The present disclosure relates to a female terminal, a connector module, a communication cable with connector and a connector assembly.
This application claims a priority based on Japanese Patent Application No. 2019-078760 filed on Apr. 17, 2019, the contents of which are hereby incorporated by reference.
In recent years, high communication of e.g. 100 Mbps or faster has been required. A communication cable with connector used in such high-speed communication is disclosed, for example, in Patent Document 1 and the like. The communication cable with connector of Patent Document 1 includes a communication cable having a conductor and a shield terminal (connector module) to be mounted on an end part of the communication cable. The shield terminal includes a terminal unit and an outer conductor (shield member) for shielding electromagnetic waves. The terminal unit includes an inner conductor (terminal) functioning as a terminal and a dielectric (connector member) made of synthetic resin and functioning as a connector.
Terminals include male terminals and female terminals. For example, a female terminal shown in Patent Document 2 includes a rectangular tube portion (tubular portion) for receiving the tip of a male terminal and a female terminal body (connecting portion) to be electrically connected to a conductor. A resilient pressing piece (leaf spring portion) is provided inside the rectangular tube portion. The resilient pressing piece presses the male terminal inserted into the rectangular tube portion against the inner peripheral surface of the rectangular tube portion, thereby ensuring electrical connection between the male terminal and the female terminal. On the other hand, the female terminal body is provided with a crimping portion (wire barrel) to be electrically connected to the conductor of a communication cable and an insulation barrel for gripping a sheath of the communication cable. The female terminal is normally fabricated by press-molding one plate material having parts, which constitute respective parts of the female terminal.
A female terminal of the present disclosure is to be provided on an end part of a communication cable including a conductor and includes a tubular portion, a male terminal being inserted into the tubular portion, and a connecting portion to be electrically connected to the conductor, wherein the tubular portion includes a leaf spring portion for pressing an outer peripheral surface of the male terminal inserted into the tubular portion, and an outer part of the leaf spring portion is exposed on an outer periphery of the tubular portion.
A connector module of the present disclosure includes the female terminal of the present disclosure and a connector portion for accommodating the female terminal.
A communication cable with connector of the present disclosure includes the connector module of the present disclosure and a communication cable having a conductor to be electrically connected to the female terminal.
A connector assembly of the present disclosure includes the communication cable with connector of the present disclosure, a signal cable including an inner housing having a plurality of second terminals, and an outer housing for accommodating the connector member and the inner housing.
A conventional female terminal described in Patent Document 2 or the like has a very complicated shape. For example, a resilient pressing piece (leaf spring portion) provided in the female terminal is constituted by a cantilevered member linked to an opening of a rectangular tube portion (tubular portion), and covered by a bottom wall portion of the rectangular tube portion. In fabricating the female terminal having such a shape, after a part of a plate material, which will become the resilient pressing piece, is bent by press-working, the rectangular tube portion is further formed by press-working. Thus, a manufacturing process of the conventional female terminal is cumbersome, which has presented a problem that the productivity thereof is not good.
Accordingly, one object of the present disclosure is to provide a female terminal having a simple configuration. Another object of the present disclosure is to provide a connector module, a communication cable with connector and a connector assembly each provided with the above female terminal.
The female terminal of the present disclosure is excellent in productivity since having a simple configuration. Further, the connector module, the communication cable with connector and the connector assembly of the present disclosure are excellent in productivity since including the female terminal of the present disclosure.
First, embodiments of the present disclosure are listed and described.
<1> A female terminal according to an embodiment is a female terminal to be provided on an end part of a communication cable including a conductor, and includes a tubular portion, a male terminal being inserted into the tubular portion, and a connecting portion to be electrically connected to the conductor, wherein the tubular portion includes a leaf spring portion for pressing an outer peripheral surface of the male terminal inserted into the tubular portion, and an outer part of the leaf spring portion is exposed on an outer periphery of the tubular portion.
