Villa elevator vertical beam structure

By introducing a buffer and length adjustment mechanism into the vertical beam of the villa elevator, the shortcomings of traditional vertical beam structures in vibration absorption and length adjustment are solved, thereby improving the stability and applicability of the structure and reducing installation complexity and cost.

CN224091426UActive Publication Date: 2026-04-07GUANGDONG FRANSLER ELEVATOR CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-05-22
Publication Date
2026-04-07

AI Technical Summary

Technical Problem

Traditional villa elevator beam structures lack cushioning performance, failing to effectively absorb vibrations and impacts during elevator operation. Furthermore, their fixed length prevents adjustment, limiting their applicability and ease of installation.

Method used

An elevator beam structure including a beam buffer mechanism and a length adjustment mechanism was designed. The buffer mechanism absorbs vibration and impact through buffer components, and the adjustment mechanism achieves flexible adjustment of the beam length through sliders and grooves.

Benefits of technology

It effectively protects the vertical beam structure, extends its service life, improves the smoothness and comfort of elevator operation, and adapts to different installation environments, reducing installation difficulty and cost.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a villa elevator vertical beam structure, which belongs to the technical field of villa vertical beams and comprises an upper vertical beam, an upper fixing plate is arranged at the upper end of the upper vertical beam, the upper vertical beam is rotatably connected with the upper fixing plate through a rotating shaft, and a lower vertical beam is arranged at the lower end of the upper vertical beam. Vibration and impact force generated in the elevator running process can be effectively absorbed, damage to a vertical beam structure is reduced, and therefore the service life of a vertical beam is prolonged, a traditional vertical beam structure lacks buffering performance, vibration generated in the elevator running process easily causes fatigue damage to the vertical beam structure, and the service life of the vertical beam structure is prolonged. According to the vertical beam buffering mechanism, through the synergistic effect of the damping rods, the buffering springs and the rotating blocks in the buffering assemblies, the vertical beam buffering mechanism can flexibly adapt to different stress conditions, the stability and reliability of the vertical beam structure are improved, meanwhile, more stable support is provided for elevator operation, and the riding comfort is improved.
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Description

TECHNICAL FIELD

[0001] The utility model belongs to villa vertical beam technical field, and specifically relates to a villa elevator vertical beam structure. BACKGROUND

[0002] With the significant improvement of people's living standards, the requirement for living environment is also higher and higher, and the villa elevator gradually becomes the standard configuration of high-end residence. The villa elevator not only greatly improves the convenience of living, but also significantly increases the comfort and safety of the residence. In the multi-storey villa, the existence of the elevator enables the elderly and children to easily go up and down the stairs, and also facilitates the transportation of large items, greatly improving the convenience of life. In addition, the stable operation and quiet performance of the villa elevator also add comfort to the living environment, and its advanced safety system provides all-round safety protection for family members.

[0003] However, the traditional villa elevator vertical beam structure has some obvious limitations, which to some extent limit its application and promotion in modern villas. Specifically, the traditional vertical beam structure lacks buffering performance after installation, and cannot effectively absorb the vibration and impact force generated during the operation of the elevator, which not only affects the smooth operation of the elevator, but also may cause fatigue and damage to the vertical beam structure, shortening its service life. In addition, the length of the traditional vertical beam structure is fixed and cannot be adjusted according to the actual installation environment, which to some extent limits its application range. In some villas with limited space or complex structure, the installation of traditional vertical beams may encounter difficulties, and even additional building modification is required, increasing the installation cost and time. SUMMARY

[0004] To solve the problems raised in the background art, the utility model provides a villa elevator vertical beam structure, which has the characteristics of buffering performance after installation of the vertical beam structure and adjustable length of the vertical beam.

