Container frame

By designing the container frame, increasing the distance between the equipment and the ground and installing a shock absorbing mechanism, the problem of controlling the environment of the line in the existing skid-mounted structure is solved, and the installation efficiency and reliability of the equipment are improved.

CN222822944UActive Publication Date: 2025-05-02SICHUAN RONGTENG AUTOMATION EQUIP +2
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Patent Information

Application Number
CN202421789819.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-26
Publication Date
2025-05-02
Estimated Expiration
2034-07-26

AI Technical Summary

Technical Problem

In the existing skid-mounted structure, the frequency converter and PLC are directly installed on the skid seat, causing the control line environment to be humid and thus aggravate the corrosion of the terminals.

Method used

Design a container frame, including the main frame, operating room, equipment base and water tank base. The equipment base is installed on the upper end surface of the operating room to increase the distance between the equipment and the ground to avoid moisture problems. At the same time, a shock absorbing mechanism is installed between the equipment base and the operating room to buffer vibration during the hoisting process.

Benefits of technology

It effectively avoids the humidity of the control line environment, reduces the risk of corrosion at the terminals, and improves installation efficiency and equipment reliability.

✦ Generated by Eureka AI based on patent content.

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    Figure CN222822944U_ABST
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Abstract

The utility model relates to the field of skid-mounted frames, and discloses a container frame which comprises a main frame used for bearing equipment. The operation room is arranged at the bottom of the main frame and is used for controlling equipment; the equipment base is mounted on the upper end surface of the operation room and is used for fixing equipment; the water tank base is installed in the main frame and used for fixing the cooling water tank. According to the utility model, the equipment base is arranged on the upper end face of the operation room, so that a larger distance is formed between the equipment and the ground, a control circuit environment is prevented from being humid due to overhigh ground surface humidity, and the problem of humid control circuit environment is solved; as the operation room is integrated in the main frame, repeated wiring after transportation and installation of the main frame can be avoided, and the installation efficiency is improved.
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Description

Technical Field

[0001] The utility model relates to the field of skid-mounted frames, in particular to a container frame. Background Art

[0002] ‌ Skid-mounted is a form of equipment frame and equipment as a whole. Usually a group of equipment is fixed on a chassis made of angle steel or I-beam, which can be moved and installed as a whole. The existing skid-mounted structure installs a plunger pump, pressure transmitter, frequency converter and PLC in a board room with a skid seat; the sewage suction pipeline and the clean water suction pipeline enter the board room and are connected to the inlets of the two plunger pumps through valves at the same time; one end of the sewage outlet pipeline and the clean water outlet pipeline are connected to the outlets of the two plunger pumps through valves, and the other ends pass through the board room respectively; one end of the high-pressure discharge pipeline is connected to the outlets of the two plunger pumps through a pressure regulating valve, and the other end passes through the board room; pressure transmitters are installed at the outlets of the two plunger pumps respectively, and the pressure transmitters are connected to the input end of the PLC, and the output end of the PLC is connected to the motors in the two plunger pumps through the frequency converter. The equipment can be transported as a whole in a skid-mounted manner and connected on site to achieve separate or mixed injection of clean water and sewage.

[0003] The existing skid-mounted structure has the following problems: the inverter and PLC are directly installed on the skid. Since the distance between the above control equipment and the ground is small, if the surface humidity is high, the control line environment will be humid, which will further aggravate the corrosion of the terminal.

[0004] Based on the above situation, there is an urgent need for a container frame to solve the problem of humid control line environment. Utility Model Content

[0005] The purpose of the utility model is to: for the existing skid-mounted structure, the frequency converter and the PLC are directly installed on the skid seat. Since the distance between the above-mentioned control equipment and the ground is small, if the surface humidity is high, it will cause the control line environment to be humid, thereby aggravating the corrosion of the terminal, thereby solving the problem of the humid control line environment.

