Pipeline integration module, boiler system and beverage processing equipment

By designing a detachable pipeline integration module in beverage and cooking equipment, the installation process of the boiler system is simplified, the problems of installation complexity and high error rate are solved, and the installation convenience and system reliability are improved.

CN223054304UActive Publication Date: 2025-07-04CAYE TECHNOLOGY (SUZHOU) CO LTD
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Patent Information

Application Number
CN202421549290.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-02
Publication Date
2025-07-04
Estimated Expiration
2034-07-02

AI Technical Summary

Technical Problem

Among the existing beverage and cooking equipment, the installation complexity and installation error rate of the boiler system are high, resulting in cumbersome and inconvenient installation process.

Method used

A pipeline integration module is designed, including a detachable first block and a second block, forming a connecting channel by splicing, and installing functional devices at the connecting channel to simplify the disassembly and assembly operation of the boiler system.

Benefits of technology

Through the preset channel structure, the installation process of the boiler system is simplified, the convenience and reliability of installation are improved, the service life of the hot water system is extended, and the connection strength is enhanced.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a pipeline integration module, a boiler system and beverage processing equipment, the pipeline integration module is provided with at least two channels in advance, and at least one of the channels is a connecting channel penetrating through the pipeline integration module; the pipeline integration module comprises a first block body, a second block body and a functional device, the first block body and the second block body are detachably connected, and when the first block body and the second block body are connected, the first block body and the second block body are jointly spliced to form the connecting channel; the functional device is installed between the first block body and the second block body in a limited mode and acts on the connecting channel. The pipeline integration module is formed by detachably connecting the first block body and the second block body, so that when the first block body and the second block body are connected, the connecting channel is naturally defined, the functional device is installed in place, the disassembly and assembly operation and the disassembly and assembly structure of the functional device are simplified, and the disassembly and assembly efficiency is improved. And the functional device can conveniently and directly act on the connecting channel.
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Description

Technical Field

[0001] The utility model relates to the technical field of beverage cooking equipment, and particularly relates to a pipeline integration module, a boiler system and a beverage cooking equipment. Background Art

[0002] In order to meet the use requirements of users, in existing beverage cooking equipment such as coffee machines, a boiler system and other functional modules are generally preset, and each functional module includes a brewing module. Among them, the boiler system includes a boiler main body and a connecting pipe group. The boiler main body heats the cold water introduced by the connecting pipe group to obtain hot water, and the hot water finally discharges outward through the connecting pipe group to functional modules such as a brewing module. It can be understood that in order to ensure the normal operation of the preset functions in the coffee machine, the number of pipe bodies in the connecting pipe group is not only one, and the size specifications, layout orientations and connection methods of each pipe body may be different, resulting in an increase in the installation complexity and installation error rate of the boiler system. Summary of the Utility Model

[0003] The main purpose of the utility model is to provide a pipeline integration module, a boiler system and a beverage cooking equipment, aiming to solve the problems of increased installation complexity and installation error rate of the traditional boiler system.

[0004] To achieve the above purpose, a pipeline integration module proposed by the utility model is provided. The pipeline integration module is preset with at least two channels, and at least one of the channels is a connection channel penetrating through the pipeline integration module;

[0005] Wherein, the pipeline integration module includes:

[0006] A first block and a second block, the first block and the second block are detachably connected, and when connected, the first block and the second block jointly form the connection channel; and,

[0007] Functional devices are limited and installed between the first block and the second block and act on the connection channel.

[0008] Optionally, the first block and the second block are detachably connected along the radial direction of the connection channel, and when connected, the functional devices are received in the connection channel.

[0009] Optionally, the first block and the second block are detachably connected along the axial direction of the connection channel. The connection channel includes a first channel section penetrating through the first block and a second channel section penetrating through the second block;

[0010] When the first block and the second block are connected, the functional devices are clamped and fixed between the first channel section and the second channel section.

[0011] Optionally, the functional device is provided with a through hole connecting the first channel section and the second channel section.

[0012] Optionally, in the axial direction of the connecting channel, the first block and the second block are movably arranged so that when connected, the spacing distance between the first channel section and the second channel section can be adjusted.

[0013] Optionally, a groove is formed on the outer wall of the first block, and the second block is detachably mounted in the groove;

[0014] The groove extends axially along the second channel section and penetrates through one side outer wall of the first block to form an opening. The groove has a first groove wall extending radially along the second channel section, and a second groove wall extending axially along the second channel section. The first channel section penetrates the first groove wall, and the second block is slidably adjustable along the second groove wall.