The female terminal of the embodiment has such a simple configuration that the outer part of the leaf spring portion is exposed on the outer periphery of the tubular portion. In fabricating the female terminal of the embodiment, the tubular portion needs not be formed to cover the leaf spring portion after the formation of the leaf spring portion unlike a conventional female terminal. Therefore, the female terminal of the embodiment is excellent in productivity.
The female terminal of <1> described above may be the following female terminal.
A female terminal to be provided on an end part of a communication cable including a conductor, the female terminal being a press-molded body made of one plate material and including a tubular portion in the form of a rectangular tube having a terminal hole, a male terminal being inserted into the terminal hole, and a connecting portion to be electrically connected to the conductor, wherein a part of one surface of the tubular portion includes a leaf spring portion for pressing an outer peripheral surface of the male terminal inserted into the tubular portion, two corner parts of the tubular portion across the leaf spring portion are punched out, an end part of the leaf spring portion on the side of the terminal hole and an end part of the leaf spring portion on the side of the connecting portion are linked to the tubular portion and a center of the leaf spring portion in an axial direction of the tubular portion is curved inwardly of the tubular portion, an outer part of the leaf spring portion is exposed on an outer periphery of the tubular portion, and a seam where edge parts of the one plate material butt against each other is located on a center of a surface of the tubular portion opposite to the leaf spring portion and extends along an axial direction of the terminal hole.
Further, the female terminal of <1> described above may be the following female terminal.
A female terminal to be provided on an end part of a communication cable including a conductor, the female terminal being a press-molded body made of one plate material and including a tubular portion in the form of a rectangular tube having a terminal hole, a male terminal being inserted into the terminal hole, and a connecting portion to be electrically connected to the conductor, wherein a part of one surface of the tubular portion includes a leaf spring portion for pressing an outer peripheral surface of the male terminal inserted into the tubular portion, two corner parts of the tubular portion across the leaf spring portion are punched out, an end part of the leaf spring portion on the side of the terminal hole and an end part of the leaf spring portion on the side of the connecting portion are linked to the tubular portion and a center of the leaf spring portion in an axial direction of the tubular portion is curved inwardly of the tubular portion, an outer part of the leaf spring portion is exposed on an outer periphery of the tubular portion, and a thickness of each part is 0.05 mm or more and 0.15 mm or less.
<2> As one form of the female terminal according to the embodiment, the female terminal includes only a wire barrel to be linked to the conductor as a barrel for gripping an outer periphery of the communication cable.
A conventional female terminal includes an insulation barrel for gripping a sheath of a communication cable in addition to a wire barrel. In contrast, the female terminal of the above embodiment includes only the wire barrel. Therefore, the female terminal of the embodiment is small in size and light in weight and excellent in productivity.
Here, if the female terminal includes no insulation barrel, a communication cable preferably has a configuration for preventing the detachment of the female terminal from an end part of the communication cable. Such a configuration may be, for example, a clamp portion provided on a connector member. The clamp portion is described in detail in an embodiment.
<3> As one form of the female terminal according to the embodiment, the tubular portion includes an engaging claw to be engaged with a connector member provided on the end part of the communication cable.
The female terminal is accommodated into the connector member constituted by an insulator such as a resin. The female terminal needs to be fixed to the connector member. If the female terminal is formed with the engaging claw and the connector member is formed with an engaging recess corresponding to the engaging claw, the female terminal and the connector member are firmly fixed.
Further, the configuration of the connector member is simplified by providing the engaging claw having a more complicated shape than the engaging recess on the side of the female terminal. Therefore, the connector member can be reduced in size by forming the engaging claw on the female terminal.
<4> As one form of the female terminal according to the embodiment, the female terminal is made of stainless steel.
The female terminal of the embodiment includes no protecting portion for covering the outer periphery of the leaf spring portion unlike a conventional female terminal. Therefore, the female terminal of the embodiment is preferably excellent in strength. Stainless steel is preferable in having excellent conductivity while ensuring the strength of the female terminal. Stainless steels suitable for the female terminal are listed in the embodiment to be described later.
