodies 14, that is, a position at which the guide rail main body 11 is fixed by each of the fixing bodies 14 is represented by a triangle.
(26) In the lower part of
(27) In this case, when one of the plurality of fishplates 13 is set as a target fishplate, the fixing body 14 that is the closest to the target fishplate is referred to as first fixing body and the fixing body 14 that is the second closest to the target fishplate is referred to as second fixing body. Further, a distance between a position of the first fixing body and a position of the second fixing body in the vertical direction is referred to as rail fixing distance L.
(28) Further, a distance from the position of the first fixing body to the target fishplate is represented by a. Further, a ratio of the distance a to the rail fixing distance L is referred to as fishplate position ratio k. Specifically, k=a/L is satisfied.
(29) In this case, the magnitude M of moment can be expressed as: M=C (k)PL. In this expression, a coefficient C (k) is a function of k and is a dimensionless number. The value PL is uniquely determined by specifications of the elevator, and thus PL cannot be made smaller. However, when the coefficient C (k) is decreased as much as possible, the magnitude M of moment can be reduced.
(30) A domain of definition of the fishplate position ratio k is expressed as: 0.1k0.5. Thus, when the coefficient C(k) is graphed,
(31) When the fishplate position ratio k is set to for every rail fixing distance L, for example, working efficiency in installation of the guide rail main body 11 and a degree of freedom in length of the rail member 12 are undermined. Thus, in view of practical aspects, it is suitable to set the fishplate position ratio k so as to satisfy: k, as illustrated in
(32) As described above, in the guide rail device 10 according to the first embodiment, the distance from the position of the first fixing body to the position of the target fishplate in the vertical direction is set to one-third or less of the rail fixing distance L. In other words, the length of each of the rail members 12 is set so as to satisfy: fishplate position ratio k.
(33) Thus, even when the hoistway 1 has a flexible structure, moment acting on each of the fishplates 13 can be suppressed. As a result, a shift of each of the fishplates 13, which may be caused by an external force, can be suppressed, and riding comfort performance of the elevator can be maintained.
(34) Further, the use of special bolts or a special surface treatment on each of joint surfaces of the rail members 12 and the fishplate 13 is not required to frictionally join the fish plate 13 to the rail members 12. Accordingly, material cost, manufacture cost, and installation cost can be reduced.
(35) Further, when the distance from the position of the first fixing body to the position of the target fishplate in the vertical direction is set to one-quarter of the rail fixing distance L, the moment acting on each of the fishplates 13 can be more reliably suppressed.
(36) The number of fishplates 13 and the number of fixing bodies 14 for each of the guide rail main bodies 11 can be suitably changed depending on an elevator.
(37) Further, the type of elevator is not limited to that illustrated in
(38) Further, the elevator may be, for example, a machine room-less elevator, a double-deck elevator, and a one-shaft multi-car system elevator. The one-shaft multi-car system is a system in which an upper car and a lower car arranged directly below the upper car are vertically moved in the common hoistway independently.