Cage-type hyperbolic spring structure and socket

10454196 ยท 2019-10-22

    Inventors

    Cpc classification

    International classification

    Abstract

    A cage-type hyperbolic spring structure and a socket are provided. The cage-type hyperbolic spring structure is applied in a jack terminal. The cage-type hyperbolic spring includes multiple copper hyperbolic columnar canted springs and a machined body. The multiple copper hyperbolic columnar canted springs are annularly wound into a closed cylindrical annular structure by laser spot welding or a thin hollow tube, the cylindrical annular spring structure is inserted into the machined body, and then a inclined riveting necked port at an end of a thin-walled tube ensures the cylindrical inclined spring not to fall off during plugging and unplugging of the male terminal and the female terminal, it may also employ an assembling method to install an elastic C-ring to press the end of the thin-walled tube tightly.

    Claims

    1. A cage-type hyperbolic spring structure for being applied in a jack terminal, comprising: a plurality of elongated annular springs; and a machined body, wherein each one of the plurality of elongated annular springs comprises an inner ring spring and an outer ring spring, both the inner ring spring and the outer ring spring are in a shape of straight line, the plurality of elongated annular springs are annularly wound into a closed cylindrical annular structure by laser spot welding, and the inner ring spring is closer to an axial line of the cylindrical annular structure than the outer ring spring; the machined body is in a circular tubular shape, and the cylindrical annular structure is inserted into the machined body and closely fits the machined body; and a pressing structure configured to press the cylindrical annular structure and the machined body tightly is provided at an end of the machined body; wherein each end of elongated annular spring forms an included angle being larger than 0 degree and not larger than 90 degrees with respect to a radial direction; and wherein the outer ring spring is in parallel with an axial direction, and the inner ring spring forms an included angle being larger than 0 degree and not larger than 20 degrees with respect to an axial direction.

    2. The spring structure according to claim 1, wherein in the elongated annular spring, each copper wire has a diameter ranging from 0.05 mm to 10 mm.

    3. A socket, comprising: at least one jack, wherein the spring structure according to claim 2 is equipped in the jack.

    4. The spring structure according to claim 1, wherein the pressing structure is an inclined riveting necked port or an elastic C-ring.

    5. A socket, comprising: at least one jack, wherein the spring structure according to claim 4 is equipped in the jack.

    6. The spring structure according to claim 1, wherein the machined body has a wall thickness ranging from 0.5 mm to 5 mm.

    7. A socket, comprising: at least one jack, wherein the spring structure according to claim 6 is equipped in the jack.

    8. A socket, comprising: at least one jack, wherein the spring structure according to claim 1 is equipped in the jack.

    Description

    BRIEF DESCRIPTION OF THE DRAWINGS

    (1) FIG. 1 is a schematic view showing an embodiment of a hyperbolic columnar canted spring according to embodiments of the present application;

    (2) FIG. 2 is a schematic view showing another embodiment of the hyperbolic columnar canted spring according to the embodiments of the present application;

    (3) FIG. 3 is a schematic view showing the structure of the hyperbolic columnar canted spring, in which each of an inner ring spring and an outer ring spring forms an included angle with respect to an axial direction;

    (4) FIG. 4 is a schematic view showing another structure of the hyperbolic columnar canted spring, in which each of the inner ring spring and the outer ring spring is in parallel with respect to the axial direction;

    (5) FIG. 5 is a schematic view showing another structure of the hyperbolic columnar canted spring, in which the outer ring spring is in parallel with the axial direction, and the inner ring spring forms an included angle with respect to the axial direction;

    (6) FIG. 6 is a schematic view showing an embodiment of the structure of a machined body according to the embodiments of the present application; and

    (7) FIG. 7 is a schematic view showing an embodiment of the structure of an elastic C-ring according to the embodiments of the present application.

    DETAILED DESCRIPTION

    (8) For making the person skilled in the art better understand the solution of the present application, the technical solutions in the embodiments of the present application will be described clearly and completely hereinafter in conjunction with the drawings in the embodiments of the present application. Apparently, the described embodiments are only a part of the embodiments of the present application, rather than all embodiments. Based on the embodiments in the present application, all of other embodiments, made by the person skilled in the art without any creative efforts, fall into the scope of the present application.

    (9) A cage-type hyperbolic spring structure is provided according to an embodiment of the present application, as shown in FIGS. 1 and 2, which is applied in a jack terminal. The cage-type hyperbolic spring structure includes a closed cylindrical annular structure 1 and a machined body 2. Multiple copper hyperbolic springs are annularly wound into the closed cylindrical annular structure 1 by laser spot welding or a thin hollow tube. The cylindrical annular structure is inserted into the machined body and closely fits the machined body 2. A pressing structure 3 is provided at an end of the machined body 2 for pressing the cylindrical annular structure and the machined body 2 tightly, as in FIG. 6 which shows a schematic view of an embodiment of the structure of the machined body 2.