[0015] Optionally, an outer wall of the second block on one radial side of the second channel section protrudes to form a stop rib, and the stop rib abuts against an outer wall of the first block having the opening.

[0016] Optionally, the pipeline integration module further includes a fastener, which detachably connects the first block and the stop rib.

[0017] Optionally, the functional device includes a sensor device for sensing a parameter of a fluid flowing through the connecting channel.

[0018] Optionally, the functional device includes an opening and closing member for adjusting the opening of the connecting channel.

[0019] Optionally, the functional device includes a purification device for purifying the fluid flowing through the connecting channel.

[0020] Optionally, the functional device includes an external tube body communicating and connecting the first channel segment and the second channel segment.

[0021] Optionally, at least a partial section of the external tube body is deformable along its radial direction and / or along its axial direction.

[0022] In addition, to achieve the above, the utility model further provides a boiler system, including a boiler body and the pipeline integrated module as described above, wherein the boiler body is provided with at least one opening, and at least one of the openings is communicated with the channel.

[0023] In addition, to achieve the above, the utility model also provides a beverage preparation device, including the pipeline integration module as described above.

[0024] In the technical solution provided by the present utility model, a plurality of channels are pre-integrated inside the pipeline integration module. The plurality of channels can be adapted to different connection requirements of different boilers, thereby making the pipeline integration module more versatile. Compared with the staggered splicing setting of excessive pipe body structures, by presetting channels in the pipeline integration module in the present utility model, on the one hand, it helps to simplify the overall structure of the boiler system and makes the disassembly and assembly with the boiler more convenient; on the other hand, it makes the relative positions of the respective channels fixed, and there is basically no relative displacement, and the structural strength of each channel is sufficient, and there will be no problems such as deformation due to force pulling, which helps to improve the connection strength between the channel and the opening, and ultimately helps to improve the overall service life and use reliability of the hot water system. In addition, the pipeline integration module is composed of a first block body and a second block body detachably connected. When the first block body and the second block body are connected, the connection channels are naturally defined and the functional devices are installed in place accordingly, which helps to simplify the disassembly and assembly operation and structure of the functional devices, and facilitates the direct action of the functional devices on the connection channels. BRIEF DESCRIPTION OF THE DRAWINGS

[0025] In order to more clearly illustrate the technical solutions in the embodiments of the present utility model or the prior art, the following will briefly introduce the drawings required for use in the description of the embodiments or the prior art. Obviously, the following drawings are only some embodiments of the present utility model. For those of ordinary skill in the art, without creative efforts, other drawings can be obtained based on the structures shown in these drawings.

[0026] Figure 1 A three-dimensional schematic diagram of an embodiment of the boiler system provided by the present utility model;

[0027] Figure 2 For Figure 1 A three-dimensional schematic diagram of the pipeline integration module in

[0028] Figure 3 For Figure 2 A main structure decomposition schematic diagram of the pipeline integration module in

[0029] Figure 4 For Figure 3 A three-dimensional schematic diagram of the first block body in

[0030] Figure 5 For Figure 3 A three-dimensional schematic diagram of the second block body in

[0031] Explanation of the reference numerals in the drawings:

[0032] 100 pipeline integrated module; 110 first block; 111 first channel section; 112 first outer wall; 113 groove; 113a first groove wall; 113b second groove wall; 120 second block; 121 second channel section; 122 stop rib; 130 functional device; 140 fastener; 150 connector; 200 boiler body; 210 opening.

[0033] The realization of the purpose, functional features and advantages of the utility model will be further explained in conjunction with embodiments and with reference to the accompanying drawings. DETAILED DESCRIPTION

[0034] The following will be combined with the drawings in the embodiments of the utility model to clearly and completely describe the technical solutions in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, not all of the embodiments. Based on the embodiments of the utility model, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the utility model.

[0035] It should be noted that if the embodiments of the present invention involve directional indications (such as up, down, left, right, front, back...), the directional indications are only used to explain the relative position relationship, movement status, etc. between the components under a certain specific posture (as shown in the accompanying drawings). If the specific posture changes, the directional indication will also change accordingly.

