The present invention relates to a method for manufacturing a liquid-cooling jacket.
An example of a manufacturing method for a liquid-cooling jacket is disclosed in Patent Literature 1.
Patent literature 1: Japanese Unexamined Patent Application Publication No. 2015-131321
A jacket body 101 can often become complex in shape, leading to cases where, say, a 4000-series cast aluminum alloy is used to form the jacket body 101 and a 1000-series wrought aluminum alloy is used for a relatively simple shaped sealing body 102. In this way, the manufacture of a liquid-cooling jacket can include the joining of members of different aluminum alloy materials. Generally, in such cases, the jacket body 101 becomes harder than the sealing body 102, and if friction stir welding is carried out as shown in
In view of the above, it is an object of the present invention to provide a manufacturing method for a liquid-cooling jacket that is suitable for joining different types of aluminum alloys.
In order to solve the problems described above, a first invention provides a method for manufacturing a liquid-cooling jacket that is composed of a jacket body, having a bottom portion and a peripheral wall portion that is provided to stand on the periphery of the bottom portion, and a sealing body, which seals an opening of the jacket body, wherein the jacket body and the sealing body are joined using a rotary tool with a stirring pin, the method including: a preparation step which forms, along an inner circumferential edge of the peripheral wall portion, a stepped portion having a step bottom surface and a step side surface rising vertically from the step bottom surface to the opening of the jacket body; a placing step where the sealing body is placed on the jacket body to allow the step side surface and a sealing body side surface to butt each other to form a first butted section and a part of a sealing body back surface to be overlaid on the step bottom surface to form a second butted section; and a main joining step where friction stir welding is performed by moving the rotary tool once around the sealing body along the first butted section while only the stirring pin of the rotating rotary tool is in contact with only the sealing body, wherein the jacket body is formed from a first aluminum alloy and the sealing body is formed from a second aluminum alloy, the first aluminum alloy is a harder type of material than the second aluminum alloy, the stirring pin has an inclined outer circumferential surface that tapers down, and during the main joining step, a central axis of rotation of the rotary tool is tilted towards a central side of the jacket body, and friction stir welding is performed under a condition in which γ=α, where γ is a tilt angle of the central axis of rotation of the rotary tool with respect to the step side surface, and α is an inclination angle of the outer circumferential surface of the stirring pin with respect to the central axis of rotation.
According to this manufacturing method, frictional heat generated between the sealing body and the stirring pin causes material at the first butted section, primarily the second aluminum alloy of the sealing-body, to be stirred, plasticized, and fluidized, enabling the step side surface and the side surface of the sealing body to be joined at the first butted section. Also, because friction stirring is performed with only the stirring pin in contact with only the sealing body, there is hardly any transfer of the first aluminum alloy from the jacket body to the sealing body. In this way, friction stirring at the first butted section occurs primarily in the second aluminum alloy on the sealing body side, making it possible to suppress the reduction in joining strength. Also, because the central axis of rotation of the rotary tool is tilted towards the central side of the jacket body by a tilt angle γ relative to the step side surface, contact between the stirring pin and the jacket body can be avoided with ease. Also, because the step side surface and the outer circumferential surface of the stirring pin facing the step side surface are kept parallel to each other by making γ=α, where γ is the tilt angle of the central axis of rotation of the rotary tool relative to the step side surface and α is the inclination angle of the outer circumferential surface of the stirring pin relative to the central axis of rotation, it becomes possible to bring the outer circumferential surface of the stirring pin and the step side surface as close as possible to each other along the height direction while avoiding contact.
Further, a second invention provides a method for manufacturing a liquid-cooling jacket that is composed of a jacket body, having a bottom portion and a peripheral wall portion provided to stand on the periphery of the bottom portion, and a sealing body, which seals an opening of the jacket body, wherein the jacket body and the sealing body are joined using a rotary tool with a stirring pin, the method including: a preparation step which forms, along an inner circumferential edge of the peripheral wall portion, a stepped portion having a step bottom surface and a step side surface rising vertically from the step bottom surface to the opening of the jacket body; a placing step where the sealing body is placed on the jacket body to allow the step side surface and a sealing body side surface to butt each other to form a first butted section and a part of a sealing body back surface to be overlaid on the step bottom surface to form a second butted section; and a main joining step where friction stir welding is performed by moving the rotary tool once around the sealing body along the first butted section while only the stirring pin of the rotating rotary tool is made to be in contact with the sealing body and only the stirring pin is made to be in slight contact with the step side surface of the jacket body, wherein the jacket body is formed from a first aluminum alloy and the sealing body is formed from a second aluminum alloy, the first aluminum alloy is a harder type of material than the second aluminum alloy, the stirring pin has an inclined outer circumferential surface that tapers down, and during the main joining step, a central axis of rotation of the rotary tool is tilted towards a central side of the jacket body, and friction stir welding is performed under a condition in which γ=α, where γ is a tilt angle of the central axis of rotation of the rotary tool with respect to the step side surface, and α is an inclination angle of the outer circumferential surface of the stirring pin with respect to the central axis of rotation.
