WO2021184944A1 - 管件连接结构 - Google Patents

管件连接结构 Download PDF

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Publication number
WO2021184944A1
WO2021184944A1 PCT/CN2021/072378 CN2021072378W WO2021184944A1 WO 2021184944 A1 WO2021184944 A1 WO 2021184944A1 CN 2021072378 W CN2021072378 W CN 2021072378W WO 2021184944 A1 WO2021184944 A1 WO 2021184944A1
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WIPO (PCT)
Prior art keywords
copper sleeve
main body
connecting portion
connection structure
structure according
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Ceased
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PCT/CN2021/072378
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English (en)
French (fr)
Inventor
王文杰
单宇宽
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Zhejiang Dunan Artificial Environment Co Ltd
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Zhejiang Dunan Artificial Environment Co Ltd
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Application filed by Zhejiang Dunan Artificial Environment Co Ltd filed Critical Zhejiang Dunan Artificial Environment Co Ltd
Priority to JP2022551260A priority Critical patent/JP7654004B2/ja
Priority to KR1020227033674A priority patent/KR102766564B1/ko
Publication of WO2021184944A1 publication Critical patent/WO2021184944A1/zh
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

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    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16LPIPES; JOINTS OR FITTINGS FOR PIPES; SUPPORTS FOR PIPES, CABLES OR PROTECTIVE TUBING; MEANS FOR THERMAL INSULATION IN GENERAL
    • F16L13/00Non-disconnectable pipe joints, e.g. soldered, adhesive, or caulked joints
    • F16L13/007Non-disconnectable pipe joints, e.g. soldered, adhesive, or caulked joints specially adapted for joining pipes of dissimilar materials
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16LPIPES; JOINTS OR FITTINGS FOR PIPES; SUPPORTS FOR PIPES, CABLES OR PROTECTIVE TUBING; MEANS FOR THERMAL INSULATION IN GENERAL
    • F16L13/00Non-disconnectable pipe joints, e.g. soldered, adhesive, or caulked joints
    • F16L13/02Welded joints