<5> As one form of the female terminal according to the embodiment described in <4> above, a thickness of each part is 0.05 mm or more and 0.15 mm or less.
The female terminal made of stainless steel has sufficient strength even if the thickness of each part of the female terminal is 0.05 mm or more and 0.15 mm or less. If the thickness of each part of the female terminal is 0.15 mm or less, the female terminal can be reduced in size. Particularly, the female terminal of the embodiment includes no protecting portion for covering the outer periphery of the leaf spring portion. Therefore, if the thickness of each part of the female terminal is 0.15 mm or less, the female terminal of the embodiment can be considerably reduced in size as compared to conventional female terminals.
<6> A connector module according to the embodiment includes the female terminal according to the embodiment, and a connector portion for accommodating the female terminal.
The above connector module is excellent in productivity. This is because the female terminal provided in the connector module is excellent in productivity.
<7> A communication cable with connector according to the embodiment includes the connector module according to the embodiment, and a communication cable including a conductor to be electrically connected to the female terminal.
The above communication cable with connector is excellent in productivity. This is because the connector module provided in the communication cable with connector is excellent in productivity.
<8> A connector assembly according to the embodiment includes the communication cable with connector according to the embodiment, a signal cable including an inner housing having a plurality of second terminals, and an outer housing for accommodating the connector member and the inner housing.
The above connector assembly is excellent in productivity. This is because the communication cable with connector provided in the connector assembly is excellent in productivity.
Hereinafter, specific examples of a female terminal, a connector module, a communication cable with connector and a connector assembly according to embodiments of the present disclosure are described on the basis of the drawings. In figures, the same reference signs denote the same components. Note that the present invention is not limited to these illustrations and is intended to be represented by claims and include all changes in the scope of claims and in the meaning and scope of equivalents.
<<Communication Cable with Connector and Connector Module>>
In this example, a communication cable with connector 1 used in wired high-speed communication in an automotive vehicle is described on the basis of
The communication cable with connector 1 of the embodiment shown in
As shown in
<<Shield Member>>
Overall Configuration
The shield member 4 is described mainly with reference to
The shield member 4 of this example is configured such that two tubular bodies 4A arranged in parallel are coupled into one body by a coupling portion 4B. Either of the two tubular bodies 4A has a continuous peripheral wall and has no hole penetrating through the inside and outside thereof. The both tubular bodies 4A and the coupling portion 4B are integrally molded. Although the connector member 5 is accommodated in one tubular body 4A in
When the communication cable with connector 1 of this example is connected to the unillustrated circuit board, unillustrated male terminals are inserted into openings 40 of the tubular bodies 4A. The male terminals are mating terminals corresponding to the female terminals.
As shown in
An axial length of the tubular body 4A is about 19 mm or more and 21 mm or less. On the other hand, a maximum outer diameter of the tubular body 4A is about 6.5 mm or more or 7 mm or less. That is, the size of the tubular body 4A is very smaller than that of a shielding structure called a shell in a power cable.
The shield member 4 of
A material of the shield member 4 is not particularly limited as long as it is an alloy having a high electrical conductivity. However, the material of the shield member 4 is preferably a zinc alloy. The zinc alloy is an alloy in which a most contained element is zinc (Zn), out of elements constituting the alloy. For example, the zinc alloy is an alloy containing at least one element selected from a group composed of aluminum (Al), magnesium (Mg), iron (Fe), lead (pb), cadmium (Cd) and tin (Sn) besides zinc. In high-speed communication of 100 Mbps, the shield member 4 made of zinc alloy is better in shielding performance to shield electromagnetic waves than the shield member 4 made of aluminum alloy. Since the zinc alloy is excellent in electrical conductivity and strength, it is suitable as the material of the shield member 4. Further, since having a low viscosity, the molten zinc alloy easily spreads into narrow clearances of the mold. Therefore, the small-size and thin shield member 4 can be fabricated with good dimensional accuracy by using the zinc alloy. The zinc alloy is suitable as the material of the shield member 4 also because of its inexpensiveness.