[0006] The technical solution of the utility model is as follows:

[0007] A container frame, comprising:

[0008] Main frame, used to carry equipment;

[0009] An operation room, arranged at the bottom of the main frame and used for controlling equipment;

[0010] An equipment base, installed on the upper end surface of the operating room and used to fix the equipment;

[0011] The water tank base is installed in the main frame and is used to fix the cooling water tank.

[0012] In the existing skid-mounted structure, the inverter and PLC are directly installed on the skid base. Since the distance between the above-mentioned control equipment and the ground is small, if the surface humidity is high, the control line environment will be humid, which will further aggravate the corrosion of the wiring terminals. In this solution, since the equipment base is installed on the upper end surface of the operating room, there is a large distance between the equipment and the ground, which can avoid the control line environment being humid due to excessive surface humidity, thus solving the problem of humid control line environment; since the operating room is integrated into the main frame, it can avoid repeated wiring after transportation and installation of the main frame, thereby improving installation efficiency.

[0013] Furthermore, since most skid-mounted structures are hoisted, in order to protect the equipment in the main frame, one feasible solution is: a shock-absorbing mechanism is installed between the equipment base and the operating room. When this solution is adopted, the shock-absorbing mechanism can buffer the vibration caused by the contact between the main frame and the ground during the hoisting process, thereby protecting the equipment.

[0014] Furthermore, the present solution does not limit the specific structure of the shock absorbing mechanism. One feasible solution is: the shock absorbing mechanism includes an upper base connected to the equipment base, and a lower base connected to the operating room, and a damper and / or spring is installed between the upper base and the lower base. When this solution is adopted, due to the buffering effect of the damper and / or spring, the equipment base and the operating room are in elastic contact.

[0015] Furthermore, in order to reduce the force on the damping and / or spring, one feasible solution is that the shock absorbing mechanism also includes an auxiliary component for dispersing the force on the damping and / or spring. When this solution is adopted, the force on the damping and / or spring is shared by the auxiliary component, thereby ensuring the reliability of the shock absorbing mechanism.

[0016] Furthermore, the present solution does not solely limit the specific structure of the auxiliary component. One feasible solution is: the auxiliary component includes a movable block arranged between an upper base and a lower base, a first auxiliary damper is installed between the movable block and the upper base, and a second auxiliary damper is installed between the movable block and the lower base. A triangular structure is formed between the damper, the first auxiliary damper and the second auxiliary damper. When this solution is adopted, the triangular structure has stability and can generate sufficient supporting force for the base of the equipment.

[0017] Furthermore, in order to facilitate lifting, one feasible solution is: the main frame is a rectangular parallelepiped and a lifting structure is provided on the main frame, the lifting structure includes lifting blocks provided at the four top corners of the main frame, and a plurality of lifting buckles provided on the four top edges of the main frame. When this solution is adopted, the lifting rope is fixed to the four lifting blocks, and auxiliary lifting straps are added to the lifting buckles as needed to ensure the firmness of the lifting.

[0018] Compared with the existing technology, the beneficial effects of the utility model are:

[0019] 1. Since the equipment base is installed on the upper end surface of the operating room, there is a large distance between the equipment and the ground, which can prevent the control line environment from being humid due to excessive surface humidity, thus solving the problem of humid control line environment; since the operating room is integrated into the main frame, it can avoid repeated wiring after transportation and installation of the main frame, thus improving installation efficiency;

[0020] Second, since a shock absorbing mechanism is installed between the equipment base and the operating room, the shock absorbing mechanism can buffer the vibration caused by the contact between the main frame and the ground during the hoisting process, thereby protecting the equipment;

[0021] 3. Since the shock absorbing mechanism further includes an auxiliary component for dispersing the damping and / or spring force, the damping and / or spring force is shared by the auxiliary component, thereby ensuring the reliability of the shock absorbing mechanism. BRIEF DESCRIPTION OF THE DRAWINGS

[0022] Figure 1 This is a schematic diagram of the overall first viewing angle structure of an embodiment of the utility model;

[0023] Figure 2 It is a schematic diagram of the overall structure of the embodiment of the utility model from a second viewing angle;

[0024] Figure 3 This is a schematic diagram of the structure of the equipment base of an embodiment of the utility model;

[0025] Figure 4 This is a schematic diagram of the structure of the shock absorbing mechanism of an embodiment of the utility model;

[0026] Figure 5 for Figure 1 A in the enlarged view;

[0027] Figure 6 for Figure 2 Enlarged view of point B in .