Definitions

  • This application relates to the field of refrigeration technology, and in particular to a pipe connection structure.
  • copper pipes are generally used as connecting pipes to connect two parts.
  • the parts are also made of copper materials. Due to the high price of copper materials, in order to reduce production costs, many companies use Stainless steel materials replace copper materials to make some parts.
  • copper pipes and stainless steel pipes of stainless steel parts need to be welded together, but the welding characteristics of copper materials and stainless steel materials are very different, so the process of directly welding copper pipes and stainless steel pipes together is relatively difficult.
  • a pipe connection structure is provided.
  • the present application provides a pipe connection structure, including a stainless steel pipe and a copper sleeve.
  • the stainless steel pipe includes a main body and a connecting portion provided at one end of the main body.
  • the outer diameter of the connecting portion is smaller than the outer diameter of the main body.
  • the copper sleeve is sleeved outside the connecting portion, and the outer diameter of the copper sleeve is less than or equal to the outer diameter of the main body.
  • the pipe fitting connection structure provided in this application facilitates the connection between the stainless steel pipe and the equipment pipeline by sheathing a copper sleeve on the outside of the connecting part of the stainless steel pipe and connecting the equipment pipeline through the copper sleeve; because the outer diameter of the copper sleeve is less than or equal to The outer diameter of the main body part of the stainless steel pipe, therefore, there is no need to change the piping design of the equipment piping when the equipment piping is connected through the copper sleeve, thereby reducing the cost.
  • the connecting portion and the copper sleeve are connected by welding. Therefore, the connection strength of welding can be improved, and the structure can be stabilized.
  • a welding ring is used for welding between the connecting portion and the copper sleeve, and the welding ring is provided at an end of the connecting portion close to the main body portion. Since the solder ring has a ring-shaped structure and the solder is evenly distributed, a good soldering can be formed between the connecting part and the copper sleeve.
  • the welding ring is a copper-based welding ring. Therefore, the welding process of the copper sleeve and the connecting portion is easier and the welding strength is greater.
  • a clearance fit between the connecting portion and the copper sleeve, and a solder filling layer is filled between the connecting portion and the copper sleeve. Therefore, a clearance fit is adopted between the connecting portion and the copper sleeve, which facilitates the solder to penetrate into the gap during soldering to form a solder filling layer, thereby improving the soldering firmness between the two.
  • the distance between the connecting portion and the copper sleeve is less than or equal to 0.06 mm. Therefore, sufficient soldering strength is ensured, and waste of solder can be avoided.
  • the end of the copper sleeve away from the main body portion protrudes from the end of the connecting portion away from the main body portion. Therefore, flow welding can be prevented.
  • the length of the portion of the copper sleeve protruding from the connecting portion is less than or equal to 3 mm. Therefore, the materials required for manufacturing the copper sleeve can be effectively saved, and the cost can be reduced.
  • the end of the copper sleeve close to the main body portion is provided with rounded corners. Therefore, the rounded corner prevents the copper sleeve and the connecting portion from generating burrs during the assembly process.
  • the stainless steel tube is further provided with a transition portion, the transition portion is provided between the main body portion and the connecting portion, and the transition portion has a tapered tube shape. Therefore, the transition portion makes the connection between the main body and the connecting portion smoother, and increases the connection strength between the main body and the connecting portion.
  • a limiting protrusion is provided on the outer side of the copper sleeve, and the limiting protrusion is used to limit the depth of the copper sleeve inserted into the equipment pipeline. Therefore, the depth at which the copper sleeve is inserted into the equipment pipeline can be easily determined, so that the assembly process can be simplified.
  • FIG. 1 is a schematic structural diagram of a pipe connection structure after welding according to an embodiment of the application.
  • Fig. 2 is a schematic structural diagram of a pipe connection structure before welding according to an embodiment of the application.
  • FIG. 1 is a schematic structural diagram of a pipe connection structure 100 after welding according to an embodiment of the application.
  • the pipe connection structure 100 provided in the present application is used to connect the equipment pipeline 5 and includes a stainless steel pipe 1 and a copper sleeve 2.
  • the stainless steel pipe 1 includes a main body portion 11 and a connecting portion 12 provided at one end of the main body portion 11.
  • the outer diameter of the connecting portion 12 is smaller than the outer diameter of the main body portion 11.
  • the copper sleeve 2 is sleeved on the outside of the connecting portion 12, and the outer diameter of the copper sleeve 2 is less than or equal to the outer diameter of the main body 11.
  • the copper sleeve 2 is sheathed outside the connecting portion 12 of the stainless steel pipe 1, and the equipment pipeline 5 is connected through the copper sleeve 2, which facilitates the connection between the stainless steel pipe 1 and the equipment pipeline 5. connect. Since the outer diameter of the copper sleeve 2 is less than or equal to the outer diameter of the main body 11 of the stainless steel pipe 1, there is no need to change the piping design of the equipment piping 5 when the equipment piping 5 is connected through the copper sleeve 2, that is, there is no need to change the piping design of the equipment piping 5 The pipe diameter of the equipment pipeline 5 may be connected to the copper sleeve 2 without reducing the diameter, which is convenient for operation and can reduce the cost.
