Plate-type condenser supporting structure
By introducing counter-current pressure-reducing components and multi-stage damping structures into the plate condenser support structure, the problem of localized casing damage caused by inertial forces was solved, multi-point contact and multi-stage damping were achieved, and the equipment's seismic resistance and service life were improved.
Patent Information
- Application Number
- CN202520356330.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-03
- Publication Date
- 2026-02-17
- Estimated Expiration
- 2035-03-03
AI Technical Summary
During vibration, the existing support structure of plate condensers is prone to damage in local areas of the casing due to inertial forces. Furthermore, the existing shock absorption structure is simple and cannot effectively alleviate fatigue damage caused by long-term vibration.
It adopts multiple sets of opposite pressure reduction components and multi-level damping structure, including redirection arm, slide, bidirectional pressure relief spring, main pressure relief spring, micro-motion telescopic rod, damping spring and flexible curved plate, to form a multi-point and multi-level damping effect. Through the combination of redirection arm and slide, sliding connection and multi-point contact are achieved to reduce the impact of inertial force on the casing.
It effectively diffuses and disperses the impact force of the plate condenser, reduces the impact on the casing at a single location, and improves the service life and vibration damping capacity of the equipment.
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Figure CN223925549U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to condenser technical field, concretely relates to a plate type condenser support structure. BACKGROUND
[0002] The plate type condenser is a kind of high-efficiency heat exchange equipment, is widely used in refrigeration, air conditioning, chemical industry, energy and multiple fields.Such as its working principle is by the gaseous refrigerant of high temperature and high pressure cooling and condenses into liquid, releases heat, to realize the key step of refrigeration cycle.
[0003] In the existing plate type condenser design, support structure is mainly used to fix the condenser with shell or other mounting base and is fixedly connected, ensures that condenser remains stable during operation.The traditional support structure usually adopts bolt, nut and other mechanical connecting pieces, and the frame or base of condenser is rigidly fixed with shell.This fixing mode can provide sufficient mechanical strength, but since the plate type condenser is usually composed of multiple metal plates, the overall weight is larger.When the whole machine (such as air conditioning unit, refrigeration equipment, etc.) produces vibration during operation, the inertia force of condenser due to its larger mass will be significantly transmitted to the shell, especially in the case of high-frequency vibration or impact load, the inertia of condenser will exert larger pulling force on the shell, resulting in deformation or damage of the shell.
[0004] Therefore, the prior art further designs support structure with shock-absorbing pressure relief capacity, such as setting rubber pad, shock-absorbing elastic piece and the like to support plate type condenser, but the shock-absorbing capacity of such support structure is relatively single, and most support structures still transmit the inertia of plate type condenser in single linear direction, although the shock-absorbing capacity is reduced by energy absorption, and the impact degree is reduced, but long-time single contact point still causes fatigue damage to the local area of shell, thereby affecting the service life of equipment. UTILITY MODEL CONTENTS
[0005] The utility model aims at providing a plate type condenser support structure to solve the technical problem that the local area of shell is prone to damage due to long-time impact of single contact point in the prior art.
[0006] To solve the above technical problems, the utility model specifically provides the following technical scheme:
[0007] The application discloses a plate condenser supporting structure which comprises a bottom mounting plate, the upper surface of the bottom mounting plate is fixedly provided with a plate condenser, and the lower surface of the bottom mounting plate is provided with a plurality of groups of different-direction pressure relief assemblies.
[0008] As a preferred scheme of the application, a main pressure relief spring is arranged between the plurality of redirecting arms, and the two ends of the main pressure relief spring are connected with the bottom mounting plate and the machine shell respectively.
[0009] As a preferred scheme of the application, the upper surface of the bottom mounting plate is connected with a top mounting plate through a supporting shaft, the top mounting plate is fixedly connected with the plate condenser, the periphery of the top mounting plate is provided with a micro-motion telescopic rod, and the micro-motion telescopic rod is connected with the machine shell.
[0010] As a preferred scheme of the application, the micro-motion telescopic rod comprises a fixed joint fixedly connected with the top mounting plate, a shock-absorbing spring is arranged in the fixed joint, the shock-absorbing spring is connected with a telescopic joint, the telescopic joint is coaxially and slidingly arranged in the fixed joint, and the telescopic joint is connected with the machine shell.
[0011] As a preferred scheme of the application, the upper surface of the top mounting plate is provided with a plurality of flexible curved plates, the vertical length of the flexible curved plate is greater than the vertical length of the fixed joint, at least three flexible curved plates are arranged in a circular array around a vertical straight line as a rotating shaft to form a curved plate shock-absorbing structure, and a plurality of curved plate shock-absorbing structures are equidistantly arranged on the upper surface of the top mounting plate.