The shield member 4 formed of the cast body can be so fabricated as to include no hole open in the peripheral surface thereof. Since the hole in the peripheral surface of the shield member 4 serves as a path of electromagnetic waves, this hole reduces the shielding performance of the shield member 4. The shield member 4 of this example has no hole serving as the path of electromagnetic waves in the peripheral surface thereof. Therefore, the connector module 3 of this example including the shield member 4 of this example is excellent in electromagnetic wave shielding performance. The communication cable with connector 1 of this example excellent in shielding performance is suitable for high-speed communication of 100 Mbps or faster.
The shield member 4 formed of the cast body can be easily assembled with the connector members 5. This is because the shield member 4 formed of the cast body needs not have a split structure. Thus, the connector module 3 and the communication cable with connector 1 including the shield member 4 of this example are excellent in productivity.
The shield member 4 formed of the cast body can be accurately mounted on the connector member 5. This is because it is sufficient to consider only manufacturing tolerances at the time of casting the shield member 4 in the case of mounting the shield member 4 formed of the cast body on the connector member 5. Unlike this example, it is difficult to accurately mount a conventional shield member described, for example, in Japanese Patent Laid-open Publication No. 2018-152174 or the like on a connector member. The conventional shield member is formed by combining two press-molded bodies. Thus, in the case of mounting the conventional shield member on the connector member, it is necessary to consider both processing tolerances of the members during press molding and assembling tolerances when the two members are combined. Because of these two tolerances, it is difficult to accurately mount the conventional shield member on the connector member.
Other Components
Shield-side engaging portions 42 to be engaged with the outer peripheries of the connector members 5 are provided inside the tubular shield member 4 (inside the tubular bodies 4A) (see
The shield member 4 includes first guide portions 41 provided at positions corresponding to the clearances 40h on the inner peripheral edges of the openings 40. The first guide portion 41 is formed by gradually thinning the shield member 4 from an axially inner side of the tubular body 4A toward the opening 40. This first guide portion 41 is provided at a position corresponding to the ground terminal 10 (
A protruding portion 44 is provided near the first guide portion 41 in the opening 40. The protruding portion 44 is formed by the projecting inner peripheral surface of the tubular body 4A of the shield member 4. As shown in
The shield member 4 formed of the cast body tends to be thicker than a shield member formed of a pressed body. This is because it is necessary to consider the fillability of the molten alloy into the mold at the time of fabricating the shield member 4. If the shield member 4 is thick, the size and mass of the shield member 4 may become large. In view of these points, a minimum value of the thickness of the shield member 4 (except at the positions of inclined surfaces of the first guide portions 41) is preferably 0.25 mm or more and 1.0 mm or less. A minimum distance between the inclined surface of the first guide portion 41 and the outer peripheral surface of the shield member 4 can be less than 0.25 mm. If the minimum value of the thickness of the shield member 4 is 0.25 mm or more, the fillability of the molten alloy at the time of fabricating the shield member 4 is hardly deteriorated. Moreover, sufficient strength of the shield member 4 is ensured. On the other hand, if the minimum value of the thickness of the shield member 4 is 1.0 mm or less, the enlargement and weight increase of the shield member 4 are suppressed. A more preferable minimum value of the thickness is 0.3 mm or more and 0.9 mm or less.