According to this manufacturing method, because contact between the outer circumferential surface of the stirring pin and the step side surface of the jacket body is kept small, transfer of the first aluminum alloy from the jacket body to the sealing body can be kept as small as possible. In this way, friction stirring at the first butted section occurs primarily in the second aluminum alloy on the sealing body side, making it possible to suppress the reduction in joining strength. Also, because contact between the outer circumferential surface of the stirring pin and the step side surface of the jacket body is kept small, material resistance the stirring pin receives from the jacket body can be kept as small as possible. Also, because the step side surface and the outer circumferential surface of the stirring pin facing the step side surface are kept parallel to each other by making γ=α, where γ is the tilt angle of the central axis of rotation of the rotary tool relative to the step side surface and α is the inclination angle of the outer circumferential surface of the stirring pin relative to the central axis of rotation, it becomes possible to make the contact margin between the outer circumferential surface of the stirring pin and the step side surface uniform across the height direction.
Yet further, a third invention provides a method for manufacturing a liquid-cooling jacket that is composed of a jacket body, having a bottom portion and a peripheral wall portion provided to stand on the periphery of the bottom portion, and a sealing body, which seals an opening of the jacket body, wherein the jacket body and the sealing body are joined using a rotary tool with a stirring pin, the method including: a preparation step which forms, along an inner circumferential edge of the peripheral wall portion, a stepped portion having a step bottom surface and a step side surface rising vertically from the step bottom surface to the opening of the jacket body; a placing step where the sealing body is placed on the jacket body to allow the step side surface and a sealing body side surface to butt each other to form a first butted section and a part of a sealing body back surface to be overlaid on the step bottom surface to form a second butted section; and a main joining step, wherein the jacket body is formed from a first aluminum alloy and the sealing body is formed from a second aluminum alloy, the first aluminum alloy is a harder type of material than the second aluminum alloy, the stirring pin has a flat tip surface and an inclined outer circumferential surface that tapers down, during the main joining step, friction stir welding is performed by moving the rotary tool once around the sealing body along the first butted section while a tip of the stirring pin of the rotating rotary tool is inserted below the step bottom surface and the outer circumferential surface of the stirring pin and the step side surface are kept apart, and during the main joining step, a central axis of rotation of the rotary tool is tilted towards a central side of the jacket body, and friction stir welding is performed under a condition in which γ=α, where γ is a tilt angle of the central axis of rotation of the rotary tool with respect to the step side surface, and α is an inclination angle of the outer circumferential surface of the stirring pin with respect to the central axis of rotation.
According to this manufacturing method, frictional heat generated between the sealing body and the stirring pin causes material at the first butted section, primarily the second aluminum alloy of the sealing body, to be stirred, plasticized, and fluidized, enabling the step side surface and the side surface of the sealing body to be joined at the first butted section. Also, because friction stirring is performed at the first butted section with only the stirring pin in contact with only the sealing body, there is hardly any transfer of the first aluminum alloy from the jacket body to the sealing body. In this way, friction stirring at the first butted section occurs primarily in the second aluminum alloy on the sealing body side, making it possible to suppress the reduction in joining strength. Also, because the central axis of rotation of the rotary tool is tilted towards the central side of the jacket body by a tilt angle γ relative to the step side surface, contact between the stirring pin and the jacket body can be avoided with ease. Also, because the step side surface and the outer circumferential surface of the stirring pin facing the step side surface are kept parallel to each other by making γ=α, where γ is the tilt angle of the central axis of rotation of the rotary tool relative to the step side surface and α is the inclination angle of the outer circumferential surface of the stirring pin relative to the central axis of rotation, it becomes possible to bring the outer circumferential surface of the stirring pin and the step side surface as close as possible to each other along the height direction while avoiding contact. Also, by inserting the tip surface of the stirring pin below the step bottom surface, the second butted section can be friction stirred more reliably.
Yet further, a fourth invention provides a method for manufacturing a liquid-cooling jacket that is composed of a jacket body, having a bottom portion and a peripheral wall portion provided to stand on the periphery of the bottom portion, and a sealing body, which seals an opening of the jacket body, wherein the jacket body and the sealing body are joined using a rotary tool with a stirring pin, the method including: a preparation step which forms, along an inner circumferential edge of the peripheral wall portion, a stepped portion having a step bottom surface and a step side surface rising vertically from the step bottom surface to the opening of the jacket body; a placing step where the sealing body is placed on the jacket body to allow the step side surface and a sealing body side surface to butt each other to form a first butted section and a part of a sealing body back surface to be overlaid on the step bottom surface to form a second butted section; and a main joining step, wherein the jacket body is formed from a first aluminum alloy and the sealing body is formed from a second aluminum alloy, the first aluminum alloy is a harder type of material than the second aluminum alloy, the stirring pin has a flat tip surface and an inclined outer circumferential surface that tapers down, during the main joining step, friction stir welding is performed by moving the rotary tool once around the sealing body along the first butted section while a tip of the stirring pin of the rotating rotary tool is inserted below the step bottom surface and the outer circumferential surface of the stirring pin is made to be in slight contact with the step side surface, and during the main joining step, a central axis of rotation of the rotary tool is tilted towards a central side of the jacket body, and friction stir welding is performed under a condition in which γ=α, where γ is a tilt angle of the central axis of rotation of the rotary tool with respect to the step side surface, and α is an inclination angle of the outer circumferential surface of the stirring pin with respect to the central axis of rotation.