[0012] Compared with the prior art, the application has the following beneficial effects:
[0013] The utility model discloses a bottom mounting plate below is provided with multiple groups of different direction pressure reducing components, and each group of different direction pressure reducing components is installed on the casing in the mode of multiple point connection to spread the impact force of the plate type condenser to the casing from multiple points and different directions to reduce the damage of the casing caused by the repeated impact of the plate type condenser on single position when the unit is vibrating. Moreover, the utility model discloses still be provided with top mounting plate, be provided with micro -adjusting telescopic link and flexible curved plate on top mounting plate upper surface, and the flexible curved plate is outward -expanding formula and casing multiple point contact to form the structure that can slow -jolt pressure relief on the upper end surface and lower end surface of plate type condenser respectively, and then when the plate type condenser moves along the inertia of its length direction, can play the shock -absorbing effect at both ends, thereby improve the slow -jolt ability of support structure, improve the service life of overall unit. BRIEF DESCRIPTION OF DRAWINGS
[0014] In order to more clearly illustrate the embodiment of the utility model or the technical scheme in the prior art, the following will briefly introduce the drawings needed to be used in the embodiment or the prior art description. Obviously, the drawings in the following description are only exemplary, and for those skilled in the art, other implementation drawings can be obtained according to the provided drawings without creative labor.
[0015] Figure 1 It is the overall structure schematic diagram of the utility model;
[0016] Figure 2 It is the utility model Figure 1 The enlarged view of A in the utility model;
[0017] Figure 3 It is the partial structure sectional view of the utility model, specifically the internal structure schematic diagram of micro -adjusting telescopic link.
[0018] The reference numerals in the drawing represent as follows:
[0019] 1, bottom mounting plate;2, plate type condenser;3, different direction pressure reducing component;4, direction changing arm;5, sliding seat;6, slide shaft;7, slide block;8, two -way pressure relief spring;9, main pressure relief spring;10, telescopic set;11, support shaft;12, top mounting plate;13, micro -adjusting telescopic link;14, fixed section;15, slow -jolt spring;16, telescopic section;17, flexible curved plate;18, curved plate slow -jolt structure. DETAILED DESCRIPTION
[0020] Clearly, the described embodiments are merely a part of the embodiments of the present application, rather than all the embodiments. Based on the embodiments of the present application, all other embodiments obtained by those skilled in the art without creative labor fall within the scope of protection of the present application.
[0021] As shown in Figures 1 to 3 The utility model provides a plate type condenser support structure, including bottom mounting plate 1, the upper surface of bottom mounting plate 1 is fixedly installed with plate type condenser 2, and the lower surface is provided with a plurality of groups of different direction pressure relief components 3, and the different direction pressure relief component 3 includes a plurality of direction changing arms 4, the plurality of direction changing arms 4 are arranged on the lower surface of bottom mounting plate 1 at equal angles around a vertical straight line, one end of each direction changing arm 4 is rotatably connected with bottom mounting plate 1, the other end is rotatably connected with a sliding seat 5, the sliding seat 5 is slidably arranged in a sliding block 7 through a sliding shaft 6, and the two sides of the sliding seat 5 are provided with bidirectional pressure relief springs 8 respectively, the bidirectional pressure relief springs 8 are sleeved outside the sliding shaft 6, and the two ends of the bidirectional pressure relief springs 8 are connected to the sliding seat 5 and the sliding block 7 respectively, and the sliding block 7 is fixedly installed on the shell.
[0022] By setting the different direction pressure relief component 3, the pressure of the plate type condenser 2 can be transmitted to the sliding seat 5 through the direction changing arm 4, when the sliding seat 5 slides on the sliding shaft 6, the bidirectional pressure relief springs 8 on the two sides of the sliding seat 5 are used for shock absorption and pressure relief. The sliding block 7 can be fixed and locked on the shell through fixing bolts.
[0023] Further, as shown in Figure 2 The utility model provides a plate type condenser support structure, including bottom mounting plate 1, the upper surface of bottom mounting plate 1 is fixedly installed with plate type condenser 2, and the lower surface is provided with a plurality of groups of different direction pressure relief components 3, and the different direction pressure relief component 3 includes a plurality of direction changing arms 4, the plurality of direction changing arms 4 are arranged on the lower surface of bottom mounting plate 1 at equal angles around a vertical straight line, one end of each direction changing arm 4 is rotatably connected with bottom mounting plate 1, the other end is rotatably connected with a sliding seat 5, the sliding seat 5 is slidably arranged in a sliding block 7 through a sliding shaft 6, and the two sides of the sliding seat 5 are provided with bidirectional pressure relief springs 8 respectively, the bidirectional pressure relief springs 8 are sleeved outside the sliding shaft 6, and the two ends of the bidirectional pressure relief springs 8 are connected to the sliding seat 5 and the sliding block 7 respectively, and the sliding block 7 is fixedly installed on the shell.
