The present invention relates to a connector that is configured to forcibly release a fitting operation by a biasing force of spring members when the connector is half-fitted with a mating connector (a state before complete fitting).
As this kind of connector, a connector according to JP-A-11-224728 includes a tubular inner housing that holds a plurality of connecting terminals therein, a tubular outer housing that surrounds an outer periphery of the inner housing and is slidable in a fitting direction, a locking mechanism that locks the inner housing with a mating connector at a fitting position, a spring member that biases the inner housing to the rear in the fitting direction to push back the inner housing with respect to the outer housing if a fitting operation is released when the inner housing is in a half fitting position, and a pushback regulating portion that regulates a position where the inner housing is pushed back to the rear in the fitting direction. The pushback regulating portion includes a claw portion that protrudes from the outer periphery of the inner housing and a stepped portion that is provided in the outer housing and against which the claw portion can abut when the inner housing is pushed back. The stepped portion is configured by a rear end surface of a long hole provided to notch a part of the outer housing in the fitting direction.
In JP-A-11-224728, when the inner housing is pushed into the mating connector so that the mating connector is covered by the outer housing, the outer housing pushed against the mating connector moves to the rear in the fitting direction while compressing the spring member. When the inner housing is locked to the inner housing by the locking mechanism, the outer housing biased by the spring member is pushed out to the fitting direction and fitting of both connectors is completed.
When a hand moves away from the inner housing in a half fitting state before complete fitting, the compressed spring member biases the inner housing in a direction away from the outer housing. As a result, while the mating connector is pushed back by the outer housing, the inner housing is pushed back to the rear in the fitting direction, so that the fitting operation is forcibly released and half fitting of the connectors can be detected. In this case, the inner housing pushed back to the rear in the fitting direction by the spring member prevents backward detachment in the fitting direction by making the claw portion of the pushback regulating portion to abut against the stepped portion of the outer housing.
Since the connector of JP-A-11-224728 is a multipolar connector having multiple terminals and sliding friction between the terminals during connection (fitting) with the mating connector is large, the biasing force of the spring member (spring constant) may be set large in order to detect half fitting. However, if the biasing force of the spring member is too large, troubles may occur in the pushback regulating portion due to an impact that acts on the pushback regulating portion when the claw portion of the pushback regulating portion abuts against the stepped portion during half fitting.
For the connector including a mechanism that pushes back a housing by utilizing the biasing force of the spring member during half fitting, an object of the present invention is to provide a connector capable of reducing the impact that acts on the mechanism.
A “connector” according to the present invention has the following feature (1) and further preferably has the following features (2) to (4).
(1) The connector includes
a tubular inner housing that holds connecting terminals therein; a tubular outer housing that surrounds an outer periphery of the inner housing and is slidable in a fitting direction; a locking mechanism that locks the inner housing with a mating connector at a fitting position; a spring member that biases the inner housing to the rear in the fitting direction to push back the inner housing with respect to the outer housing if a fitting operation is released when the inner housing is in a half fitting position; and a pushback regulating portion that regulates a position where the inner housing is pushed back to the rear in the fitting direction,
wherein the pushback regulating portion includes
a claw portion that protrudes from a first sliding surface of one of the inner housing and the outer housing; a stepped portion that is provided on a second sliding surface of the other of the inner housing and the outer housing and against which the claw portion can abut when the inner housing is pushed back; and a sliding load portion that makes a sliding frictional force between the first sliding surface and the second sliding surface at a predetermined timing before the claw portion and the stepped portion abut against each other to be larger than the sliding frictional force before the predetermined timing.
According to the connector having the above feature (1), when the fitting operation is released during half fitting, a speed at which the inner housing is pushed back to the rear in the fitting direction by the biasing force of the spring member is reduced by the sliding frictional force of the sliding load portion. Accordingly, since an impact that acts on the pushback regulating portion when the claw portion of the pushback regulating portion abuts against the stepped portion can be reduced, even though the biasing force of the spring member is increased, the occurrence of troubles can be suppressed in the pushback regulating portion.
(2) The connector according to (1),
wherein the sliding load portion is an inclined surface provided at a position, closer to the stepped portion than the claw portion, of the first sliding surface and includes the inclined surface inclined to be away from the first sliding surface as approaching the claw portion.