[0005] To achieve the above-mentioned purpose, the utility model provides the following technical scheme: a villa elevator vertical beam structure, comprising an upper vertical beam, the upper end of the upper vertical beam is provided with an upper fixed plate, the upper vertical beam and the upper fixed plate are rotationally connected through a rotating shaft, the lower end of the upper vertical beam is provided with a lower vertical beam, the lower end of the lower vertical beam is provided with a lower fixed plate, the lower vertical beam and the lower fixed plate are rotationally connected through a rotating shaft, the upper vertical beam and the lower vertical beam are fixedly connected through the upper fixed plate, and the side edge upper end of the upper vertical beam and the side edge lower end of the lower vertical beam are provided with a vertical beam buffering mechanism.

[0006] Preferably, the vertical beam buffering mechanism comprises a buffering assembly, a bolt two and a waist-shaped groove, the side edge of the lower vertical beam on one side of the upper end of the lower fixed plate is provided with the buffering assembly, the inside of the lower fixed plate is provided with the waist-shaped groove, and the inside of the waist-shaped groove is provided with the bolt two.

[0007] Preferably, the buffer assembly includes a pin, a buffer spring, a shock absorber rod, a rotating block, a bolt, and a U-shaped seat. The upper end of the lower fixed plate and the side of the lower upright beam are provided with U-shaped seats. The U-shaped seats and the lower fixed plate are fixedly connected by a bolt. Another set of U-shaped seats is fixedly connected to the lower upright beam by a bolt. The upper end of the U-shaped seat is provided with a rotating block. The rotating block and the U-shaped seat are rotatably connected by a pin. A shock absorber rod is connected between the two sets of rotating blocks. A buffer spring is sleeved on the surface of the shock absorber rod.

[0008] Preferably, the beam length adjustment mechanism includes a groove, a connecting plate, a slider, a fixing component, a sliding groove, and a slot. The upper end of the lower beam is provided with a connecting plate, the side of the connecting plate is provided with a groove, the upper end of the side of the groove is provided with a slider, the side of the upper beam is provided with a sliding groove corresponding to the slider, the lower end of the upper beam is provided with a slot, and the connecting plate and the upper beam are fixedly connected by the fixing component.

[0009] Preferably, the beam length adjustment mechanism includes a screw hole, a bolt, and a through hole. The slider and the upper beam are fixedly connected by the bolt. The side of the upper beam has a through hole corresponding to the bolt, and the side of the slider has a screw hole corresponding to the bolt.

[0010] Preferably, the connecting plate is slidably connected inside the slot, and the slider is slidably connected inside the slot.

[0011] Compared with the prior art, the beneficial effects of this utility model are:

[0012] 1. This utility model, by setting up a beam buffer mechanism, can effectively absorb the vibration and impact force generated during elevator operation, reduce damage to the beam structure, and thus extend the service life of the beam. Traditional beam structures lack buffer performance, and vibration during elevator operation can easily lead to fatigue damage to the beam structure. However, the beam buffer mechanism of this utility model, through the synergistic action of the shock-absorbing rod, buffer spring and rotating block in the buffer assembly, can flexibly adapt to different stress conditions, improve the stability and reliability of the beam structure, and provide smoother support for elevator operation, thereby improving ride comfort.

[0013] 2. This utility model, by setting up a beam length adjustment mechanism, can flexibly adjust the length of the beam according to the actual installation environment, making it better adaptable to elevator shafts of different heights, greatly improving the applicability of the beam structure. The beam length adjustment mechanism of this utility model achieves rapid adjustment of the beam length through the cooperation of sliders, slides, connecting plates and fixing components. It is simple and convenient to operate, reduces installation difficulty, saves installation time and cost, and also avoids damage to the building structure caused by unsuitable beam length. Attached Figure Description

[0014] Figure 1This is a perspective view of the present utility model;

[0015] Figure 2 This is a perspective view of the vertical beam buffer mechanism of this utility model;

[0016] Figure 3 This utility model Figure 1 Enlarged view of point A in the middle;

[0017] Figure 4 This is a perspective view of the beam length adjustment mechanism of this utility model;