The shield member 4 preferably includes locally thickened thick portions 43. In this example, the thick portions 43 are formed on one surface side of the shield member 4 shown in
<<Communication Cable>>
The communication cable 2 shown in
The communication cable 2 (twisted pair cable) includes two wires 2A, 2B twisted as shown in
An end part of the communication cable 2 is stripped. The wires 2A, 2B are exposed from the interposed insulation layer 22 on a most tip side of the communication cable 2 and the conductors 20 are exposed from the conductor insulation layers 21 on the tips of the wires 2A, 2B. Further, the shielding layer 23 is exposed from the sheath 24 on an end part of the communication cable 2. A part of the shielding layer 23 exposed from the sheath 24 is exposed from a rear end part (end part on the side of the communication cable 2) of the shield member 4 as shown in sections of
<<Connector Member>>
The connector member 5 of this example constituting the connector module 3 includes a housing 50 and a cover 51 as shown in
Housing
The housing 50 shown in
The connector tube portion 50A includes a pair of insertion holes 5h into which the female terminals 6 (
The pedestal portion 50B is provided with housing-side engaging portions 50E and a through hole 57. The housing-side engaging portions 50E are used to couple the housing 50 and the cover 51. The housing-side engaging portions 50E of this example are formed by engaging holes penetrating through the pedestal portion 50B. On the other hand, the through hole 57 is provided at a position corresponding to the connected parts of the female terminals 6 and the conductors 20 shown in
Cover
The cover 51 shown in
As shown in
Configuration for Fixing Communication Cable to Connector Member
As shown in
One the other hand, as shown in
As shown in
Here, in a conventional communication cable with connector, a communication cable and a connector member are engaged by a crimp ring made of metal (see, for example, Japanese Patent Laid-open Publication No. 2017-126408, etc.). More specifically, the crimp ring is mounted on the outer periphery of a sheath of the communication cable. A part of the crimp ring protrudes radially outwardly of the ring. This protruding part is fit into a cut groove formed in the connector member, whereby the communication cable and the connector member are engaged. However, in a configuration using the crimp ring, the connector member tends to be long. This is because the connector member has to have such a length capable of enclosing the crimp ring gripping the sheath. For example, in the case of providing a crimp ring for the connector member 5 according to this embodiment, a length of the connector member 5 is about 23 mm.
As compared to the conventional connector member using the crimp ring, the connector member 5 of this example is short. This is because the clamp portions 53, 54 grip a part of the communication cable 2 having the sheath 24 stripped therefrom in the connector member 5 of this example. In the configuration for gripping the communication cable 2 by the clamp portions 53, 54, the length of the connector member 5 can be 22 mm or less. If the connector member 5 is made shorter, the shield member 4 for covering the connector member 5 can also be made shorter. Thus, the connector module 3 is considerably reduced in weight. A more preferable length of the connector member 5 is 20 mm or less. A lower limit value of the length of the connector member 5 is about 10 mm
Configuration for Assisting Contact of Ground Terminal and Shield Member
As shown in
Fixing of Connector Member to Shield Member
As shown in
As shown in
The connector member 5 is inserted into the shield member 4 from a base end side (side of an accommodating portion 47) (see
<<Female Terminals>>
The female terminals 6 to be accommodated into the connector member 5 are described mainly with reference to
The female terminal 6 is fabricated by press-molding one plate material. The plate material before being pressed has a bilaterally symmetrical shape. The female terminal 6 includes a tubular portion 6A and a connecting portion 6B. The tubular portion 6A includes a terminal hole 6h, into which an unillustrated male terminal is inserted. By the mechanical contact of the female terminal 6 and the male terminal, the female terminal 6 and the male terminal are electrically connected.
The tubular portion 6A includes a leaf spring portion 60 for pressing the outer peripheral surface of the male terminal inserted into the terminal hole 6h. An outer part of this leaf spring portion 60 is exposed on the outer periphery of the tubular portion 6A. As shown in
If one plate material having a bilaterally symmetrically shape is press-molded, a seam 69 at which edge parts of the plate material are butted against each other is arranged in a center of a surface of the tubular portion 6A opposite to the leaf spring portion 60. The seam 69 extends along an axial direction of the terminal hole 6h. The female terminal 6 is bilaterally symmetrically shaped with respect to the seam 69. An overlapping part of the plate material is not present in the female terminal 6 of this example. Since conductivity nonuniformity hardly occurs in the bilaterally symmetric female terminal 6, loss of a transmission signal is reduced. Therefore, the transmission characteristic of the communication cable with connector 1 provided with the female terminals 6 is improved.