According to the connector having the above feature (2), before the claw portion of the pushback regulating portion abuts against the stepped portion, the sliding frictional force between the sliding surfaces can be increased by a mating sliding surface (second sliding surface) getting on the inclined surface of one sliding surface (first sliding surface). Therefore, a moving speed of the claw portion during pushing back the housing can be reduced. Accordingly, the impact that acts on the pushback regulating portion when the claw portion of the pushback regulating portion abuts against the stepped portion can be reduced.
(3) The connector according to (1),
wherein the sliding load portion includes a first protruding portion provided at a position, closer to the stepped portion than the claw portion, of the first sliding surface; and a second protruding portion provided on the second sliding surface to be capable of getting over the first protruding portion.
According to the connector having the above feature (3), before the claw portion of the pushback regulating portion abuts against the stepped portion, the sliding frictional force between the sliding surfaces can be increased by the second protruding portion of the mating sliding surface (second sliding surface) getting over the first protruding portion of one sliding surface (first sliding surface). Therefore, the moving speed of the claw portion during pushing back the housing can be reduced. Accordingly, the impact that acts on the pushback regulating portion when the claw portion of the pushback regulating portion abuts against the stepped portion can be reduced.
(4) The connector according to (1),
wherein the sliding load portion includes an arm portion configured to elastically press one of the first sliding surface and the second sliding surface toward the other; and a third protruding portion provided on the other of the first sliding surface and the second sliding surface in sliding contact with the arm portion.
According to the connector having the above feature (3), before the claw portion of the pushback regulating portion abuts against the stepped portion, the sliding frictional force between the sliding surfaces can be increased by the arm portion (for example, an arm portion provided on one of the inner housing and the outer housing), which is configured to elastically press one of the first sliding surface and the second sliding surface toward the other, slidably contacting the third protruding portion of the mating sliding surface. Therefore, the moving speed of the claw portion during pushing back the housing can be reduced. Accordingly, the impact that acts on the pushback regulating portion when the claw portion of the pushback regulating portion abuts against the stepped portion can be reduced. In this case, since the arm portion and the third protruding portion may be provided at positions where the arm portion can be in sliding contact with the third protruding portion before the claw portion abuts against the stepped portion, the sliding load portion can be designed more freely.
According to the present invention, in a connector including a mechanism that pushes back a housing by utilizing a biasing force of a spring member during half fitting, a connector capable of reducing an impact that acts on the mechanism can be provided.
The present invention has been briefly described above. Further, details of the invention will be clarified by reading a mode (hereinafter, referred to as “embodiment”) for carrying out the invention to be described below with reference to attached drawings.
Hereinafter, a first embodiment of the present invention will be described with reference to
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The inner housing 16 includes a rectangular tubular housing body 21 and a flat plate-like hood portion 22 that is connected to an upper portion of the housing body 21 and protrudes forward than a front end of the housing body 21. A plurality of terminal accommodating chambers 23 are formed in the housing body 21. The mating terminals 12 are inserted into the terminal accommodating chambers 23 respectively from front openings of the chambers while the connecting terminals are inserted into the terminal accommodating chambers 23 respectively from the rear. Each of the terminal accommodating chambers 23 is provided with a flexible lance 24 that locks the connecting terminal to prevent from coming off (
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As a procedure for assembling the connector 1 described above, the connecting terminals to which electric wires are respectively connected are inserted into the terminal accommodating chambers 23 of the inner housing 16 respectively from the rear and locked to the lances 24, and the packing 29 and the front holder 32 are fitted into the inner housing 16 from the front. Subsequently, in a state where rear end portions of the spring members 19 are mounted to the first spring accommodating portions 25 of the inner housing 16 and front end portions of the spring members 19 are mounted to the second spring accommodating portions 49 of the outer housing 17, the inner housing 16 is assembled to the outer housing 17 while compressing the spring members 19 from the rear of the outer housing 17. When the first claw portion 33 and the second claw portions 39 of the inner housing 16 are respectively locked with the first stepped portion 54 and the second stepped portions 56 of the outer housing 17, the assembly of the connector 1 is completed.
