Small equipment transition base capable of being flexibly adjusted

By designing a flexible and adjustable transition base for small equipment, using a docking plate and bolt connection, combined with shock-absorbing beads and heat dissipation fins, the problem of the inflexible adjustment of the shock absorption and support structure of small equipment is solved, achieving stable support, shock absorption and heat dissipation effects for the equipment, and simplifying the installation process.

CN223594853UActive Publication Date: 2025-11-25BEIJING HUAFU ENG
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202520081779.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-01-14
Publication Date
2025-11-25
Estimated Expiration
2035-01-14

AI Technical Summary

Technical Problem

The existing shock absorption and support structures for small equipment cannot be flexibly adjusted to meet the needs of various equipment, and also suffer from problems such as bulky structure, complex installation, and poor heat dissipation performance.

Method used

A flexibly adjustable base is designed, comprising a first crossbeam, a second crossbeam, a node plate, connecting bolts, and a vibration damping structure. The base is connected to the connecting plate and bolts to achieve a quick and stable connection. Combined with vibration damping beads and heat dissipation fins, it reduces vibration transmission and dissipates heat.

Benefits of technology

It achieves stable support, effective shock absorption, and good heat dissipation for the equipment, extends its service life, simplifies the installation and maintenance process, and is suitable for a variety of small equipment.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN223594853U_ABST
    Figure CN223594853U_ABST
Patent Text Reader

Abstract

The utility model discloses a small equipment transition base capable of being flexibly adjusted, which relates to the field of mechanical equipment and structurally comprises a first cross beam, a second cross beam, a gusset plate and a butt-joint bolt, and the cross beams are connected and fixed through the gusset plate. One end of the base is provided with a butt joint structure for being connected with a damping structure, and the other end is connected with the pump body. The damping structure comprises a mounting plate, a vibration bin, damping beads and heat dissipation fins, and can effectively absorb vibration in equipment operation and reduce the vibration transmitted to other structure parts. Meanwhile, vibration energy of the damping beads is effectively reduced, heat is rapidly dissipated through the cooling fins, and stable operation of equipment is guaranteed. The base has good flexibility and structural stability, and is suitable for transition installation of various small devices.
Need to check novelty before this filing date? Find Prior Art

Description

TECHNICAL FIELD

[0001] The utility model relates to mechanical equipment field, concretely, relate to a small -size equipment transition base of flexible deployment. BACKGROUND

[0002] With the progress of science and technology and the continuous development of equipment technology, especially in the application of small -size equipment, damping technology gradually becomes an important factor influencing the performance of equipment. The traditional equipment will produce vibration when running, and these vibrations can be transmitted to the connecting parts through the equipment, and then affect the stability, service life and working efficiency of the equipment. Therefore, how to effectively isolate the vibration, reduce the vibration transmission, and ensure the stability of the equipment in the long running process has become an important problem that must be considered when designing the base of small -size equipment.

[0003] The existing damping system can reduce vibration to some extent, but usually has problems such as heavy structure, complex installation, poor heat dissipation performance. Especially in the transition installation process of some small -size equipment, the damping and supporting structure cannot be flexibly deployed, and cannot meet the needs of various equipment applications. Therefore, how to design a base structure that can provide stable support, effectively reduce vibration and have good heat dissipation performance has become a problem to be solved in current technology.

[0004] For the problems in the related art, no effective solution has been proposed so far. CONTENT OF THE UTILITY MODEL

[0005] In view of the problems in the related art, the utility model provides a small -size equipment transition base that can be flexibly deployed to overcome the above technical problems existing in the prior art.

[0006] Therefore, the utility model adopts the following specific technical solutions:

[0007] A small -size equipment transition base that can be flexibly deployed, comprising a base structure, the base structure comprising a first cross beam, a second cross beam, a node plate, a butt joint bolt, the first cross beam being butt jointed with the second cross beam, the first cross beam and the second cross beam being connected with the node plate, the node plate being connected with the butt joint bolt, one end of the first cross beam being connected with a butt joint structure, the butt joint structure being connected with a damping structure.

[0008] Further, the butt joint structure comprises a butt joint plate and a butt joint ear, one side of the butt joint plate being fixedly provided with the butt joint ear.