[0036] In addition, if there are descriptions involving "first", "second", etc. in the embodiments of the utility model, the descriptions of "first", "second", etc. are only used for descriptive purposes and cannot be understood as indicating or implying their relative importance or implicitly indicating the number of technical features indicated. Therefore, the features defined as "first" and "second" may explicitly or implicitly include at least one of the features. In addition, the meaning of "and / or" appearing in the full text includes three parallel schemes. Taking "A and / or B" as an example, it includes scheme A, or scheme B, or a scheme that satisfies both A and B. In addition, the technical solutions between the various embodiments can be combined with each other, but it must be based on the ability of ordinary technicians in this field to implement. When the combination of technical solutions is contradictory or cannot be implemented, it should be deemed that such a combination of technical solutions does not exist and is not within the scope of protection required by the utility model.

[0037] First see Figures 1 to 5 The utility model provides a pipeline integrated module 100, a boiler system and a beverage cooking device applicable to the boiler system.

[0038] This design does not limit the specific type of beverage processing equipment, which can be any device or product capable of extracting and brewing materials to ultimately obtain beverages. Specifically, the beverage processing equipment can be, but is not limited to, coffee machines, soymilk machines, blenders, etc. Correspondingly, the materials involved in the present utility model can be bean materials such as coffee beans and soybeans. For ease of understanding, in the following embodiments, the beverage processing equipment is taken as an example of a coffee machine for illustration.

[0039] Among them, the beverage processing equipment at least includes a housing having an inner cavity and a grinding module and / or a brewing module disposed in the inner cavity.

[0040] The grinding module can be, but is not limited to, including a grinding cylinder and a grinding mechanism. A grinding chamber is formed inside the grinding cylinder; the grinding mechanism includes, for example, two cutter discs that can be relatively movably arranged and a first driving component for driving at least one cutter disc to move. A grinding space for performing grinding and crushing operations such as piercing, grinding, and stirring on granular materials such as coffee beans is formed between the two cutter discs.

[0041] The brewing module can be, but is not limited to, including a brewing cylinder and a brewing mechanism. The brewing cylinder can receive the required amount of coffee powder discharged outward from the outlet end of the grinding module, and then the coffee powder is extracted and brewed by the brewing mechanism to obtain coffee beverages. According to different brewing requirements, the brewing mechanism is mainly set as a pressing mechanism, a heating mechanism, and / or a water supply component. A lower piston member that can move up and down is provided inside the brewing cylinder, and an upper piston member that can move up and down is provided outside the brewing cylinder at the brewing position. The pressing mechanism drives the upper piston member to move up and down, and can approach or move away from the lower piston member, and then can press the powder material received by the lower piston member at the powder receiving position to obtain a powder cake. The water supply component can connect external water into the brewing cylinder, and under the action of the heating component, realize the brewing and extraction of the powder cake, and finally obtain beverages such as coffee liquid. Among them, the heating component can directly heat the external water connected by the water supply component to obtain hot water and use the hot water for the brewing and extraction of the powder cake.

[0042] Of course, according to actual needs, the beverage processing equipment can also include, for example, a milk supply module, a control device, and various sensor components, etc.

[0043] The milk supply module is mainly used to independently convey external milk sources or milk sources built into the housing to the beverage outlet, or mix them with the prepared coffee beverages according to actual needs.

[0044] The control device is electrically connected to each functional module to enable the intelligent and automated operation of each functional module. The control device can be a dedicated controller for the pipeline integration module 100, or a controller fixed to the boiler system or the beverage processing equipment.

[0045] The sensor device can be set according to actual needs. In the following embodiments, solutions for some sensor devices will be introduced.

[0046] It should be noted that the specific type of the beverage processing device is not limited. When the beverage processing device includes the grinding module as described above, the beverage processing device can specifically be a coffee grinder; when the beverage processing device includes the brewing module as described above, the beverage processing device can specifically be a brewer. And so on.

[0047] The boiler system generally includes a boiler main body 200 and a pipeline integration module 100. The boiler main body 200 is provided with at least one opening 210. The pipeline integration module 100 is preset with at least two channels, and at least one of the channels is a connection channel penetrating through the pipeline integration module 100, and at least one channel can be communicatively connected to at least one opening 210 of the boiler main body 200. Among them, the pipeline integration module 100 includes a first block 110, a second block 120, and a functional device 130. The first block 110 and the second block 120 are detachably connected, and when connected, the first block 110 and the second block 120 jointly form a connection channel; the functional device 130 is installed in a limited manner between the first block 110 and the second block 120 and acts on the connection channel.