Next, in order to fit and connect the connector 1 assembled in this way to the mating connector 2, first, the outer housing 17 of the connector 1 is placed over the mating housing 11, and the inner housing 16 is pushed against the mating connector 2. Next, a front portion of the mating housing 11 is fitted into the fitting space 48 between the inner housing 16 and the outer housing 17, and the outer housing 17 in which a front end portion of the arm piece 51 is pushed against the front portion of the mating housing 11 is retracted while compressing the spring members 19. At this time, the locking protrusion 15 of the mating housing 11, which enters the fitting space 28 between the front portion 27 of the inner housing 16 and the hood portion 22, is locked to the first protrusion 37 downwardly provided on the lock arm 36 which serves as the locking mechanism 18 of the inner housing 16 by pushing the first protrusion 37 of the lock arm 36 and deflecting the lock arm 36 upward. Accordingly, an upward deflection of the lock arm 36 is eliminated, the outer housing 17 biased by the spring members 19 is pushed out in the fitting direction, and the biasing force of the spring members 19 is released, thereby reaching a complete fitting of the two connectors 1 and 2 and completing the fitting connection. When the outer housing 17 is pushed out in the fitting direction, the inclined surface 17a of the notch portion 50 of the outer housing 17 is brought into contact with the upward second protrusion 38 of the lock arm 36 and the upward deflection of the lock arm 36 is regulated, so that a fitting state of the two connectors 1 and 2 is maintained.
When a hand moves away from the inner housing 16 in the half fitting state before the two connectors 1 and 2 are completely fitted, that is, in a state where the locking mechanism 18 is in the half fitting position, the outer housing 17 biased by the spring members 19 pushes back the mating connector 2, while the inner housing 16 is pushed back to the rear in the fitting direction. Accordingly, since the two connectors 1 and 2 are separated from each other and the fitting operation is forcibly released, half fitting of the connector 1 can be detected.
In a multipolar connector that accommodates a plurality of connecting terminals as the connector 1 of the present embodiment, since sliding friction between the terminals at the time of connection (fitting) with the mating connector 2 is increased, the biasing force (spring constant) of the spring members 19 may be set large in order to detect half fitting. However, if the biasing force of the spring member 19 is too large, the impact that acts on the pushback regulating portion 20 when the claw portions 33, 39 of the pushback regulating portion 20 abut against the corresponding stepped portions 54, 56 during half fitting is also large, troubles may occur in the pushback regulation portion 20.
In this respect, the connector 1 of the present embodiment is provided with sliding load portions 60 that increase the sliding friction by cooperation of both sliding surfaces, before the claw portions 33, 39 abut against corresponding stepped portions 54, 56 respectively with respect to the sliding surfaces of the inner housing 16 and the outer housing 17, which are in sliding contact with each other. Specifically, the sliding load portions 60 of the present embodiment have sliding load portions 60a and 60b at positions corresponding to the first claw portion 33 and the second claw portions 39 of the inner housing 16 respectively.
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The first inclined surface 61 has a width dimension (for example, the same width dimension as that of the first claw portion 33) accommodated in the first hole portion 53, and an upper end of the inclined surface is formed to extend from the rear end surface 35 of the first claw portion 33. The second inclined surface 62 has a width dimension (for example, the same width dimension as that of the second claw portion 39) accommodated in the second hole portion 55, and an upper end of the inclined surface is form to extend from the rear end surface 41 of the second claw portion 39. Each of the inclined surfaces 61 and 62 can also be provided separately from the claw portions 33 and 39.
In the present embodiment, on a sliding surface of the outer periphery of the inner housing 16 in sliding contact with the sliding surface of the inner periphery of the outer housing 17, the inclined surface 61 serves as the sliding load portion 60a is provided closer to first stepped portion 54 side than the position of the first claw portion 33, and the inclined surface 62 that serves as the sliding load portion 60b is provided closer to the second stepped portion 56 side than the position of each second claw portion 39. Therefore, when the fitting operation is released midway such as when the hand moves away from the inner housing 16 in the half fitting position and the inner housing 16 is pushed back to the rear in the fitting direction by the biasing force of the spring members 19, before the claw portions 33 and 39 abut against the corresponding stepped portions 54 and 56 respectively, the corresponding sliding surface of the outer housing 17 gets over each of the inclined surfaces 61 and 62 (
In the present embodiment, since the first claw portion 33 and the first inclined surface 61, and the second claw portion 39 and the second inclined surface 62 are respectively integrally formed, the shape of the inner housing 16 is simple. Therefore, the structure of the mold that molds the inner housing 16 can be simplified, and the manufacturing cost can be kept low.