[0028] Reference numerals:

[0029] 1. Main frame; 2. Operation room; 3. Equipment base; 4. Shock absorption mechanism; 5. Water tank base;

[0030] 11. Lifting block; 12. Lifting buckle;

[0031] 41. upper base; 42. lower base; 43. damping; 44. spring; 45. auxiliary components;

[0032] 451, movable block; 452, first auxiliary damping; 453, second auxiliary damping. DETAILED DESCRIPTION

[0033] It should be noted that relational terms such as "first" and "second" are used only to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Moreover, the terms "include", "comprises" or any other variants thereof are intended to cover non-exclusive inclusion, so that a process, method, article or device including a series of elements includes not only those elements, but also other elements not explicitly listed, or also includes elements inherent to such process, method, article or device. In the absence of further restrictions, an element defined by the sentence "comprises a ..." does not exclude the existence of other identical elements in the process, method, article or device including the element.

[0034] The features and performance of the present invention are further described in detail below in conjunction with the embodiments.

[0035] Example:

[0036] Please refer to Figure 1 and Figure 2 , a container frame, comprising:

[0037] Main frame 1, used to carry equipment;

[0038] An operating room 2, which is arranged at the bottom of the main frame 1 and is used to control the equipment;

[0039] The equipment base 3 is installed on the upper end surface of the operating room 2 and is used to fix the equipment;

[0040] The water tank base 5 is installed in the main frame 1 and is used to fix the cooling water tank.

[0041] In the existing skid-mounted structure, the inverter and PLC are directly installed on the skid base. Since the distance between the above-mentioned control equipment and the ground is small, if the surface humidity is high, the control line environment will be humid, which will further aggravate the corrosion of the wiring terminals. In this solution, since the equipment base 3 is installed on the upper end surface of the operating room 2, there is a large distance between the equipment and the ground, which can avoid the control line environment being humid due to excessive surface humidity, thus solving the problem of humid control line environment; since the operating room 2 is integrated in the main frame 1, it can avoid repeated wiring of the main frame 1 after transportation and installation, thereby improving the installation efficiency.

[0042] Reference Figure 3 Since most skid-mounted structures are hoisted, in order to protect the equipment in the main frame 1, one feasible solution is: a shock absorbing mechanism 4 is installed between the equipment base 3 and the operating room 2. When this solution is adopted, the shock absorbing mechanism 4 can buffer the vibration caused by the contact between the main frame 1 and the ground during the hoisting process, thereby protecting the equipment.

[0043] Reference Figure 4 This solution does not limit the specific structure of the shock absorbing mechanism 4. One feasible solution is: the shock absorbing mechanism 4 includes an upper base 41 connected to the equipment base 3, and a lower base 42 connected to the operating room 2. A damper 43 and / or a spring 44 are installed between the upper base 41 and the lower base 42. When this solution is adopted, due to the buffering effect of the damper 43 and / or the spring 44, the equipment base 3 and the operating room 2 are in elastic contact.

[0044] In order to reduce the force on the damping 43 and / or the spring 44, one feasible solution is that the shock absorbing mechanism 4 also includes an auxiliary component 45 for dispersing the force on the damping 43 and / or the spring 44. When this solution is adopted, the auxiliary component 45 shares the force on the damping 43 and / or the spring 44, thereby ensuring the reliability of the shock absorbing mechanism 4.

