This application is based upon and claims the benefit of priority from the prior Japanese Patent Application No. 2017-123740 filed on Jun. 23, 2017, the entire contents of which are incorporated herein by reference.
An embodiment of the invention relates to an elevator apparatus having a structure for sealing a gap produced between an elevator lobby (landing) side door sill and a car side door sill both provided at an entrance of an elevator car.
In an elevator apparatus in which a car installed in a hoistway of a building moves up and down between floors to carry personnel and luggage, in order to raise and lower the car, a certain gap is provided between each floor and the car. For this reason, when the car is landed on the platform and doors of a doorway are opened, the gap appears between a doors sill of the platform side and the door sill of the car side. The gap between the door sills causes a person to trip or causes a wheelchair or a handcart to derail, thus being dangerous. Small goods including a key and a card can fall into a pit of the elevator apparatus through the gap, and are hard to retrieve in some cases.
An apparatus is proposed to seal the gap with a seal member when the door is open. See a patent document 1, for example, Japanese published unexamined application 10-250962.
In the apparatus in accordance with the patent document 1, a plate that seals the gap between the door sills is installed in the lower part of the car floor. When the door of the elevator apparatus opens, the plate rotates, so that the gap between the door sills is sealed by the plate.
The plate prevents things from falling into the pit of the elevator apparatus. The plate is rotated by being urged by the hinge and the return spring, and the gap is closed. The door presses the push-down lever provided on the plate side when the door is closed. As a result, the plate rotates against the urging force of the return spring, and the gap is released.
In such an apparatus, the push-down lever for rotating the plate pushes one end of the plate. As a result, the plate rotates. For this reason, when the width of the entrance to the car is large, a large operating force is required to operate the push-down lever for rotating the plate against the biasing force of the return spring. Therefore, the load on the door increases when the door is closed. Also, since the operation area of the push-down lever is widened, a large space is required for installation.
An object of the present invention is to provide an elevator apparatus having a mechanism capable of being installed in a small space, capable of closing a gap with a small force even when the width of the doorway is wide or when the gap between the doorways is wide.
The above object is realized by a seal member that mechanically interlocks with the opening and closing of the car door and closes the gap between the door sill on the landing side and the door sill on the car side. The seal member closes the gap by being pivoted by a link mechanism without requiring a large operating force.
Embodiments of the invention will be described specifically with reference to drawings.
A whole structure of an elevator apparatus will be described below with reference to
Furthermore, the elevator apparatus 1 may be an elevator without a machine house 6, i.e., a machine-house-less elevator having a downsized winding machine 7 or a downsized controller 8 on an upper portion of an inside of the hoistway 3.
In the elevator apparatus 1, an elevator lobby (landing) 11 is installed on each floor of a building. A doorway 12 leading to a car 4 inside the hoistway 3 is provided to the landing 11, and a landing door 2 is provided to the doorway 12. When the car 4 reaches the landing 11, the landing door 2 engages a car door 25 provided at a doorway 24 of the car 4 through an interlock mechanism not shown diagrammatically and opens/closes in conjunction with opening and closing of the car door 25.
The door opening mechanism is publicly known, and is not related directly to the present invention. Thus, an explanation of the door opening mechanism is skipped. The door panel 25a is geared to a left-side panel not shown in the figure by power of motor not shown in the figure and is driven in the right and left directions along a guide rail. Thus, the door opening mechanism gates the door panel 25a.
A car-side door sill 31 is provided to the doorway of the elevator car 4, and enables the car door 25 to slide along the opening and closing direction. The car-side door sill 31 is provided to a hem side of the doorway 24 of the elevator car 4, and a guide groove on the upper side of the car-side door sill 31 engages with a lower end of the door panel 25a to guide the door panel 25a in the opening and closing direction.
A door sill 32 is provided to the side of the landing 11, as shown in
When the elevator car 4 reaches a prescribed floor, a gap occurs between the car-side door sill and the landing-side door sill 32. In an embodiment of the invention, the gap is sealed with a plate-like seal member 35 shown in
The seal member 35 has a shape that can seal the gap between the car-side door sill 31 and the landing-side door sill 32. In other words, the shape is longer than the width of the car-side doorway 24 and wider than the width of the gap between door sills 31 and 32 shown in
A side of the seal member 35 is supported rotatably by a supporting member at the side of the door sill 31. Due to the rotation of the seal member 35, the seal member 35 moves the side between the sealing position for seal the gap of the door sills 31 and 32 shown in
The shaft-attaching block 53 has a composable shape. In the composable shape, the seal member 35 and each convexoconcave portion are engaged mutually. When plural shaft-attaching blocks 53 are provided on a side of the seal member 35, alignment of the rotation shaft 56 is easily obtained.