In the present embodiment, an example is described in which the first claw portion 33 and the second claw portions 39 are respectively formed in the inner housing 16 and the first hole portion 53 having the first stepped portion 54 and the second hole portions 55 having the second stepped portions 56 are respectively formed in the outer housing 17. However, the present invention is not limited thereto. For example, the first claw portion 33 and the second claw portions 39 are respectively formed in the outer housing 17 and the first hole portion 53 having the first stepped portion 54 and the second hole portions 55 having the second stepped portions 56 are respectively formed in the inner housing 16. In this case, the sliding load portions 60a and 60b are respectively provided with the inclined surfaces 61 and 62 closer in the fitting direction to the stepped portions 54 and 56 sides than the claw portions 33 and 39 of the outer housing 17.
For the first inclined surface 61 and the second inclined surface 62 of the present embodiment, by properly setting inclination angle, maximum height and the like of each inclined surface, the sliding friction between the sliding surfaces in sliding contact with each other of the two housings 16 and 17 can be adjusted to a desired magnitude. Therefore, by setting shapes and dimensions of the first inclined surface 61 and the second inclined surface 62 according to the biasing force of the spring member 19, the occurrence of troubles in the pushback regulating portion 20 can be more reliably suppressed.
Hereinafter, other embodiments of a connector including a sliding load portion different from that in the first embodiment will be described. However, each of these embodiments is basically the same as that of the first embodiment. Therefore, hereinafter, only the sliding load portion as a characteristic configuration of each embodiment will be described, and the same reference numerals are given to the configurations common to that of the first embodiment, and the explanation will be omitted.
The present embodiment is provided with sliding load portions 70a and 70b that increase the sliding friction by cooperation of both sliding surfaces, before the claw portions 33 and 39 abut against the corresponding stepped portions 54 and 56 with respect to the sliding surfaces of the inner housing 16 and the outer housing 17, which are in sliding contact with each other.
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The present embodiment is provided with the sliding load portion 70a including the protruding portion 71 provided closer to the first stepped portion 54 side than the position where the first claw portion 33 of the sliding surface of the inner housing 16 is formed and the protruding portion 72 provided on the corresponding sliding surface of the outer housing 17 to be capable of getting over the protruding portion 71, as well as the sliding load portions 70b including the protruding portions 73 provided closer to the second stepped portion 54 side than the position where each second claw portion 39 of the sliding surface of the inner housing 16 is formed and the protruding portion 74 provided on the corresponding sliding surface of the outer housing 17 to be capable of getting over the protruding portion 73. Therefore, when the fitting operation is released midway such as when the hand moves away from the inner housing 16 in the half fitting position and the inner housing 16 is pushed back to the rear in the fitting direction by the biasing force of the spring member 19, before the claw portions 33 and 39 abut against the corresponding stepped portions 54 and 56 respectively, the protruding portion 72 gets over the protruding portion 71 and the protruding portion 74 gets over the protruding portion 73. Accordingly, since the sliding frictional force between the sliding surfaces of the two housings 16 and 17 can be increased before the claw portions 33 and 39 abut against the corresponding stepped portions 54 and 56 respectively, the speed at which the inner housing 16 is pushed back to the rear in the fitting direction can be reduced. As a result, the impact that acts on the pushback regulating portion 20 when the claw portions 33 and 39 of the pushback regulating portion 20 abut against the corresponding stepped portions 54 and 56 respectively can be reduced. Therefore, even though the biasing force of the spring member 19 is increased, the occurrence of troubles (damage or the like) in the pushback regulating portion 20 can be suppressed.