[0018] In the diagram: 1. Upper beam; 2. Lower beam; 3. Beam buffer mechanism; 31. Buffer assembly; 311. Pin; 312. Buffer spring; 313. Shock absorber rod; 314. Rotating block; 315. Bolt 1; 316. U-shaped seat; 32. Bolt 2; 33. Waist-shaped groove; 4. Lower fixing plate; 5. Beam length adjustment mechanism; 51. Groove; 52. Connecting plate; 53. Sliding block; 54. Fixing assembly; 541. Screw hole; 542. Bolt 3; 543. Through hole; 55. Slide groove; 56. Slot; 6. Upper fixing plate; 7. Rotating shaft. Detailed Implementation

[0019] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0020] Example 1

[0021] Please see Figures 1-4 The present invention provides the following technical solution: a villa elevator upright beam structure, including an upper upright beam 1, an upper fixed plate 6 is provided at the upper end of the upper upright beam 1, the upper upright beam 1 and the upper fixed plate 6 are rotatably connected by a rotating shaft 7, a lower upright beam 2 is provided at the lower end of the upper upright beam 1, a lower fixed plate 4 is provided at the lower end of the lower upright beam 2, the lower upright beam 2 and the lower fixed plate 4 are rotatably connected by a rotating shaft 7, the upper upright beam 1 and the lower upright beam 2 are fixedly connected by an upper fixed plate 6, and an upright beam buffer mechanism 3 is provided at the upper side of the upper upright beam 1 and the lower side of the lower upright beam 2.

[0022] Specifically, the upright beam buffer mechanism 3 includes a buffer assembly 31, bolt 2 32, and a waist-shaped groove 33. The buffer assembly 31 is provided on the side of the lower upright beam 2 at the upper end of the lower fixing plate 4. The waist-shaped groove 33 is opened inside the lower fixing plate 4, and bolt 2 32 is installed inside the waist-shaped groove 33.

[0023] By adopting the above technical solutions, the vibration and impact generated during elevator operation can be effectively absorbed, protecting the vertical beam structure and extending its service life.

[0024] Specifically, the buffer assembly 31 includes a pin 311, a buffer spring 312, a shock absorber rod 313, a rotating block 314, a bolt 315, and a U-shaped seat 316. A U-shaped seat 316 is provided on the upper end of the lower fixed plate 4 and the side of the lower upright beam 2. The U-shaped seat 316 and the lower fixed plate 4 are fixedly connected by bolt 315. Another set of U-shaped seats 316 is fixedly connected to the lower upright beam 2 by bolt 315. A rotating block 314 is provided on the upper end of the U-shaped seat 316. The rotating block 314 and the U-shaped seat 316 are rotatably connected by a pin 311. A shock absorber rod 313 is connected between the two sets of rotating blocks 314. A buffer spring 312 is sleeved on the surface of the shock absorber rod 313.

[0025] By adopting the above technical solution, when vibration occurs during elevator operation, the shock absorber 313 and buffer spring 312 can effectively absorb the impact force and reduce the damage to the upright beam structure. At the same time, the design of the rotating block 314 and the pin 311 allows the buffer assembly 31 to flexibly adjust its angle to better adapt to different stress conditions, thereby improving the stability and reliability of the upright beam structure.

[0026] In this embodiment, the upper beam 1 and lower beam 2 are first installed in the elevator shaft using the upper fixing plate 6 and lower fixing plate 4 to ensure their firmness and stability. Then, the buffer assembly 31 is installed on the side of the lower fixing plate 4 and lower beam 2. The U-shaped seat 316 is fixedly connected to the lower fixing plate 4 and lower beam 2 respectively using bolts 315. During elevator operation, when the elevator car vibrates due to vertical movement, the shock absorber 313 and buffer spring 312 can effectively absorb the impact force and reduce damage to the beam structure. At the same time, the design of the rotating block 314 and the pin 311 allows the buffer assembly 31 to flexibly adjust its angle to better adapt to different stress conditions, thereby improving the stability and reliability of the beam structure. In this way, the beam buffer mechanism 3 can effectively protect the beam structure, extend its service life, and improve the smoothness and comfort of elevator operation.