  • the connecting portion 12 and the copper sleeve 2 are connected by welding.
  • the connection part 12 and the copper sleeve 2 are connected by welding, the connection strength is high, and the structure is stable.
  • FIG. 2 is a schematic structural view of the pipe connection structure 100 before welding according to an embodiment of the application, and the connection part 12 and the copper sleeve 2 are welded by a welding ring 3.
  • the welding ring 3 is provided at one end of the connecting portion 12 close to the main body portion 11.
  • Using the welding ring 3 to perform welding is to perform welding by means of brazing in a furnace. Before welding, the welding ring 3 is first fixed on the outside of the connecting portion 12, and then the pipe connecting structure 100 is sent into the brazing furnace for brazing.
  • the method of brazing in the furnace is simple in operation and inexpensive.
  • the connecting portion 12 and the copper sleeve 2 are both tubular structures, a welding ring 3 is added to the welding part of the connecting portion 12 and the copper sleeve 2, so that the welding ring 3 can evenly penetrate into the connecting portion 12 and the copper sleeve 2 after melting. Therefore, the connecting portion 12 and the copper sleeve 2 form a good welding strength.
  • the welding ring 3 is a copper-based welding ring. It can be understood that, due to the low melting point, good fluidity and high mechanical strength of the copper-based solder, the use of the copper-based solder ring makes the welding process of the copper sleeve 2 and the connecting portion 12 easier and stronger.
  • FIG. 1 there is a clearance fit between the connecting portion 12 and the copper sleeve 2, and the solder filling layer 4 is filled between the connecting portion 12 and the copper sleeve 2.
  • a clearance fit is adopted between the connecting portion 12 and the copper sleeve 2, that is, there is a gap between the connecting portion 12 and the copper sleeve 2, so as to facilitate the penetration of solder into the gap.
  • a filler layer 4 of solder is filled between the connecting portion 12 and the copper sleeve 2.
  • the liquid solder formed after the solder ring 3 is melted can penetrate into the gap between the connecting portion 12 and the copper sleeve 2 to form the solder filling layer 4.
  • a filler layer 4 of solder is filled between the connecting portion 12 and the copper sleeve 2.
  • the distance between the connecting portion 12 and the copper sleeve 2 is less than or equal to 0.06 mm. It can be understood that if the distance between the connecting portion 12 and the copper sleeve 2 is greater than 0.06 mm, more solder is required for filling between the connecting portion 12 and the copper sleeve 2, resulting in a waste of solder. If the solder is not sufficiently filled, it is likely to occur Insufficient welding. In this embodiment, the distance between the connecting portion 12 and the copper sleeve 2 is less than or equal to 0.06 mm, so that the solder can penetrate into the gap between the connecting portion 12 and the copper sleeve 2, and sufficient welding strength is ensured.
  • the end of the copper sleeve 2 away from the main body portion 11 protrudes from the end of the connecting portion 12 away from the main body portion 11.
  • the portion of the copper sleeve 2 protruding from the connecting portion 12 can provide a stacking space for solder, thereby effectively preventing flow soldering.
  • the length of the portion of the copper sleeve 2 protruding from the connecting portion 12 is less than or equal to 3 mm, so that sufficient space for the solder to accumulate is provided. It can be understood that if the length of the portion of the copper sleeve 2 protruding from the connecting portion 12 exceeds 3 mm, it will cause a waste of solder accumulation space, thereby causing a waste of material of the copper sleeve 2.
  • the end of the copper sleeve 2 close to the main body 11 is provided with a rounded corner 21.
  • the rounded corner 21 makes the end of the copper sleeve 2 smoother.
  • the copper sleeve 2 is inserted into the outside of the connecting portion 12 from one end of the connecting portion 12. Since the end of the copper sleeve 2 close to the main body 11 is provided with rounded corners 21, the outer surface of the connecting portion 12 will not be scratched during the process of inserting the copper sleeve 2, thereby avoiding burrs during the assembly process.
  • the stainless steel pipe 1 is further provided with a transition portion 13, which is provided between the main body portion 11 and the connection portion 12.
  • One end of the transition portion 13 is connected to the main body portion 11, and the other end Connected to the connecting portion 12, the transition portion 13 has a tapered tube shape.
  • the outer diameter of the transition portion 13 gradually decreases from the end connected to the main body 11 to the end connected to the connecting portion 12, so that the connection between the main body 11 and the connecting portion 12 is smoother, and the main body 11 and the connecting portion are increased. 12. Connection strength.
  • a limiting protrusion 22 is provided on the outer side of the copper sleeve 2, and the limiting protrusion 22 is used to limit the depth of the copper sleeve 2 inserted into the equipment pipeline 5.
  • the limit protrusion 22 is provided, the depth of the copper sleeve 2 inserted into the equipment pipeline 5 can be easily determined, thereby simplifying the assembly process.
  • the end surface of one end of the equipment pipeline 5 abuts against the limiting protrusion 22.
  • a limiting groove can also be provided in the inner wall of the equipment pipeline 5 to pass The limit protrusion 22 cooperates with the limit groove to limit the position.