On this rotating shaft 56, a rotation block is provided. As shown in
As described above, the rotation block 51 is provided to the seal member 35 through the torsion spring 52. When a load is added to the seal member 35 at the sealing position, a rotation of the seal member 35 relative to the rotation block 51 is absorbed by a spring force of the torsion spring to avoid overload.
With this configuration, damage to the supporting portion of the seal member 35 can be prevented by applying a load to the seal member 35.
When the door starts to open from the door closed end (moves to the right direction shown in the figure), the link mechanism 41 for rotating the seal member 35 actuate after the link mechanism 41 is released from the engagement to the actuating member 42 on the side of the door panel 25a, and fixes the seal member 35 at the sealing position shown in
In other words, the actuating member 42 is provided to the right-side portion of the door panel 25a at the prescribed height through the oblique side shown in the figure.
The link mechanism 41 has an actuating bracket 55, an arm 43, and a link 61. The link mechanism 41 pull down a slide block 44 to a condition shown in
The actuating bracket 55 configuring the link mechanism 41 is provided vertically to the right side end as shown in
When the door panel 25a moves in the right direction by a door-opening action of the car door 25, the pin 55a is released from the upper surface of the actuating member 42 as shown in
In contrast, when the door panel 25a moves from a condition of
An end of the arm 43 is coupled with a lower end of the actuating bracket 55. The arm 43 is provided along a frontage direction of the doorway of the elevator car 4 provided with the car door 25, and is coupled with a beam 36 so as to be movable up and down. The arm 43 is provided to the beam 36 through a mounting base 47. Thus, the arm moves up and down accompanied with a vertical motion of the actuating bracket 55.
A slide block 44 formed like a picture frame is provided to the arm 43 through a fixed plate 46, as shown in
When the seal member 35 is located at an evacuation position in
At this time, the slide block 44 locates between the right side of the rotation block 51 after rotation and the side of the door sill member 31 to prevent the illustrated anticlockwise rotation of the rotation block 51. For this reason, the seal member 35 is maintained at the sealing position shown in
On the other hand, as the door panel 25a moves to the left in the drawing when the car door is closed, as the operation bracket 55 and the arm 43 constituting the link mechanism 41 are raised as described above, the sliding block 44 also rises, the rotation block 51 is rotatable. For this reason, the seal member 35 rotates anticlockwise by its own weight and to be maintained at the evacuation position. The fix of the seal member 35 is released at the sealing position, and the seal member 35 is allowed to rotate to the evacuation position.
In this way, when the link mechanism 41 is released from the engagement with the actuating member 42 by the door opening operation of the car door 25, the link mechanism 41 moves down by the deadweight of the component parts. The link mechanism 41 engages with the actuating member 42 to be elevated. The slide block 44 is coupled with the link mechanism 41. When the link mechanism 41 moves down, the slide block 44 pushes down one end of the rotation block 51 to rotate the rotation block 51. The rotation block 51 is installed coaxially with the rotation shaft of the seal member 35 and is linked so as to be interlocked with the seal member 35. As the rotation block 51 rotates, the seal member 35 is rotate to s sealing position. On the contrary, the elevation of the slide block 44 releases the lock of the rotation member 51, thereby allowing the seal member 35 to rotate to the evacuation position.
The slide block 44 has a gap between the car-side door sill 31 and the slide block 44 so as not to graze against the car-side door sill 31. When a load is applied in the upper right direction of
A flexible tip member 54 is provided to the tip of the seal member 35 as shown in
The configuration enables it to seal the gap between the door sills 31 and 32 with the seal member 35 and the tip member 54, thereby preventing the small things from falling into the pit through the gap and can be easily retrieved the small things.
The tip member 54 is formed of flexible substances including rubber, and is deformable at a tip location independently of the seal member 35.
Under such a sealing condition, the load of the elevator car 4 changes greatly to elevate the elevator car 4 slightly in some cases. Even such a temporal elevation of the elevator car 4 to contact the tip member 54 and the landing side door sill 32 will never give rise to damage or an insufficient rotation action of the seal member 35.
The link mechanism 41 is provided to a reinforcing plate 36a of the car-side mounting beam 36 by the mounting base 47, as shown in
Several embodiments of the invention have been described above. The embodiments are shown absolutely as examples of the invention. The above description is not intended to limit the scope of the invention. The novel embodiments can be employed variously. The embodiments can be omitted, replaced, and changed variously. The embodiments and the modified embodiments are included in the scope or summary of the invention and in the claimed invention and in the equivalents of the invention.
Number | Date | Country | Kind |
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2017-123740 | Jun 2017 | JP | national |