In the present embodiment, an example is described in which the first claw portion 33 and the second claw portions 39 are respectively formed in the inner housing 16 and the first hole portion 53 having the first stepped portion 54 and the second hole portions 55 having the second stepped portions 56 are respectively formed on the sliding surface of the outer housing 17. However, the present invention is not limited to thereto. For example, the first claw portion 33 and the second claw portions 39 are respectively formed on the sliding surface of the outer housing 17 and the first hole portion 53 having the first stepped portion 54 and the second hole portions 55 having the second stepped portions 56 are respectively formed on the sliding surface of the inner housing 16. In this case, the sliding load portions 70a and 70b are respectively provided with protruding portions 71 and 73 closer in the fitting direction to the stepped portions 54 and 56 sides than the claw portion 33 and 39 of the outer housing 17, as well as protruding portions 72 and 74 on the corresponding sliding surfaces of the inner housing 16 to be capable of getting over the protruding portions 71 and 73.
For the first and second protruding portions 71, 72, 73 and 74 of the present embodiment, by properly setting cross-sectional shape and protrusion height, the sliding friction between the sliding surfaces in sliding contact with each other of the two housings 16 and 17 can be adjusted to a desired magnitude. Therefore, by setting cross-sectional shapes and protrusion heights of the first and second protruding portions 71, 72, 73 and 74 according to the biasing force of the spring member 19, the occurrence of troubles in the pushback regulating portion 20 can be more reliably suppressed.
The present embodiment is provided with a sliding load portion 80 that increases the sliding friction by cooperation of both sliding surfaces, before a pair of second claw portions 39 abut against the corresponding stepped portions 56 with respect to the sliding surfaces of the inner housing 16 and the outer housing 17, which are in sliding contact with each other.
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The present embodiment are provided with the sliding load portion 80 including the arm portions 81 that protrude to be elastically deformable from the sliding surface of the inner periphery of the outer housing 17 toward the sliding surface of the outer periphery of the inner housing 16, and the protruding portions 82 that protrude from the sliding surface of the inner housing 16 in sliding contact with the tip ends of the arm portions 81. Therefore, when the fitting operation is released such as when the hand moves away from the inner housing 16 in the half fitting position and the inner housing 16 is pushed back to the rear in the fitting direction by the biasing force of the spring member 19, before the claw portions 33 and 39 abut against the corresponding stepped portions 54 and 56 respectively, the inclined surfaces 81a of the tip ends of the pair of arm portions 81 are respectively in sliding contact with the protruding portions 82. Accordingly, since the sliding friction between the sliding surfaces of the two housings 16 and 17 can be increased before the claw portions 33 and 39 abut against the corresponding stepped portions 54 and 56 respectively, the speed at which the inner housing 16 is pushed back to the rear in the fitting direction can be reduced. As a result, the impact that acts on the pushback regulating portion 20 when the claw portions 33 and 39 of the pushback regulating portion 20 abut against the corresponding stepped portions 54 and 56 respectively can be reduced. Therefore, even though the biasing force of the spring member 19 is increased, the occurrence of troubles (damage or the like) in the pushback regulating portion 20 can be suppressed.
In the present embodiment, an example is described in which the pair of arm portions 81 are formed on the sliding surface of the outer housing 17 and the pair of protruding portions 82 are formed on the sliding surface of the inner housing 16. However, the present invention is not limited thereto. For example, the pair of arm portions 81 may be formed on the sliding surface of the inner housing 16 and the pair of protruding portions 82 may be formed on the sliding surface of the outer housing 17. In the present embodiment, although the example is described in which the pair of protruding portions 82 are provided inward than the pair of second claw portions 39, if the pair of protruding portions 82 and the arm portions 81 are set such that the tip ends of the arm portions 81 are in sliding contact with the protruding portions 82 before the claw portions 33 and 39 abut against the corresponding stepped portions 54 and 56, the set positions and the setting number are not limited to the example of the present embodiment. For example, in addition to the example of the present embodiment, another protruding portion 82 can be provided on the lower surface of the base portion 26 of the housing body 21 of the inner housing 16, and another arm portion 81 can be provided on the corresponding sliding surface of the outer housing 17. Accordingly, according to the present embodiment, since the sliding load portion 80 is provided at a predetermined position irrespective of the position of the pushback regulating portion 20, the sliding load portion 80 can be designed remarkably freely.