[0027] Example 2

[0028] The difference between this embodiment and Embodiment 1 is that the beam length adjustment mechanism 5 includes a groove 51, a connecting plate 52, a slider 53, a fixing component 54, a sliding groove 55, and a slot 56. The upper end of the lower beam 2 is provided with a connecting plate 52, the side of the connecting plate 52 is provided with a groove 51, the upper end of the side of the groove 51 is provided with a slider 53, the side of the upper beam 1 is provided with a sliding groove 55 corresponding to the slider 53, the lower end of the upper beam 1 is provided with a slot 56, and the connecting plate 52 and the upper beam 1 are fixedly connected by the fixing component 54.

[0029] By adopting the above technical solution, the length of the vertical beam can be flexibly adjusted according to the actual installation environment, making it better adaptable to elevator shafts of different heights and improving the applicability of the vertical beam structure.

[0030] Specifically, the beam length adjustment mechanism 5 includes a screw hole 541, a bolt 542, and a through hole 543. The slider 53 is fixedly connected to the upper beam 1 by the bolt 542. The upper beam 1 has a through hole 543 corresponding to the bolt 542 on its side, and the slider 53 has a screw hole 541 corresponding to the bolt 542 on its side.

[0031] By adopting the above technical solution, the slider 53 can be firmly fixed in the groove 55 of the upper beam 1 through the cooperation of bolt 542 and screw hole 541, ensuring the stability of the connection. At the same time, the sliding of slider 53 in the groove 55 can realize the adjustment of the length of the beam, which is simple and convenient to operate.

[0032] Specifically, the connecting plate 52 is slidably connected inside the slot 56, and the slider 53 is slidably connected inside the slide groove 55.

[0033] By adopting the above technical solution, the sliding connection design of the connecting plate 52 and the slider 53 makes the adjustment of the beam length more flexible, and can quickly adjust the beam length according to actual needs to meet the requirements of different installation environments.

[0034] In this embodiment, the length of the vertical beam is adjusted by sliding the slider 53 within the slide groove 55 according to the actual height of the elevator shaft. The connecting plate 52 is installed on the upper end of the lower vertical beam 2, and the slider 53 is installed in the side groove 51 of the connecting plate 52. Then, the slider 53 is inserted into the slide groove 55 of the upper vertical beam 1, and the slider 53 is firmly fixed to the upper vertical beam 1 by passing the bolt 542 through the screw hole 541 of the slider 53 and the through hole 543 of the upper vertical beam 1. In this way, the length of the vertical beam can be flexibly adjusted according to the height of the elevator shaft to better adapt to different installation environments. After adjustment, the connecting plate 52 is fixedly connected to the upper vertical beam 1 by the fixing component 54 to ensure the stability of the vertical beam structure. This design of the vertical beam length adjustment mechanism 5 not only improves the applicability of the vertical beam structure but also reduces the installation difficulty and cost and improves the installation efficiency.

[0035] The working principle and usage process of this utility model are as follows: First, the upper beam 1 and lower beam 2 are installed in the elevator shaft using the upper fixing plate 6 and lower fixing plate 4, ensuring their stability. Then, the buffer assembly 31 is installed on the sides of the lower fixing plate 4 and lower beam 2. The U-shaped seat 316 is fixedly connected to the lower fixing plate 4 and lower beam 2 respectively using bolts 315. During elevator operation, when the elevator car vibrates from vertical movement, the shock absorber 313 and buffer spring 312 effectively absorb the impact force, reducing damage to the beam structure. Simultaneously, the design of the rotating block 314 and pin 311 allows the buffer assembly 31 to flexibly adjust its angle, better adapting to different stress conditions, thereby improving the stability and reliability of the beam structure. In this way, the beam buffer mechanism 3 effectively protects the beam structure, extends its service life, and improves elevator operation. The design of the vertical beam adjustment mechanism 5 improves the smoothness and comfort of the elevator shaft. Based on the actual height of the elevator shaft, the length of the vertical beam is adjusted by sliding the slider 53 within the groove 55. A connecting plate 52 is installed on the upper end of the lower vertical beam 2, and the slider 53 is installed in the side groove 51 of the connecting plate 52. The slider 53 is then inserted into the groove 55 of the upper vertical beam 1, and bolts 542 are passed through the screw holes 541 of the slider 53 and the through holes 543 of the upper vertical beam 1 to firmly fix the slider 53 to the upper vertical beam 1. In this way, the length of the vertical beam can be flexibly adjusted according to the height of the elevator shaft, making it better adaptable to different installation environments. After adjustment, the connecting plate 52 is fixedly connected to the upper vertical beam 1 using the fixing assembly 54 to ensure the stability of the vertical beam structure. This design of the vertical beam length adjustment mechanism 5 not only improves the applicability of the vertical beam structure but also reduces installation difficulty and cost, and improves installation efficiency.