In the small-size female terminal 6 as used in a communication cable, the seam 69 is normally not arranged on the surface of the tubular portion 6A into which the male terminal is inserted. This is because the seam 69 arranged on the surface of the tubular portion 6A means that the end faces of the plate material of the female terminal 6 are butted against each other and the seam 69 may be opened due to the springback of the pressed plate material. On the other hand, in this example, the female terminal 6 is inserted into the insertion hole 5h of the connector member 5 almost without any clearance and the outer periphery of the female terminal 6 is surrounded by the connector member 5 as shown in
A pressing portion 61 concave toward the inside of the tubular portion 6A is provided on a surface of the tubular portion 6A opposite to the leaf spring portion 60. The pressing portion 61 presses the male terminal accommodated into the tubular portion 6A toward the leaf spring portion 60. As a result, the contact of the male terminal and the leaf spring portion 60 is reliably ensured. The pressing portion 61 of this example is also exposed on the outer periphery of the tubular portion 6A. Since nothing covers the pressing portion 61 from outside, the pressing portion 61 can be simultaneously formed when the tubular portion 6A is press-molded.
The connecting portion 6B is a part to be electrically connected to the conductor 20 (
The female terminal 6 includes the engaging claw 63 to be engaged with the engaging recess 56 of the connector member 5 (
The female terminal 6 used in the communication cable 2 is very small in size. For example, an axial length of the female terminal 6 is about 10 mm or more and 15 mm or less. Further, lengths of long sides of the terminal hole 6h of the female terminal 6 are about 0.9 mm or more and 1.1 mm or less and lengths of short sides thereof are about 0.4 mm or more and 0.6 mm or less.
A thickness of each part of the female terminal 6 is preferably 0.15 mm or less. As already described, each part of the shield member 4 formed of the cast body tends to be thicker than a shield member formed of a pressed body. To avoid the enlargement of the shield member 4, the connector member 5 and the female terminals 6 to be arranged inside the shield member 4 are preferably reduced in size. If the thickness of each part of the female terminal 6 is 0.15 mm or less, the female terminal 6 is easily reduced in size.
The thickness of each part of the female terminal 6 is preferably 0.05 mm or more. If this thickness is 0.05 mm or more, the strength of the female terminal 6 is ensured. A more preferable thickness of each part of the female terminal 6 is 0.075 mm or more and 0.13 mm or less. An even more preferable thickness of each part of the female terminal 6 is 0.080 mm or more and 0.10 mm or less. The thickness mentioned here does not include a thickness of an edge formed by bending the plate material constituting the female terminal 6.
The female terminal 6 is made of the material excellent in conductivity. Here, the female terminal 6 includes no protecting portion for covering the outer periphery of the leaf spring portion 60 unlike conventional female terminals. Thus, the female terminal 6 of this example is preferably made of a material excellent in strength. An example of the material excellent in conductivity and strength is stainless steel. Stainless steels preferable for the female terminal 6 of this example are, for example, 1.4372, 1.4373, 1.4310, 1.4318, 1.4305, 1.4307, 1.4306, 1.4311, 1.4303, 1.4401, 1.4436, 1.4404, 1.4432, 1.4435, 1.4406, 1.4429, 1.4571, 1.4438, 1.4434, 1.4439, 1.4539, 1.4541, 1.4550, 1.4587, 1.4381, 1.4462, 1.4507 and 1.4002 in European standards. Among these, 1.4310 and 1.4318 are, for example, preferable in terms of conductivity and strength. The surface of the female terminal 6 is preferably plated with a material excellent in conductivity. A plating material is, for example, tin (Sn) or silver (Ag).