[0024] The telescopic sleeve 10 can select the telescopic rod in the prior art, and the fixed part of the telescopic rod is fixedly installed on the shell, and the movable part is slidably arranged in the fixed part. The setting of the main pressure relief spring 9 combines the different direction pressure relief component 3 to form a two-stage shock absorption structure, thereby improving the shock absorption capacity of the overall device.
[0025] And, in the device, the upper surface of bottom mounting plate 1 is connected with top mounting plate 12 through support shaft 11, top mounting plate 12 is fixedly connected with plate type condenser 2, and the periphery of top mounting plate 12 is provided with micro telescopic rod 13, and micro telescopic rod 13 is connected with the shell.
[0026] The micro telescopic rod 13 comprises a fixed joint 14 fixedly connected with the top mounting plate 12, a shock absorbing spring 15 arranged in the fixed joint 14, and a telescopic joint 16 connected with the shock absorbing spring 15 and coaxially slidingly arranged in the fixed joint 14. The telescopic joint 16 is connected with the casing.
[0027] As shown in Figure 1 and Figure 3 , the top surface of the top mounting plate 12 is provided with a plurality of flexible curved plates 17, the vertical length of the flexible curved plates 17 is greater than the vertical length of the fixed joint 14, at least three flexible curved plates 17 are arranged in a circular array with a vertical straight line as a rotation axis to form a curved plate shock absorbing structure 18, and a plurality of curved plate shock absorbing structures 18 are equidistantly arranged on the top surface of the top mounting plate 12
[0028] By arranging the top mounting plate 12 above the plate condenser 2 and synchronously arranging the pressure relief structure on the top mounting plate 12, the bidirectional pressure relief function of the plate condenser 2 as a whole can be realized. That is, when the plate condenser 2 moves downward or linearly downward, the device can play a pressure relief role at both ends. Moreover, by using the combination of the opposite pressure relief assembly 3, the main pressure relief spring 9, the micro telescopic rod 13, the shock absorbing spring 15 and the flexible curved plate 17, a multi-stage pressure relief structure is formed for the supporting structure, so that the shock absorbing capacity of the supporting mechanism is greatly improved.
[0029] The above examples are only exemplary embodiments of the present application and are not used to limit the present application, and the protection scope of the present application is defined by the claims. Those skilled in the art can make various modifications or equivalent replacements to the present application within the spirit and protection scope of the present application, and such modifications or equivalent replacements are also regarded as falling within the protection scope of the present application.
Claims
1. A plate condenser support structure, characterized by, The application relates to a plate condenser with a bottom mounting plate (1), a plurality of groups of opposite pressure relief components (3) arranged on the lower surface of the bottom mounting plate (1), a plurality of redirecting arms (4) arranged on the lower surface of the bottom mounting plate (1) at equal angles around a vertical straight line, one end of each redirecting arm (4) being rotationally connected to the bottom mounting plate (1), the other end being rotationally connected to a sliding seat (5), the sliding seat (5) being slidably arranged in a sliding track block (7) through a sliding shaft (6), a bidirectional pressure relief spring (8) being arranged on the two sides of the sliding seat (5), the bidirectional pressure relief spring (8) being sleeved outside the sliding shaft (6), the two ends of the bidirectional pressure relief spring (8) being connected to the sliding seat (5) and the sliding track block (7), and the sliding track block (7) being fixedly arranged on a casing.
2. A plate condenser support structure according to claim 1, wherein A main pressure relief spring (9) is arranged between the plurality of redirecting arms (4), the two ends of the main pressure relief spring (9) being connected to the bottom mounting plate (1) and the casing, and the main pressure relief spring (9) being internally provided with an expansion sleeve (10), the two ends of the expansion sleeve (10) being connected to the bottom mounting plate (1) and the casing.
3. A plate condenser support structure according to claim 2, wherein The upper surface of the bottom mounting plate (1) is connected to a top mounting plate (12) through a supporting shaft (11), the top mounting plate (12) being fixedly connected to the plate condenser (2), and the periphery of the top mounting plate (12) being provided with a micro-motion expansion rod (13), the micro-motion expansion rod (13) being connected to the casing.
4. A plate condenser support structure according to claim 3, wherein The micro-motion expansion rod (13) comprises a fixed joint (14) fixedly connected to the top mounting plate (12), the fixed joint (14) being internally provided with a shock absorbing spring (15), the shock absorbing spring (15) being connected to an expansion joint (16), the expansion joint (16) being coaxially and slidably arranged in the fixed joint (14), and the expansion joint (16) being connected to the casing.
5. A plate condenser support structure according to claim 4, wherein The upper surface of the top mounting plate (12) is provided with a plurality of flexible curved plates (17), the vertical length of the flexible curved plate (17) being greater than the vertical length of the fixed joint (14), at least three flexible curved plates (17) being arranged in a circular array around a vertical straight line as a rotating shaft to form a curved plate shock absorbing structure (18), and a plurality of curved plate shock absorbing structures (18) being equidistantly arranged on the upper surface of the top mounting plate (12).