[0009] Further, the damping structure comprises a mounting plate, a vibration bin, a damping bead and a heat dissipation fin, the vibration bin being formed in the mounting plate, the damping bead being placed in the vibration bin, the peripheral side of the mounting plate being provided with the heat dissipation fin.

[0010] Further, the bottom end of the first cross beam and the second cross beam is fixedly connected with a butt joint plate, and the butt joint plate is fixedly connected with a mounting plate.

[0011] Further, the top flange of the first cross beam and the second cross beam is provided with an elliptical hole every mm.

[0012] The utility model discloses the beneficial effect is: through shock attenuation structure effectively reduces the vibration transmission in the equipment operation, protects the equipment stability, and the heat dissipation fin on shock attenuation structure can effectively dissipate the heat in the vibration process, avoids the equipment overheating, prolongs the service life, and the base design is compact, has the characteristic of flexible deployment, is suitable for a variety of different small -size equipment, is connected through butt joint plate and bolt, realizes the quick stable connection of base and shock attenuation structure, pump body, simplifies the installation and maintenance process. BRIEF DESCRIPTION OF DRAWINGS

[0013] In order to more clearly illustrate the technical scheme in the embodiment of the utility model or prior art, the following will be briefly introduced the drawing needed to be used in the embodiment, and obviously, the drawing in the following description only some embodiments of the utility model, for those skilled in the art, under the premise of not paying creative labor, still can obtain other drawings according to these drawings.

[0014] Fig. 1 It is the main body structure schematic diagram of a small -size equipment transition base of flexible deployment according to the utility model embodiment;

[0015] Fig. 2 It is the butt joint structure schematic diagram of a small -size equipment transition base of flexible deployment according to the utility model embodiment;

[0016] Fig. 3 It is the shock attenuation structure schematic diagram of a small -size equipment transition base of flexible deployment according to the utility model embodiment.

[0017] In the drawing:

[0018] 1, base structure;101, first cross beam;102, second cross beam;103, node plate;104, butt joint bolt;2, butt joint structure;201, butt joint plate;202, butt joint lug;3, shock attenuation structure;301, mounting plate;302, vibration bin;303, shock attenuation pearl;304, heat dissipation fin. DETAILED DESCRIPTION

[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] According to an embodiment of the present invention, a small, flexible equipment transition base is provided.

[0021] Example 1;

[0022] like Figs. 1-3 As shown, the flexibly adjustable small equipment transition base according to an embodiment of the present utility model includes a base structure 1. The base structure 1 includes a first crossbeam 101, a second crossbeam 102, a node plate 103, and connecting bolts 104. The first crossbeam 101 is connected to the second crossbeam 102. A node plate 103 is connected between the first crossbeam 101 and the second crossbeam 102. Connecting bolts 104 are connected to the node plate 103. A connecting structure 2 is connected to one end of the first crossbeam 101. A shock-absorbing structure 3 is connected to the connecting point of the first crossbeam 101 and the second crossbeam 102. The node plate 103 is L-shaped. The node plate 103 is bolted to the first crossbeam 101 and the second crossbeam 102 through connecting bolts 104 and elliptical holes. The connecting structure 2 is used for the crossbeam to connect to the shock-absorbing structure 3 and for the shock-absorbing structure 3 to connect to the pump body.

[0023] The docking structure 2 includes a docking plate 201 and a docking lug 202. The docking lug 202 is fixedly provided on one side of the docking plate 201. The docking plate 201 of the docking structure 2 has two parts, upper and lower. A shock-absorbing structure 3 is fixedly connected between the docking plates 201. The other ends of the two docking plates 201 are respectively fixed to the docking beam and the pump body. Bolts are used to pass through the docking lugs 202 for fixing the docking plate 201 to the shock-absorbing structure 3 and to the elliptical hole of the beam.