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  • Engineering & Computer Science (AREA)
  • General Engineering & Computer Science (AREA)
  • Mechanical Engineering (AREA)
  • Non-Disconnectible Joints And Screw-Threaded Joints (AREA)
  • Butt Welding And Welding Of Specific Article (AREA)

Abstract

管件连接结构(100),用于连接设备管路(5)。管件连接结构(100)包括不锈钢管(1)和铜套(2),不锈钢管(1)包括主体部(11)和设于主体部(11)一端的连接部(12),连接部(12)的外径小于主体部(11)的外径。铜套(2)套设于连接部(12)外侧,铜套(2)的外径小于或等于主体部(11)的外径。

Description

管件连接结构
相关申请
本申请要求2020年03月18日申请的,申请号为202020341501.7,发明名称为“管件连接结构”的中国专利申请的优先权,其全部内容通过引用结合在本申请中。
技术领域
本申请涉及制冷技术领域,尤其涉及一种管件连接结构。
背景技术
在制冷技术领域,一般使用铜管作为连接管连接两个零部件,为了与铜管连接方便,零部件也采用铜材料制成,由于铜材料的价格较高,为了降低生产成本,许多企业采用不锈钢材料代替铜材料制作部分零部件。制造过程中,需要将铜管与不锈钢零部件的不锈钢管焊接在一起,但是铜材料与不锈钢材料的焊接特性相差很大,因此直接将铜管与不锈钢管焊接在一起的工艺难度较大。
在传统技术中,公开了一种在不锈钢管外侧焊接一个铜套,然后将设备管路直接焊接在铜套上的技术方案。此技术方案存在的问题是,增加了铜套之后,须相应地增大设备管路的直径,也就是需要改变设备管路的管路设计,增加生产成本。
发明内容
根据本申请的各种实施例,提供一种管件连接结构。
本申请提供一种管件连接结构,包括不锈钢管和铜套,所述不锈钢管包 括主体部和设于所述主体部一端的连接部,所述连接部的外径小于所述主体部的外径,所述铜套套设于所述连接部外侧,所述铜套的外径小于或等于所述主体部的外径。
本申请提供的管件连接结构,通过在不锈钢管的连接部外侧套设铜套,并通过铜套连接设备管路,方便了不锈钢管与设备管路的连接;由于铜套的外径小于或等于不锈钢管的主体部的外径,因此,通过铜套连接设备管路时不需要改变设备管路的管路设计,从而可降低成本。
在其中一个实施例中,所述连接部与所述铜套之间焊接连接。因而,能够提高焊接的连接强度,使得结构稳定。
在其中一个实施例中,所述连接部与所述铜套之间采用焊环焊接,所述焊环设于所述连接部靠近所述主体部的一端。由于焊环为环状结构,焊料分布均匀,因而能够使连接部与铜套之间形成良好的焊接。
在其中一个实施例中,所述焊环为铜基焊环。因而,使得所述铜套与所述连接部的焊接过程更加容易且焊接强度更大。
在其中一个实施例中,所述连接部与所述铜套之间间隙配合,所述连接部与所述铜套之间填充有焊料填充层。因而,所述连接部与所述铜套之间采用间隙配合,便于焊接时焊料渗入间隙中形成焊料填充层,从而提高两者之间的焊接牢固性。
在其中一个实施例中,所述连接部与所述铜套之间的间距小于或等于0.06mm。因而,保证了足够的焊接强度,且可避免造成焊料的浪费。
在其中一个实施例中,所述铜套远离所述主体部的一端凸出于所述连接部远离所述主体部的一端。因而,能够防止流焊。
在其中一个实施例中,所述铜套凸出于所述连接部的部分的长度为小于 或等于3mm。因而,能够有效节约制作所述铜套需要的材料,降低成本。
在其中一个实施例中,所述铜套靠近所述主体部的一端设有圆角。因而,所述圆角使所述铜套和所述连接部在装配过程中不会产生毛刺。
在其中一个实施例中,所述不锈钢管还设有过渡部,所述过渡部设于所述主体部和所述连接部之间,所述过渡部呈锥形管状。因而,所述过渡部使所述主体部和所述连接部之间的连接更为平滑,增加了所述主体部和所述连接部的连接强度。
在其中一个实施例中,所述铜套外侧设有限位凸起,所述限位凸起用于限制所述铜套插入所述设备管路的深度。因而,能够方便确定所述铜套插入所述设备管路的深度,从而能够简化装配过程。
附图说明
为了更好地描述和说明这里公开的那些发明的实施例和/或示例,可以参考一幅或多幅附图。用于描述附图的附加细节或示例不应当被认为是对所公开的发明、目前描述的实施例和/或示例以及目前理解的这些发明的最佳模式中的任何一者的范围的限制。
图1为本申请一实施例的管件连接结构焊接后的结构示意图。
图2为本申请一实施例的管件连接结构焊接前的结构示意图。
附图标记的含义为:
100表示管件连接结构;1表示不锈钢管;11表示主体部;12表示连接部;13表示过渡部;2表示铜套;21表示圆角;22表示限位凸起;3表示焊环;4表示焊料填充层;5表示设备管路。
具体实施方式
下面将结合本申请实施例中的附图,对本申请实施例中的技术方案进行清楚、完整地描述,显然,所描述的实施例仅仅是本申请一部分实施例,而不是全部的实施例。基于本申请中的实施例,本领域普通技术人员在没有做出创造性劳动前提下所获得的所有其他实施例,都属于本申请保护的范围。
