The present application claims priority under 35 U.S.C. § 119 to Japanese Patent Application No. 2019-054588, filed on Mar. 22, 2019. The contents of this application are incorporated herein by reference in their entirety.
The present disclosure relates to a connector.
There is a known connection member that has a plate shape or a sheet shape. The connection member includes a flexible flat cable (FFC). Alternatively, the connection member includes a flexible printed circuit (FPC).
Robots have been actively introduced into processes of manufacturing electronic devices. The robots are capable of performing assembly work of inserting, into a connector, the connection member that has the plate shape or the sheet shape.
There is also a known connector including an insulation housing with a first opening, a second opening, and an FFC insertion opening. Each of contacts held by the insulation housing has a contact portion with a contact point, and a retainer preventing the contact from falling off. The FFC insertion opening communicates with the first opening. The contact portion protrudes into the first opening. The retainer is fixed by an inner wall of the second opening.
A connector according to an aspect of the present disclosure includes a connector body, a first elastic member, and a second elastic member. The connector body includes an insertion hole that allows a connection member to be inserted thereinto. Here, the connection member has a plate shape or a sheet shape. The first elastic member is a conductive member that includes a base fixed to the connector body. The second elastic member is a conductive member that includes a base fixed to the connector body. The first and second elastic members are elongated in a thickness direction of the connection member and butted against each other so as to partially block the insertion hole. Here, the thickness direction intersects an insertion direction of the connection member.
An embodiment of the present disclosure will hereinafter be described with the accompanying drawings. In the present specification, an X axis, a Y axis, and a Z axis perpendicular to one another are defined for convenience. The X axis and the Y axis are parallel to a horizontal direction, and the Z axis is parallel to a vertical direction. In the drawings, the same or equivalent elements are allocated the same reference signs, and description thereof will not be repeated.
A connector 110 according to an embodiment will first be described with reference to
As illustrated in
The connector body 120 has a central insertion hole 121 and respective end insertion holes 122 located at both ends of the connector body 120 in a Y-axis direction. Here, the end insertion holes 122 include a first end insertion hole 122 and a second end insertion hole 122. The central insertion hole 121 and the end insertion holes 122 communicate with each other.
The central insertion hole 121 is formed so that a width thereof in a Z-axis direction is narrower than that of each end insertion hole 122. The central insertion hole 121 and the end insertion holes 122 allow a central portion and end portions of the FFC 10 in the Y-axis direction to be inserted thereinto, respectively. The connector body 120 includes an inner wall 123 behind the central insertion hole 121 and the end insertion holes 122. The connector body 120 is made from for example resin.
The contacts 130 are supported behind the central insertion hole 121 by the connector body 120.
The first leaf spring 140 is an elastic member that has conductivity and that is formed in an elongated plate shape. A longitudinal direction of the first leaf spring 140 is parallel to the Z-axis direction. The first leaf spring 140 includes a base and a tip. The base is fixed to an edge of the first end insertion hole 122 of the end insertion holes 122. The tip is elongated from the base in a Z-axis negative direction so as to partially block the first end insertion hole 122.
The second leaf spring 141 is an elastic member that has conductivity and that is formed in an elongated plate shape. A longitudinal direction of the second leaf spring 140 is parallel to the Z-axis direction. The second leaf spring 141 includes a base and a tip. The base is fixed to an edge of the first end insertion hole 122. The tip is elongated from the base in a Z-axis positive direction so as to partially block the first end insertion hole 122. The elongated second leaf spring 141 is butted against the first leaf spring 140. That is, the tip of the second leaf spring 141 is in contact with the tip of the first leaf spring 140.
The first leaf spring 140 corresponds to one example of a “first elastic member”. The second leaf spring 141 corresponds to one example of a “second elastic member”.
The third leaf spring 142 is an elastic member that has conductivity and that is formed in an elongated plate shape. A longitudinal direction of the third leaf spring 142 is parallel to the Z-axis direction. The third leaf spring 142 includes a base and a tip. The base is fixed to an edge of the second end insertion hole 122 of the end insertion holes 122. The tip is elongated from the base in the Z-axis negative direction so as to partially block the second end insertion hole 122.
The fourth leaf spring 143 is an elastic member that has conductivity and that is formed in an elongated plate shape. A longitudinal direction of the fourth leaf spring 143 is parallel to the Z-axis direction. The fourth leaf spring 143 includes a base and a tip. The base is fixed to an edge of the second end insertion hole 122. The tip is elongated from the base in the Z-axis positive direction so as to partially block the second end insertion hole 122. The elongated fourth leaf spring 143 is butted against the third leaf spring 142. That is, the tip of the fourth leaf spring 143 is in contact with the tip of the third leaf spring 142.
The third leaf spring 142 corresponds to one example of a “third elastic member”. The fourth leaf spring 143 corresponds to one example of a “fourth elastic member”.
The FFC 10 that is the one example of the connection member will next be described with reference to
As illustrated in
As illustrated in
As illustrated in
As illustrated in
As illustrated in
As illustrated in
Robot work of inserting the FFC 10 into the connector 110 will next be described with reference to
As illustrated in
The robot moves the FFC 10 relative to the connector 110 in the X-axis positive direction. The end 11 of the FFC 10 is moved into the central insertion hole 121 and the end insertion holes 122 toward the inner wall 123 while elastically deforming the respective tips of the first and second leaf springs 140 and 141. The robot detects that the electrical connection between the first and second leaf springs 140 and 141 is broken.
As illustrated in
The robot confirms that the assembly of the FFC 10 is completed in each of the end insertion holes 122. This enables the robot to detect whether or not the FFC 10 is half-inserted. The state in which the FFC 10 is half-inserted means a state in which a connection failure occurs in at least part of all the terminals 21 of the FFC 10. Note that the first to fourth leaf springs 140 to 143 also serves to prevent the FFC 10 from coming off the connector 110.
Detection of an insertion force by the robot will next be described with reference to
In
When the end 11 of the FFC 10 hits the first and second leaf springs 140 and 141, the insertion force exhibits one peak because a force for elastically deforming the first and second leaf springs 140 and 141 is required. Subsequently, the insertion force becomes constant for a time period and then exhibits an inclination diagonally up to the right as illustrated in
Another example of the FFC 10 will next be described with reference to
The FFC 10 depicted in
The graph depicted in
The embodiment of the present disclosure has been described with reference to
Although the embodiment of the present disclosure provides for example the connector 110 that allows the FFC 10 to be inserted therein, the present disclosure is not limited to this. The connector 110 may be configured to allow an FPC to be inserted therein.
Although the embodiment of the present disclosure provides the first to fourth leaf springs 140 to 143 each of which has an elongated plate shape, the present disclosure is not limited to this. Respective tips of the first to fourth leaf springs 140 to 143 may be wavy in shape so that the first to fourth leaf springs 140 to 143 have their respective adjustable insertion forces.
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JP2019-054588 | Mar 2019 | JP | national |
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Number | Date | Country | |
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20200303855 A1 | Sep 2020 | US |