[0024] The damping structure 3 comprises a mounting plate 301, a vibration bin 302, damping beads 303 and heat dissipation fins 304, the vibration bin 302 is arranged in the mounting plate 301, the damping beads 303 are arranged in the vibration bin 302, the heat dissipation fins 304 are arranged on the circumferential side of the mounting plate 301, the bottom ends of the first cross beam 101 and the second cross beam 102 are fixedly connected to the butt joint plate 201, the mounting plate 301 is fixedly connected to the butt joint plate 201, the top flanges of the first cross beam 101 and the second cross beam 102 are provided with elliptical holes at intervals of 250 mm, the mounting plate 301 is metal with good heat conduction function, the damping beads 303 in the vibration bin 302 are metal balls, the vibration between the damping beads 303 can reduce the vibration transmitted from the pump body to the butt joint structure 2 and the vibration in the vibration bin 302, and the heat generated by the vibration of the damping beads 303 is transmitted to the heat dissipation fins 304 through the mounting plate 301, and the heat dissipation fins 304 conduct the heat to the air through heat exchange.

[0025] In order to facilitate the understanding of the above technical scheme of the utility model, the working principle or operation mode of the utility model in the actual process will be described in detail below.

[0026] In summary, according to the above technical scheme of the utility model, the butt joint point of the first cross beam 101 and the second cross beam 102 is provided with a node plate 103, the node plate 103 is L-shaped, the node plate 103 is fixedly connected to the first cross beam 101 and the second cross beam 102 through butt joint bolts 104 and elliptical holes, the butt joint structure 2 is used for the butt joint of the cross beam and the damping structure 3 and is used for the butt joint of the damping structure 3 and the pump body, the butt joint plate 201 of the butt joint structure 2 is provided with two upper and lower butt joint plates 201, the damping structure 3 is fixedly connected between the two butt joint plates 201, the other ends of the two butt joint plates 201 are fixedly connected to the cross beam and the pump body respectively, the butt joint ears 202 are used for penetrating the bolts, the fixed butt joint of the butt joint plate 201 and the damping structure 3 and the fixed butt joint of the elliptical hole of the cross beam are achieved, the mounting plate 301 is metal with good heat conduction function, the damping beads 303 in the vibration bin 302 are metal balls, the vibration between the damping beads 303 can reduce the vibration transmitted from the pump body to the butt joint structure 2 and the vibration in the vibration bin 302, and the heat generated by the vibration of the damping beads 303 is transmitted to the heat dissipation fins 304 through the mounting plate 301, and the heat dissipation fins 304 conduct the heat to the air through heat exchange.

[0027] The above merely describes the preferred embodiments of the utility model and is not used to limit the utility model, and any modification, equivalent replacement, improvement, etc. made within the spirit and principle of the utility model should be included in the protection scope of the utility model.

Claims

1. A flexible deployable small device transition base, characterized by, The base structure (1) comprises a first cross beam (101), a second cross beam (102), a node plate (103), and a butt bolt (104), the first cross beam (101) is butt jointed with the second cross beam (102), the node plate (103) is connected between the first cross beam (101) and the second cross beam (102), the butt bolt (104) is connected on the node plate (103), one end of the first cross beam (101) is connected with a butt joint structure (2), and the butt joint structure (2) is connected with a damping structure (3).

2. The flexible deployment transition base for small devices of claim 1, wherein, The butt joint structure (2) comprises a butt joint plate (201) and a butt joint lug (202), one side of the butt joint plate (201) is fixedly provided with the butt joint lug (202).

3. The flexible deployment transition base for small devices of claim 2, wherein, The damping structure (3) comprises a mounting plate (301), a vibration bin (302), a damping bead (303), and a heat dissipation fin (304), the vibration bin (302) is arranged in the mounting plate (301).

4. The flexible deployment transition base for small devices of claim 3, wherein, The damping bead (303) is placed in the vibration bin (302), and the heat dissipation fin (304) is arranged on the periphery of the mounting plate (301).

5. The flexible deployable small equipment transition pedestal of claim 4, wherein, The bottom end of the first cross beam (101) and the second cross beam (102) is fixedly connected with the butt joint plate (201), and the mounting plate (301) is fixedly connected on the butt joint plate (201).

6. The flexible deployable small equipment transition pedestal of claim 5, wherein, Elliptical holes are arranged on the top flanges of the first cross beam (101) and the second cross beam (102) every 250mm.