[0045] The present solution does not limit the specific structure of the auxiliary component 45. One feasible solution is: the auxiliary component 45 includes a movable block 451 arranged between the upper base 41 and the lower base 42, a first auxiliary damper 452 is installed between the movable block 451 and the upper base 41, and a second auxiliary damper 453 is installed between the movable block 451 and the lower base 42. A triangular structure is formed between the damper 43, the first auxiliary damper 452 and the second auxiliary damper 453. When this solution is adopted, the triangular structure has stability and can generate sufficient supporting force for the equipment base 3.

[0046] Reference Figure 5 and Figure 6 In order to facilitate lifting, one feasible solution is: the main frame 1 is a rectangular parallelepiped and a lifting structure is provided on the main frame 1, the lifting structure includes lifting blocks 11 provided at the four top corners of the main frame 1, and a plurality of lifting buckles 12 provided on the four top sides of the main frame 1. When this solution is adopted, the lifting rope is fixed to the four lifting blocks 11, and auxiliary lifting straps are added to the lifting buckles 12 as needed to ensure the firmness of the lifting.

[0047] In order to solve the problem of humid control line environment, in this solution, since the equipment base 3 is installed on the upper end surface of the operating room 2, there is a large distance between the equipment and the ground, which can avoid excessive surface humidity causing humid control line environment, thus solving the problem of humid control line environment; since the operating room 2 is integrated in the main frame 1, it can avoid repeated wiring of the main frame 1 after transportation and installation, thereby improving installation efficiency.

[0048] In order to protect the equipment from greater impact, in this solution, a shock absorbing mechanism 4 is installed between the equipment base 3 and the operating room 2. The shock absorbing mechanism 4 can buffer the vibration caused by the contact between the main frame 1 and the ground during the lifting process, thereby protecting the equipment.

[0049] In order to ensure the reliability of the shock absorbing mechanism 4, in the present solution, since the shock absorbing mechanism 4 also includes an auxiliary component 45 for dispersing the force of the damping 43 and / or the spring 44, the auxiliary component 45 shares the force of the damping 43 and / or the spring 44, thereby ensuring the reliability of the shock absorbing mechanism 4.

[0050] The above description of the disclosed embodiments enables one skilled in the art to implement or use the present invention. Various modifications to these embodiments will be apparent to one skilled in the art, and the general principles defined herein may be implemented in other embodiments without departing from the spirit or scope of the present invention. Therefore, the present invention will not be limited to the embodiments shown herein, but rather to the widest scope consistent with the principles and novel features disclosed herein.

Claims

1. A container frame, characterized in that: include: A main frame (1) for carrying equipment; An operating room (2), arranged at the bottom of the main frame (1) and used for controlling equipment; An equipment base (3) mounted on the upper end surface of the operating room (2) and used to fix the equipment; A water tank base (5) is installed in the main frame (1) and is used to fix the cooling water tank.

2. A container frame according to claim 1, characterized in that: A shock absorbing mechanism (4) is installed between the equipment base (3) and the operating room (2).

3. A container frame according to claim 2, characterized in that: The shock absorbing mechanism (4) comprises an upper base (41) connected to the equipment base (3), and a lower base (42) connected to the operating room (2), and a damper (43) and / or a spring (44) are installed between the upper base (41) and the lower base (42).

4. A container frame according to claim 3, characterized in that: The shock absorbing mechanism (4) further comprises an auxiliary component (45) for dispersing the force of the damping (43) and / or the spring (44).

5. A container frame according to claim 4, characterized in that: The auxiliary component (45) comprises a movable block (451) arranged between an upper base (41) and a lower base (42); a first auxiliary damper (452) is installed between the movable block (451) and the upper base (41); a second auxiliary damper (453) is installed between the movable block (451) and the lower base (42); and a triangular structure is formed between the damper (43), the first auxiliary damper (452) and the second auxiliary damper (453).

6. A container frame according to claim 1, characterized in that: The main frame (1) is a rectangular parallelepiped and a lifting structure is provided on the main frame (1), wherein the lifting structure comprises lifting blocks (11) provided at four top corners of the main frame (1) and a plurality of lifting buckles (12) provided on four top edges of the main frame (1).