[0048] In the technical solution provided by the present utility model, by pre-integrating a plurality of channels inside the pipeline integration module 100, the plurality of channels can be adapted to different connection requirements of different boilers, thereby making the pipeline integration module 100 more versatile; compared with the staggered splicing arrangement of excessive pipe structures, by presetting channels in the pipeline integration module 100 in the present utility model, on the one hand, it helps to simplify the overall structure of the boiler system and makes the disassembly and assembly with the boiler more convenient; on the other hand, it makes the relative positions of the respective channels fixed, and there is basically no relative displacement, and the structural strength of each channel is sufficient, and there are no problems such as deformation due to force pulling, which helps to improve the communication connection strength between the channel and the opening 210, and ultimately helps to improve the overall service life and use reliability of the hot water system. In addition, the pipeline integration module 100 is composed of the detachable connection of the first block 110 and the second block 120. When the first block 110 and the second block 120 are connected, the connection channel is naturally defined and the functional device 130 is installed in place accordingly, which helps to simplify the disassembly and assembly operation and structure of the functional device 130, and facilitates the direct action of the functional device 130 on the connection channel.

[0049] It can be understood that in practical applications, the first block 110 and / or the second block 120 are generally block-shaped, and according to actual application requirements, the first block 110 and / or the second block 120 can be made of any suitable material. For example, when it is required that the first block 110 and / or the second block 120 have sufficient structural strength to allow for the opening of a larger number and more specifications of channels, the first block 110 and / or the second block 120 can be made of, for example, metal materials, polymer composite materials, etc.; when it is required that the first block 110 and / or the second block 120 have heat insulation and heat preservation characteristics to insulate or heat the gas or liquid flowing in the channel, the first block 110 and / or the second block 120 can be made of heat insulating materials; conversely, when it is required that the first block 110 and / or the second block 120 have heat conduction and heat dissipation characteristics to dissipate heat from the gas or liquid flowing in the channel, the first block 110 and / or the second block 120 can be made of heat conductive materials; when it is required that the first block 110 and / or the second block 120 have corrosion resistance to be not corroded by the gas or liquid flowing in the channel, the first block 110 and / or the second block 120 can be made of corrosion resistant materials. And so on, without limitation.

[0050] In this design, the first block 110 and / or the second block 120 generally refer to a three-dimensional structure having a certain length, width, and height. For the sake of easy understanding, in the following embodiments, it is defined that the first block 110 and / or the second block 120 have a first direction, a second direction, and a third direction that are cross-set pairwise. Among them, when the first direction, the second direction, and the third direction are pairwise cross at 90°, they can roughly correspond to the length direction, the width direction, and the height direction of the first block 110 and / or the second block 120.

[0051] The first block 110 and / or the second block 120 can be a three-dimensional structure with a regular shape, such as cylindrical, prismatic, etc. The first block 110 and / or the second block 120 can also be set as an irregular three-dimensional structure according to actual needs. In one embodiment, the first block 110 and / or the second block 120 are generally rectangular parallelepiped-shaped. When the first block 110 and / or the second block 120 are specifically installed in the casing of the beverage processing device, one of its first direction, second direction, and third direction (specifically, for example, the third direction) can correspond to the gravity direction. Since the first block 110 and / or the second block 120 are three-dimensional structures as described above, sufficient space is reserved inside for the opening of each channel.

[0052] In actual applications, the channel can be a channel structure that penetrates both ends of the first block 110 and / or the second block 120, or a channel structure that penetrates one end of the first block 110 and / or the second block 120, or a cavity structure formed inside the first block 110 and / or the second block 120. The channel can be a straight channel, a bent channel with at least one bend, or a composite channel structure including at least one straight channel segment and at least one bent channel segment.

[0053] At least one of the channels can be connected and communicated with at least one opening 210. It should be noted that in this design, the connection between the two channel structures can be kept constantly open, constantly closed, or selectively conducted or blocked according to actual needs. Since the channels are mainly used for but not limited to connecting and communicating with the respective openings 210, during installation, the first block 110 and / or the second block 120 can be arranged adjacent to the boiler main body 200, and can be directly installed on the outer wall of the boiler main body 200, or indirectly installed on the periphery of the boiler main body 200 through, for example, a frame structure.