The female terminal 60 configured as described above has a very simple configuration. Particularly, since the female terminal 6 has no configuration for covering the leaf spring portion 60 and the pressing portion 61 from outside, the leaf spring portion 60 and the pressing portion 61 can be simultaneously fabricated when the tubular portion 6A is press-molded. Therefore, the female terminal 6 of this example can be more easily fabricated than conventional female terminals.
The female terminal 6 is preferably handled in a state accommodated in the housing 50 of the connector member 5. In this case, the female terminal 6 is protected by the housing 50. Therefore, the female terminal 6 is hardly damaged even if the female terminal 6 is very small in size and thin.
<<Conductive Rubber Member>>
The communication cable with connector 1 of this example includes the tubular conductive rubber member 7 arranged on the outer periphery of the shielding layer 23 exposed from the sheath 24 in the end part of the communication cable 2 as shown in
Due to resilience, the conductive rubber member 7 is easily arranged on the outer periphery of the shielding layer 23. This is because the conductive rubber member 7 can be arranged on the outer periphery of the shielding layer 23 only by fitting the conductive rubber member 7 expanded in diameter to the communication cable 2. Thus, the communication cable with connector 1 using the conductive rubber member 7 is excellent in productivity. Further, due to resilience, the conductive rubber member 7 is easily held in close contact with the outer periphery of the shielding layer 23. Therefore, in the communication cable with connector 1 using the conductive rubber member 7, electrical connection between the shielding layer 23 and the shield member 4 is reliably ensured.
The conductive rubber member 7 is press-fit into the accommodating portion 47 provided in a rear end part (end part on the side of the communication cable 2) of the shield member 4. The conductive rubber member 7 presses the accommodating portion 47 from inside and is held in close contact with the accommodating portion 47. Thus, the shielding layer 23 is reliably grounded. Further, the conductive rubber member 7 press-fit into the accommodating portion 47 functions as a water stop plug for suppressing the intrusion of environmental water into the shield member 4.
The conductive rubber member 7 of this example does not entirely cover the shielding layer 23. A part of the shielding layer 23 not covered by the conductive rubber member 7 is arranged inside the water stop plug 30. Unlike this example, this conductive rubber member 7 may have such a length as to reach the outer periphery of the sheath 24 in the axial direction of the communication cable 2. For example, the conductive rubber member 7 and the water stop plug 30 to be described later are integrated. In that case, the number of components constituting the communication cable with connector 1 is reduced, wherefore the productivity of the communication cable with connector 1 is improved.
<<Water Stop Plug>>
The water stop plug 30 shown in
The water stop plug 30 is provided near the conductive rubber member 7, more specifically at a position in contact with a rear end part (end part on the side of the communication cable 2) of the conductive rubber member 7. This water stop plug 30 includes a cable hole 30h through which the communication cable 2 is inserted. The cable hole 30h includes a small-diameter portion h1 and a large-diameter portion h2 having a larger diameter than the small-diameter portion h1. That is, the cable hole 30h of the water stop plug 30 is formed with a step before the water stop plug 30 is mounted on the communication cable 2, i.e. before the water stop plug 30 is expanded in diameter. The small-diameter portion h1 is arranged on the side of the connector member 5, and the large-diameter portion h2 is arranged on the side of the communication cable 2. The inner peripheral surface of the small-diameter portion h1 is in close contact with the shielding layer 23, and the inner peripheral surface of the large-diameter portion h2 is in close contact with the sheath 24. Thus, at a location of the communication cable 2 where the sheath 24 is striped, the cable hole 30h of the water stop plug 30 and the outer peripheral surface of the communication cable 2 are in close contact with each other without any clearance. An end surface of the sheath 24 is hooked to the step between the small-diameter portion h1 and the large-diameter portion h2. That is, the water stop plug 30 of this example is structured to be directly mounted on the communication cable 2. The water stop plug 30 thus structured does not separately require a holder for fixing the water stop plug 30 at a desired position. Therefore, the productivity of the communication cable with connector 1 including cost and assembling efficiency is improved.