需要说明的是,本申请的说明书和权利要求书及上述附图中的术语“包括”及其变形,意图在于覆盖不排他的包含。当组件被称为“装设于”另一个组件,它可以直接装设在另一个组件上或者也可以存在居中的组件。当一个组件被认为是“设置于”另一个组件,它可以是直接设置在另一个组件上或者可能同时存在居中组件。当一个组件被认为是“固定于”另一个组件,它可以是直接固定在另一个组件上或者可能同时存在居中组件。
需要说明的是,除非另有定义,本文所使用的所有的技术和科学术语与属于本申请的技术领域的技术人员通常理解的含义相同。本文中在本申请的说明书中所使用的术语只是为了描述具体的实施例的目的,不是旨在于限制本申请。本文所使用的术语“或/及”包括一个或多个相关的所列项目的任意的和所有的组合。
请参阅图1,图1为本申请一实施例的管件连接结构100焊接后的结构示意图。
本申请提供的管件连接结构100用于连接设备管路5,包括不锈钢管1和铜套2。不锈钢管1包括主体部11和设于主体部11一端的连接部12,连接部12的外径小于主体部11的外径。铜套2套设于连接部12外侧,铜套2的外径小于或等于主体部11的外径。
在本实施例中,如图1所示,通过在不锈钢管1的连接部12外侧套设铜 套2,并通过铜套2连接设备管路5,方便了不锈钢管1与设备管路5的连接。由于铜套2的外径小于或等于不锈钢管1的主体部11的外径,因此,通过铜套2连接设备管路5时不需要改变设备管路5的管路设计,即,不需要改变设备管路5的管径,或不需要通过变径使得设备管路5与铜套2连接,方便操作,从而可降低成本。
在一实施例中,如图1所示,连接部12与铜套2之间焊接连接。连接部12和铜套2之间采用焊接连接,连接强度高,结构稳定。
进一步地,如图2所示,图2为本申请一实施例的管件连接结构100焊接前的结构示意图,连接部12与铜套2之间通过焊环3焊接。焊环3设于连接部12靠近主体部11的一端。采用焊环3进行焊接也就是采用炉中钎焊的方式进行焊接。焊接前,先将焊环3固定于连接部12外侧,再将该管件连接结构100送入钎焊炉中进行钎焊。炉中钎焊的方式操作过程简单,且价格便宜。由于连接部12和铜套2均为管状结构,因此,在连接部12和铜套2的焊接部位增加一个焊环3,能够使焊环3熔化之后均匀渗透进连接部12和铜套2之间的间隙内,从而使连接部12于铜套2之间形成良好的焊接强度。
优选的,焊环3为铜基焊环。可以理解,由于铜基焊料熔点较低、流动性好且机械强度高,因此采用铜基焊环使得铜套2与连接部12的焊接过程更加容易且焊接强度更大。
在一实施例中,如图1所示,连接部12与铜套2之间为间隙配合,连接部12与铜套2之间填充有焊料填充层4。连接部12与铜套2之间采用间隙配合,即连接部12与铜套2之间存在间隙,从而方便焊料渗入间隙中。连接部12与铜套2之间填充有焊料填充层4。
在本实施例中,采用焊环3进行焊接时,焊环3熔化之后形成的液态焊 料能够渗透进连接部12与铜套2之间的间隙中,从而形成焊料填充层4。或者,在其他实施例中,在连接部12与铜套2之间填充焊料填充层4,在进行焊接时,焊料填充层4受高温熔化而流动,从而使得连接部12与铜套2之间焊接固定。
优选地,连接部12与铜套2之间的间距小于或等于0.06mm。可以理解,若连接部12与铜套2之间的间距大于0.06mm,则连接部12与铜套2之间需要更多的焊料进行填充,造成焊料的浪费,若焊料填充不充分,容易出现焊接不牢的情况。本实施例中,连接部12与铜套2之间的间距小于或等于0.06mm,使焊料能够渗进连接部12与铜套2之间的间隙中,且保证了足够的焊接强度。
在一实施例中,如图1所示,铜套2远离主体部11的一端凸出于连接部12远离主体部11的一端。铜套2凸出于连接部12的部分能够为焊料提供堆积空间,从而有效防止流焊。
优选的,铜套2凸出于连接部12的部分的长度为小于或等于3mm,如此,给焊料提供了足够的堆积空间。可以理解,若铜套2凸出于连接部12的部分的长度超过3mm,则会造成焊料堆积空间浪费,从而造成铜套2材料的浪费。
在一实施例中,如图1所示,铜套2靠近主体部11的一端设有圆角21。圆角21使铜套2的端部更加光滑。装配时,将铜套2从连接部12的一端装入连接部12外侧。由于铜套2靠近主体部11的一端设有圆角21,在装入铜套2的过程中不会划伤连接部12的外表面,从而可避免装配过程中产生毛刺。
在一实施例中,如图1所示,不锈钢管1还设有过渡部13,过渡部13设于主体部11和连接部12之间,过渡部13的一端连接于主体部11,另一端连接于连接部12,过渡部13呈锥形管状。过渡部13的外径从与主体部11连接的一端到与连接部12连接的一端逐渐减小,使主体部11和连接部12之间的连接更为平滑,增加了主体部11和连接部12的连接强度。
在一实施例中,如图1所示,铜套2外侧设有限位凸起22,限位凸起22用于限制铜套2插入设备管路5的深度。将该管件连接结构100连接于设备管路5时,由于设有限位凸起22,能够方便确定铜套2插入设备管路5的深度,从而能够简化装配过程。
具体地,在本实施例中,设备管路5的一端的端面抵接于限位凸起22,在其他实施例中,还可通过在设备管路5的内壁中设置限位凹槽,通过限位凸起22与限位凹槽的配合进行限位。
以上所述实施例的各技术特征可以进行任意的组合,为使描述简洁,未对上述实施例中的各个技术特征所有可能的组合都进行描述,然而,只要这些技术特征的组合不存在矛盾,都应当认为是本说明书记载的范围。
本技术领域的普通技术人员应当认识到,以上的实施方式仅是用来说明本申请,而并非用作为对本申请的限定,只要在本申请的实质精神范围内,对以上实施方式所作的适当改变和变化都落在本申请要求保护的范围内。