[0054] One or several of the channels can form a connection channel. It can be understood that the connection channel is a channel in which at least part of the channel segment is arranged on the first block 110 and the remaining channel segment is arranged on the second block 120, and is jointly defined by the first block 110 and the second block 120. For the convenience of understanding, in the following embodiments, it is defined that each channel has an axial direction and a radial direction, the axial direction is the length extension direction of the channel, and the radial direction is the direction substantially perpendicular to the axial direction.

[0055] In one embodiment, the first block 110 and the second block 120 are detachably connected along the radial direction of the connection channel, and when connected, the functional device 130 is received in the connection channel. That is, a first recess is formed on one side surface of the first block 110 for connecting with the second block 120, and a second recess is formed on one side surface of the second block 120 for connecting with the first block 110. When the first block 110 and the second block 120 are connected, the openings of the first recess and the second recess are joined together to jointly form the connection channel.

[0056] When the first block 110 and the second block 120 are not installed, both the first recess and the second recess are open, and at this time, it is convenient to arrange the functional device 130 at any position of the first recess and / or the second recess according to actual needs. In this embodiment, the outer diameter of the functional device 130 is generally set to be not greater than the inner diameter of the connection channel at the position where it is located, and specifically can be, but not limited to, for example, a one-way valve body, a filter, etc. When the first block 110 and the second block 120 are installed, the functional device 130 is received in the connection channel and generally will not be exposed outside.

[0057] In another embodiment, the first block 110 and the second block 120 are detachably connected along the axial direction of the connection channel. The connection channel includes a first channel section 111 penetrating through the first block 110 and a second channel section 121 penetrating through the second block 120. When the first block 110 and the second block 120 are connected, the functional device 130 is clamped and fixed between the first channel section 111 and the second channel section 121. When the first block 110 and the second block 120 are installed, the functional device 130 is clamped and fixed between the first block 110 and the second block 120 and is between the first channel section 111 and the second channel section 121. At this time, at least a part of the functional device 130 is exposed outside the pipeline integration module 100, and its exposed surface can be selectively provided with functions such as for visualization, for directly or indirectly connecting with other components, etc.

[0058] Hereinafter, further limitations will be mainly made based on the solution that the first block 110 and the second block 120 are detachably connected along the axial direction of the connection channel. As shown in Figures 2 to 5 wherein, at least a section of the first channel section 111 close to the second channel section 121 extends along the first direction. Similarly, at least a section of the second channel section 121 close to the first channel section 111 extends along the first direction.

[0059] Specifically, in one embodiment, the functional device 130 is provided with a through hole that connects and communicates the first channel section 111 and the second channel section 121. At this time, the through hole can realize the connection and communication between the first channel section 111 and the second channel section 121. In this way, according to actual needs, the connection length between the first channel section 111 and the second channel section 121 can be extended through the through hole; or when the aperture of the through hole is smaller than that of the first channel section 111 or the second channel section 121, the opening degree between the first channel section 111 and the second channel section 121 can be adjusted through the through hole, etc.

[0060] And / or, in one embodiment, in the axial direction of the connection channel, the first block 110 and the second block 120 are movably arranged so that the spacing distance between the first channel segment 111 and the second channel segment 121 can be adjusted during connection. In this way, by adjusting the relative positions of the first block 110 and the second block 120, the distance between the first channel segment 111 and the second channel segment 121 can be adjusted. For example, when the functional device 130 is provided with a through hole as described above, that is, it is equivalent to that the hole length of the through hole can be adjusted, and then the total length of the first channel segment 111, the through hole, and the second channel segment 121 can be adjusted. On the one hand, the first block 110 and the second block 120 can be adapted to be installed on functional devices 130 of different size specifications; on the other hand, the combination of the first block 110, the second block 120, and the functional device 130 can be adapted to be installed in installation environments with different application requirements, making the pipeline integration module 100 more versatile.