    (10) Optionally, a thin copper sheet configured to support the hyperbolic columnar canted spring is inserted into the cylindrical annular structure, and the thin copper sheet may have a thickness ranging from 0.2 mm to 10 mm.

    (11) Optionally, spring wires of the hyperbolic columnar canted springs at two ends of a columnar part form an included angle ranging from 0 degree to 90 degrees in a radial direction.

    (12) Optionally, as shown in FIG. 3, in the hyperbolic columnar canted spring, each of an inner ring spring and an outer ring spring forms an included angle ranging from 0 degree to 20 degrees with respect to an axial direction.

    (13) Optionally, as shown in FIG. 4, in the hyperbolic columnar canted spring, each of an inner ring spring and an outer ring spring is in parallel with an axial direction.

    (14) Optionally, as shown in FIG. 5, in the hyperbolic columnar canted spring, the outer ring spring is in parallel with an axial direction, and the inner ring spring forms an included angle ranging from 0 degree to 20 degrees with respect to the axial direction.

    (15) Optionally, the hyperbolic columnar canted spring is in a U shape in the radial direction.

    (16) Optionally, in the hyperbolic columnar canted spring, each copper wire has a diameter ranging from 0.05 mm to 10 mm.

    (17) Optionally, as shown in FIG. 1, the pressing structure 3 is an inclined riveting necked port, as shown in FIG. 2, the pressing structure 3 is an elastic C-ring for pressing the cylindrical annular structure and the machined body tightly, as in FIG. 7 which is a schematic view showing the structure of the elastic C-ring.

    (18) In the present application, copper wires are employed as a raw material (with a diameter ranging from 0.05 mm to 10 mm), and are formed into the following two kinds of springs, namely, a hyperbolic inclined spring and a hyperbolic straight spring, by being shaped with a spring machine, and then are annularly wound into a closed cylindrical annular structure by an assembling method or by a laser spot welding method. In the assembling method, two ends of the thin copper wires are respectively inserted into a common machined body, and then are riveted together to form a closed loop. In the laser spot welding method, the two ends of the copper wires are fused and sintered together by current which is generated by positive and negative electrodes. In the process of forming the annular closed loop, a thin copper sheet may be inserted into the spring to function as a liner for supporting the annular spring if the copper wires are too thin, which depends on the size of the diameter of the spring wires.

    (19) The hyperbolic inclined spring according to the embodiments of the present application has the following advantages.

    (20) Firstly, since a inclined structure is employed, male and female terminals form a perfect winding structure when in a plugged state, which allows each copper wire to completely fit a surface of the male terminal, and further, the copper wires wrap the surface of the male terminal densely, and this dense line contact method greatly improves current passing capability; further, due to the hyperbolic characters, it not only ensures a stable contact of the male terminal with the spring in a plugged state, but also ensures a stable contact of the spring in a state of being assembled into the machined terminal.

    (21) Secondly, an included angle between each copper wire and the radial direction enables each copper wire to generate an elastic deformation rather than a plastic deformation in a compressed process, which improves service life of the product, and postpones the time of degradation of the spring.

    (22) Thirdly, since the contact area is deformed elastically, a plugging force may maintain a stable positive pressure even if it is very small, which realizes a stable contact by a very small plugging force, and by nearly a zero force, therefore, it can be called a solution of zero plugging force.

    (23) Fourthly, due to an included angle between a plane formed by each wire and the radial direction, it may ensure that the springs may overlap with each other during being compressed, which may reduce the space occupied by the elastic deformation of the springs, and therefore may ensure a small volume of the spring structure.

    (24) The advantages of using the hyperbolic straight spring are as follows.

    (25) The deformation of the spring for being compressed radially comes from a combined effect of a radial U shaped deformation and an elastic normal deformation, which may ensure a positive pressure being applied during the plugging of the male terminal and the female terminal, and ensure a stable contact between the male terminal and the female terminal under a large current. Other advantages of the hyperbolic straight spring are similar to those of the hyperbolic inclined spring.

    (26) A socket is further provided according to an embodiment of the present application, the socket includes at least one jack, as shown in FIG. 4, a cage-type hyperbolic spring structure is equipped in the jack, and the cage-type hyperbolic spring structure is any one of the cage-type hyperbolic spring structures according to the first aspect.

    (27) The person skilled in the art may clearly know that, for the ease and brevity of the description, in the above embodiments, the descriptions of the embodiments focus on different aspects, a part which is not described in detail in a certain embodiment may refer to relevant description of other embodiments.

    (28) The above embodiments are just used for illustrating the technical solution and not for limitation. Although the present application is described in detail with reference to the aforementioned embodiments, it should be understood by the person skilled in the art that the technical solutions described in each of the embodiments can be modified, or some of the technical features can be replaced equivalently. Such modification and replacement do not make the nature of the corresponding technical solution depart from the spirit and scope of technical solution of each of the embodiments of the present application.