A plurality of annular projections 30p projecting radially outwardly of the water stop plug 30 are provided on the outer peripheral surface of the water stop plug 30. The plurality of annular projections 30p are arranged in an axial direction of the water stop plug 30. The annular projections 30p are deformed when the water stop plug 30 is pushed into the insertion hole of the outer housing 90, thereby facilitating the pushing of the water stop plug 30. Further, since the annular projections 30p are expanded radially outwardly to be held in close contact with the inner peripheral surface of the insertion hole after the water stop plug 30 is pushed into the insertion hole, water intrusion into a clearance between the inner peripheral surface of the insertion hole and the outer peripheral surface of the water stop plug 30 is firmly prevented.
The tip of the water stop plug 30 on the side of the connector member 5 presses the conductive rubber member 7. The tip surface of the water stop plug 30 is in close contact with the rear end surface of the conductive rubber member 7. Therefore, the intrusion of environmental water to the shielding layer 23 from a boundary between the water stop plug 30 and the conductive rubber member 7 is effectively suppressed.
In the water stop plug 30 having the step in the cable hole 30h, the entire water stop plug 30 needs not be expanded in diameter to the size of a part having a large outer diameter in the step shape of the communication cable 2. Thus, even in the case of fitting the very small water stop plug 30 to the thin communication cable 2, the water stop plug 30 needs not be expanded in diameter more than necessary. Therefore, the water stop plug 30 is easily fit on the outer periphery of the communication cable 2.
Further, since the cable hole 30h of the water stop plug 30 has the step, the step of the water stop plug 30 is stopped in contact with the end surface of the sheath 24 of the communication cable 2 when the water stop plug 30 is fit to the communication cable 2. Therefore, the water stop plug 30 is properly arranged at the desired position on the communication cable 2. Since the step of the water stop plug 30 is hooked to the end surface of the sheath 24, the water stop plug 30 on the communication cable 2 is hardly shifted in position by an external force or the like.
<First Modification>
A communication cable with connector 1 provided with a connector member 5 different from the first embodiment in the configurations of clamp portions 53, 54 is described on the basis of
As shown in
As shown in
A connector assembly 9 provided with the communication cable with connector 1 of the first embodiment is described on the basis of
The signal cable 8 is a cable for transmitting an electrical signal and includes an inner housing 81 on an end part thereof. The inner housing 81 includes a plurality of second terminals 80. The second terminals 80 of this example are female terminals. On the other hand, the outer housing 90 is a member for collectively accommodating the connector module 3 of the communication cable with connector 1 and the inner housing 81 of the signal cable 8.
The connector assembly 9 provided with the communication cable with connector 1 facilitates the construction of a communication environment in an automotive vehicle. If this connector assembly 9 is connected to a male connector assembly (not shown) provided on a circuit board of an in-vehicle device, a transmission route of the signal cable and a transmission route of the communication cable are simultaneously constructed.
A total number of the female terminals 6 and the second terminals 80 (poles) is preferably 20 or more and 200 or less. If the number of poles is 20 or more, many transmission routes can be constructed by one connection of the connector assembly 9. If the number of poles is 200 or less, connection resistance in connecting the female connector assembly 9 of this example to a male connector assembly does not become excessively high.
A pitch of the second terminals 80 is preferably 0.1 mm or more and 2.0 mm or less. If the pitch of the second terminals 80 is in the above range, the connector assembly 9 is easily reduced in size. If the connector assembly 9 can be reduced in size, the connector assembly 9 of a size corresponding to a male connector assembly to be provided on a circuit board is easily fabricated.
Number | Date | Country | Kind |
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2019-078760 | Apr 2019 | JP | national |
Filing Document | Filing Date | Country | Kind |
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PCT/JP2020/016801 | 4/16/2020 | WO | 00 |