[0061] To achieve the above object, in a further solution, a groove 113 is formed on the outer wall of the first block 110, and the second block 120 is detachably installed in the groove 113; the groove 113 extends along the axial direction of the second channel segment 121 and penetrates through one side outer wall of the first block 110 to form an opening. The groove 113 has a first groove wall 113a extending in the radial direction of the second channel segment 121 and a second groove wall 113b extending in the axial direction of the second channel segment 121. The first channel segment 111 penetrates through the first groove wall 113a, and the second block 120 is slidably adjustable along the second groove wall 113b. Specifically, as Figure 2 and Figure 4 shown, the first block 110 has two first outer walls 112 oppositely arranged in a first direction, two second outer walls oppositely arranged in a second direction, and two third outer walls oppositely arranged in a third direction. The groove 113 can be formed on one of the second outer walls and extend in the first direction to penetrate through one of the first outer walls 112, and an opening is formed on the first outer wall 112. And / or, the groove 113 can be formed on one of the third outer walls and extend in the first direction to penetrate through one of the first outer walls 112, and an opening is formed on the first outer wall 112. The second block 120 can be inserted into the groove 113 from the notch of the groove 113 and / or the opening of the groove 113. The second block 120 can be movably abutted against the second side wall in the first direction. Since the first channel segment 111 penetrates through the first side wall, the distance from the first side wall can be adjusted during the movable abutment process of the second block 120.

[0062] Further, in one embodiment, a stop rib 122 protrudes from the outer wall of the second block 120 on the radial side of the second channel segment 121. The stop rib 122 and the outer wall of the first block 110 with an opening (that is, Figure 4abuts against the first outer wall 112). The stop rib 122 can limit the further movement of the second block 120 closer to the first block 110. Thus, when the functional device 130 is disposed between the first side wall and the second block 120, the second block 120 can sufficiently press the functional device 130 against the first side wall.

[0063] The functional device 130 can be directly mounted between the first side wall and the second block 120. Or in an embodiment, the pipeline integration module 100 further includes two plug connectors 150. One of the two plug connectors 150 is fixedly plugged between the first channel section 111 and the through hole, and the other is fixedly plugged between the second channel section 121 and the through hole.

[0064] The plug connector 150 can be made of a rigid material. In this case, the setting of the plug connector 150 helps to further stabilize the installation of the functional device 130 between the first block 110 and the second block 120. Of course, the plug connector 150 can also be made of an elastic material. In this case, the contacts between the plug connector 150 and the first channel section 111, the through hole, the second channel section 121, the first block 110, the functional device 130, and the second block 120 are all elastic contacts, which helps to strengthen the connection tightness between the plug connector 150 and the first channel section 111, the through hole, the second channel section 121, the first block 110, the functional device 130, and the second block 120 through the deformable characteristics of the elastic material.

[0065] In addition, in view of the above, in an embodiment, the pipeline integration module 100 further includes a fastener 140, and the fastener 140 is detachably connected to the first block 110 and the stop rib 122. The fastener 140 is, for example, a screw connector, and the screw connector is threadedly connected to the first threaded hole opened on the stop rib 122 and the second threaded hole opened on the first outer wall 112 respectively. Thus, by adjusting the screwing depth of the screw connector, the installation position of the second block 120 relative to the first block 110 can be adjusted, and the installation between the first block 110 and the second block 120 is ensured to be stable.

[0066] In view of any of the above embodiments, for the solution of the functional device 130:

[0067] In an embodiment, the functional device 130 includes a sensor device for sensing parameters of the fluid flowing through the connection channel. Specifically, for example, the functional device 130 can be a Figures 2 to 4 flow meter as in, for sensing the flow rate of the fluid flowing from the first channel section 111 into the second channel section 121. The functional device 130 can also be a pressure sensor for sensing the pressure value of the fluid flowing from the first channel section 111 into the second channel section 121. The functional device 130 can also be a temperature sensor for sensing the temperature value of the fluid flowing from the first channel section 111 into the second channel section 121, etc.

[0068] In one embodiment, the functional device 130 includes an opening and closing member for adjusting the opening degree of the connection channel. The opening and closing member can be a door structure or a valve body structure. Specifically, for example, the functional device 130 can be a switching valve, a pressure valve, a flow valve, etc.

[0069] In one embodiment, the functional device 130 includes a purification device for purifying the fluid flowing through the connection channel. Specifically, for example, the functional device 130 can be a filter for performing solid-liquid separation on the fluid flowing from the first channel section 111 into the second channel section 121. The functional device 130 can also be a disinfection device for disinfecting the fluid flowing from the first channel section 111 into the second channel section 121, etc.

[0070] In one embodiment, the functional device 130 includes an external pipe body connecting the first channel section 111 and the second channel section 121. The external pipe body can extend the connection length between the first channel section 111 and the second channel section 121, and the external pipe body can enable the size and shape of the part of the pipeline integration module 100 located between the first channel section 111 and the second channel section 121 to be designed separately according to actual needs, so that the overall pipeline integration module 100 is more adaptable to the installation environment.