[0036] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. A villa elevator support beam structure, comprising an upper support beam (1), wherein an upper fixing plate (6) is provided at the upper end of the upper support beam (1), the upper support beam (1) and the upper fixing plate (6) are rotatably connected by a rotating shaft (7), a lower support beam (2) is provided at the lower end of the upper support beam (1), a lower fixing plate (4) is provided at the lower end of the lower support beam (2), and the lower support beam (2) and the lower fixing plate (4) are rotatably connected by a rotating shaft (7), characterized in that: The upper beam (1) and the lower beam (2) are fixedly connected by an upper fixing plate (6). The upper side of the upper beam (1) and the lower side of the lower beam (2) are provided with a beam buffer mechanism (3).

2. The villa elevator beam structure according to claim 1, characterized in that: The beam buffer mechanism (3) includes a buffer assembly (31), bolt two (32) and a waist-shaped groove (33). The buffer assembly (31) is provided on the side of the lower beam (2) on the upper side of the lower fixing plate (4). The waist-shaped groove (33) is opened inside the lower fixing plate (4), and bolt two (32) is provided inside the waist-shaped groove (33).

3. The villa elevator beam structure according to claim 2, characterized in that: The buffer assembly (31) includes a pin (311), a buffer spring (312), a shock absorber (313), a rotating block (314), a bolt (315), and a U-shaped seat (316). The upper end of the lower fixed plate (4) and the side of the lower upright beam (2) are provided with U-shaped seats (316). The U-shaped seats (316) and the lower fixed plate (4) are fixedly connected by bolt (315). Another set of U-shaped seats (316) is fixedly connected to the lower upright beam (2) by bolt (315). The upper end of the U-shaped seat (316) is provided with a rotating block (314). The rotating block (314) and the U-shaped seat (316) are rotatably connected by a pin (311). The two sets of rotating blocks (314) are connected by a shock absorber (313). The surface of the shock absorber (313) is fitted with a buffer spring (312).

4. The villa elevator beam structure according to claim 1, characterized in that: The beam length adjustment mechanism (5) includes a groove (51), a connecting plate (52), a slider (53), a fixing component (54), a sliding groove (55), and a slot (56). The upper end of the lower beam (2) is provided with a connecting plate (52), the side of the connecting plate (52) is provided with a groove (51), the upper end of the side of the groove (51) is provided with a slider (53), the side of the upper beam (1) is provided with a sliding groove (55) corresponding to the slider (53), the lower end of the upper beam (1) is provided with a slot (56), and the connecting plate (52) and the upper beam (1) are fixedly connected by the fixing component (54).

5. A villa elevator beam structure according to claim 4, characterized in that: The beam length adjustment mechanism (5) includes a screw hole (541), a bolt (542) and a through hole (543). The slider (53) is fixedly connected to the upper beam (1) by the bolt (542). The upper beam (1) has a through hole (543) corresponding to the bolt (542) on its side, and the slider (53) has a screw hole (541) corresponding to the bolt (542) on its side.

6. The villa elevator beam structure according to claim 4, characterized in that: The connecting plate (52) is slidably connected inside the slot (56), and the slider (53) is slidably connected inside the groove (55).