Claims (11)

  1. 一种管件连接结构,用于连接设备管路,其特征在于,包括不锈钢管和铜套,所述不锈钢管包括主体部和设于所述主体部一端的连接部,所述连接部的外径小于所述主体部的外径,所述铜套套设于所述连接部外侧,所述铜套的外径小于或等于所述主体部的外径。
  2. 根据权利要求1所述的管件连接结构,其特征在于,所述连接部与所述铜套之间焊接连接。
  3. 根据权利要求2所述的管件连接结构,其特征在于,所述连接部与所述铜套之间采用焊环焊接,所述焊环设于所述连接部靠近所述主体部的一端。
  4. 根据权利要求3所述的管件连接结构,其特征在于,所述焊环为铜基焊环。
  5. 根据权利要求1所述的管件连接结构,其特征在于,所述连接部与所述铜套之间间隙配合,所述连接部与所述铜套之间填充有焊料填充层。
  6. 根据权利要求5所述的管件连接结构,其特征在于,所述连接部的内侧壁与所述铜套的外侧壁之间的间距小于或等于0.06mm。
  7. 根据权利要求1所述的管件连接结构,其特征在于,所述铜套远离所述主体部的一端凸出于所述连接部远离所述主体部的一端。
  8. 根据权利要求7所述的管件连接结构,其特征在于,所述铜套凸出于所述连接部的部分的长度为小于或等于3mm。
  9. 根据权利要求1所述的管件连接结构,其特征在于,所述铜套靠近所述主体部的一端设有圆角。
  10. 根据权利要求1所述的管件连接结构,其特征在于,所述不锈钢管还设有过渡部,所述过渡部设于所述主体部和所述连接部之间,所述过渡部呈锥 形管状。
  11. 根据权利要求1所述的管件连接结构,其特征在于,所述铜套外侧设有限位凸起,所述限位凸起用于限制所述铜套插入所述设备管路的深度。
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