[0071] Furthermore, in one embodiment, at least a partial pipe section of the external pipe body is deformable along its radial direction and / or along its axial direction. The external pipe body is deformable along its axial direction, so that during its deformation process, the length of the external pipe body can be adjusted and the connection length between the first channel section 111 and the second channel section 121 can be adjusted. The external pipe body is deformable along its radial direction, so that during its deformation process, the radial direction of the external pipe body can be adjusted, thereby forming a convex structure or a concave structure with respect to the first block 110 and the second block 120. Especially when the shell wall to be installed at the location has a convex structure, by forming a concave structure adapted thereto at the external pipe body, it helps to make the installation of the pipeline integration module 100 and the shell wall to be installed closer; conversely, when the shell wall to be installed at the location has a concave structure, by forming a convex structure adapted thereto at the external pipe body, it helps to make the installation of the pipeline integration module 100 and the shell wall to be installed closer.

[0072] The above are only the preferred embodiments of the present invention, and do not limit the patent scope of the present invention accordingly. All equivalent structural transformations made under the inventive concept of the present invention by using the content of the specification and drawings of the present invention, or directly / indirectly applied in other related technical fields are included in the patent protection scope of the present invention.

Claims

1. A pipeline integration module, characterized in that, The pipeline integration module is preset with at least two channels, and at least one of each of the channels is a connection channel penetrating the pipeline integration module; Wherein, the pipeline integration module includes: A first block body and a second block body, the first block body and the second block body are detachably connected, and when connected, the first block body and the second block body jointly form the connection channel by splicing; and, A functional device, which is limitedly installed between the first block body and the second block body and acts on the connection channel.

2. The pipeline integration module according to claim 1, characterized in that The first block body and the second block body are detachably connected along the radial direction of the connection channel, and when connected, the functional device is received in the connection channel.

3. The pipeline integration module according to claim 1, wherein The first block body and the second block body are detachably connected along the axial direction of the connection channel. The connection channel includes a first channel section penetrating the first block body and a second channel section penetrating the second block body; When the first block body and the second block body are connected, the functional device is clamped and fixed between the first channel section and the second channel section.

4. The pipeline integration module according to claim 3, wherein, The functional device is provided with a through hole that communicates and connects the first channel section and the second channel section.

5. The pipeline integration module according to claim 3, characterized in that Axially along the connection channel, the first block body and the second block body are movably arranged so that when connected, the distance between the first channel section and the second channel section can be adjusted.

6. The pipeline integration module according to claim 3, characterized in that A groove is formed on the outer wall of the first block body, and the second block body is detachably installed in the groove; The groove extends along the axial direction of the second channel section and penetrates through one side outer wall of the first block body to form an opening. The groove has a first groove wall extending along the radial direction of the second channel section and a second groove wall extending along the axial direction of the second channel section. The first channel section penetrates the first groove wall, and the second block body can be slidably adjusted along the second groove wall.

7. The pipeline integration module according to claim 6, characterized in that, A stop rib protrudes from the outer wall of the second block body on the radial side of the second channel section, and the stop rib abuts against the outer wall of the first block body provided with the opening.

8. The pipeline integration module according to claim 7, characterized in that, The pipeline integration module further includes a fastener, and the fastener detachably connects the first block body and the stop rib.

9. The pipeline integration module according to claim 1, wherein The functional device includes a sensor device for sensing parameters of the fluid flowing through the connection channel.

10. The pipeline integration module according to claim 1, characterized in that The functional device includes an opening and closing member for adjusting the opening degree of the connection channel.

11. The pipeline integration module according to claim 1, characterized in that, The functional device includes a purification device for purifying the fluid flowing through the connection channel.

12. The pipeline integration module according to claim 3, characterized in that, The functional device includes an external pipe body that communicates and connects the first channel section and the second channel section.

13. The pipeline integration module according to claim 12, wherein At least a partial pipe section of the external pipe body is deformable along its radial direction and / or along its axial direction.

14. A boiler system, characterized in that, It includes a boiler main body and the pipeline integration module according to any one of claims 1 to 13. The boiler main body is provided with at least one opening, and at least one of the openings is connected and communicated with the channel.

15. A beverage preparation device, characterized in that: It includes the pipeline integration module according to any one of claims 1 to 13.