For the protruding portion 82 of the present embodiment, by properly setting cross-sectional shape and protrusion height, the sliding friction between the sliding surfaces in sliding contact with each other of the two housings 16 and 17 can be adjusted to a desired magnitude. Therefore, by setting cross-sectional shape and protrusion height of the protruding portion 82 according to the biasing force of the spring member 19, the occurrence of troubles in the pushback regulating portion 20 can be more reliably suppressed.
While specific embodiments have been described above, the present invention is not limited to appearances and configurations in the embodiments, and modifications, additions and deletions are possible without changing the spirit of the present invention.
The characteristics of the connector according to the above-described embodiments of the present invention will be briefly summarized and listed in the following items (1) to (4).
(1) A connector includes
a tubular inner housing (16) that holds connecting terminals therein; a tubular outer housing (17) that surrounds an outer periphery of the inner housing and is slidable in a fitting direction; a locking mechanism (18) that locks the inner housing with a mating connector (2) at a fitting position; a spring member (19) that biases the inner housing to a rear in the fitting direction to push back the inner housing with respect to the outer housing when a fitting operation is released in a state that the inner housing is in a half fitting position; and a pushback regulating portion (20) that regulates a position where the inner housing is pushed back to the rear in the fitting direction,
wherein the pushback regulating portion (20) includes
a claw portion (33, 39) that protrudes from a first sliding surface (upper surface of 22, lower surface of 26) of one (16) of the inner housing and the outer housing; a stepped portion (54, 56) that is provided on a second sliding surface (upper inner wall surface, lower inner wall surface of 16) of the other (17) of the inner housing and the outer housing and abut against the claw portion when the inner housing is pushed back; and a sliding load portion (60, 70, 80) that makes a sliding frictional force between the first sliding surface and the second sliding surface at a predetermined timing before the claw portion and the stepped portion abut against each other to be larger than the sliding frictional force before the predetermined timing.
(2) The connector according to (1),
wherein the sliding load portion (60) has an inclined surface (61, 62) which is provided at a position, closer to the stepped portion (54, 56) than the claw portion (33, 39), of the first sliding surface and which is inclined to be away from the first sliding surface as approaching the claw portion.
(3) The connector according to (1),
wherein the sliding load portion (70) includes a first protruding portion (71, 73) provided at a position, closer to the stepped portion than the claw portion (33, 39), of the first sliding surface; and a second protruding portion (72, 74) provided on the second sliding surface to be capable of getting over the first protruding portion.
(4) The connector according to (1),
wherein the sliding load portion (80) includes an arm portion (81) configured to elastically press one of the first sliding surface and the second sliding surface toward the other of the first sliding surface and the second sliding surface; and a third protruding portion (82) provided on the other of the first sliding surface and the second sliding surface in sliding contact with the arm portion.
According to the present invention, in a connector including a mechanism that pushes back a housing by utilizing an biasing force of a spring member during half fitting, an impact that acts on the mechanism can be reduced. The present invention having this effect is useful for connectors.
Number | Date | Country | Kind |
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2016-236633 | Dec 2016 | JP | national |
This application is a continuation of PCT application No. PCT/JP17/038050, which was filed on Oct. 20, 2017 based on Japanese Patent Application (No. 2016-236633) filed on Dec. 6, 2016, the contents of which are incorporated herein by reference.
Number | Name | Date | Kind |
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5718596 | Inaba et al. | Feb 1998 | A |
6171130 | Yoshida et al. | Jan 2001 | B1 |
6475015 | Murakami et al. | Nov 2002 | B1 |
20030022548 | Lutsch et al. | Jan 2003 | A1 |
Number | Date | Country |
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1 059 699 | Dec 2000 | EP |
8-242087 | Sep 1996 | JP |
9-134757 | May 1997 | JP |
10-223311 | Aug 1998 | JP |
11-224728 | Aug 1999 | JP |
2000-357562 | Dec 2000 | JP |
2003-59586 | Feb 2003 | JP |
Entry |
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International Search Report and Written Opinion of the International Search Report for PCT/JP2017/038050 dated Nov. 28, 2017. |
Japanese Office Action for the related Japanese Patent Application No. 2016-236633 dated Jan. 8, 2019. |
Number | Date | Country | |
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20190260163 A1 | Aug 2019 | US |
Number | Date | Country | |
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Parent | PCT/JP2017/038050 | Oct 2017 | US |
Child | 16402189 | US |