According to this manufacturing method, because contact between the outer circumferential surface of the stirring pin and the step side surface of the jacket body is kept small, transfer of the first aluminum alloy from the jacket body to the sealing body can be kept as small as possible. In this way, friction stirring at the first butted section occurs primarily in the second aluminum alloy on the sealing body side, making it possible to suppress the reduction in joining strength. Also, because contact between the outer circumferential surface of the stirring pin and the step side surface of the jacket body is kept small, material resistance the stirring pin receives from the jacket body can be kept as small as possible. Also, because the step side surface and the outer circumferential surface of the stirring pin facing the step side surface are kept parallel to each other by making γ=α, where γ is the tilt angle of the central axis of rotation of the rotary tool relative to the step side surface and α is the inclination angle of the outer circumferential surface of the stirring pin relative to the central axis of rotation, it becomes possible to make the contact margin between the outer circumferential surface of the stirring pin and the step side surface uniform across the height direction. Also, by inserting the tip surface of the stirring pin below the step bottom surface, the second butted section can be friction stirred more reliably.
Further, it is preferable to make the plate thickness of the sealing body greater than the height of the step side surface. By doing so, it becomes harder for a groove to form on the sealing body surface when the sealing body material is reduced from burring.
Yet, further, it is preferable to form a sloped surface on the side surface of the sealing body so that, in the placing step, a gap is introduced between the step side surface and the sloped surface that widens nearer to the opening of the jacket body. This way, a groove is harder to form on the sealing body front surface, and furthermore, burring can be reduced because sealing body material fills in the gap formed along the first butted section.
Yet further, it is preferable to form the sealing body from a wrought aluminum alloy and to form the jacket body from a cast aluminum alloy.
Yet further, it is preferable to rotate the rotary tool clockwise when a spiral groove is engraved on an outer circumferential surface of the rotary tool so that the spiral groove runs in a counterclockwise direction starting from a base end to a tip of the rotary tool, and to rotate the rotary tool counterclockwise when a spiral groove is engraved on the outer circumferential surface of the rotary tool so that the spiral groove runs in a clockwise direction starting from a base end to a tip of the rotary tool. This way, the plasticized and fluidized metal is led by the spiral groove to the tip side of the stirring pin, thereby reducing burring.
Yet further, in the main joining step, it is preferable to set the direction of rotation and direction of forward movement of the rotary tool so that, within a plasticized region formed along a movement locus of the rotary tool, the jacket body side becomes the shear side and the sealing body side becomes the flow side. This way, the jacket body side becomes the shear side, the stirring effect of the stirring pin around the first butted section is heightened, and a rise in temperature of the first butted section can be expected, making it possible to more reliably join the step side surface with the side surface of the sealing body at the first butted section.
With the method for manufacturing a liquid-cooling jacket according to the present invention, a suitable joining of different types of aluminum alloys can be achieved.
A manufacturing method for a liquid-cooling jacket according to an embodiment of the present invention will be described in detail with reference to drawings. As shown in
The manufacturing method for a liquid-cooling jacket according to the present embodiment includes carrying out a preparation step, a placing step, and a main joining step. The preparation step includes preparing the jacket body 2 and the sealing body 3. The jacket body 2 is composed primarily of a bottom portion 10 and a peripheral wall portion 11. The jacket body 2 is formed mainly from a first aluminum alloy. The first aluminum alloy uses, say, a cast aluminum alloy such as HS H5302 Grade ADC12 (Al—Si—Cu).
As shown in
The sealing body 3 is a plate-type member that seals the opening of the jacket body 2. The sealing body 3 is suitably sized to be placed on the stepped portion 12. The plate thickness of the sealing body 3 is substantially the same as the height of the step side surface 12b. The sealing body 3 is formed primarily from a second aluminum alloy. The second aluminum alloy is a material that is less hard than the first aluminum alloy.
The second aluminum alloy is formed from a wrought aluminum alloy such as JIS A1050, A1100, and A6063.
As shown in
As shown in
The stirring pin F2 hangs down from the connection portion F1, and is coaxial with the connection portion F1. The stirring pin F2 tapers off away from the connection portion F1. As shown in
A spiral groove is engraved on the outer circumferential surface of the stirring pin F2. In the present embodiment, because the rotary tool F is rotated clockwise, the spiral groove is formed with a counterclockwise spiral. In other words, when tracing the spiral groove from the base end to the tip of the stirring pin F2, the spiral groove spirals in a counterclockwise direction as viewed from above the base end of the stirring pin F2.
Note that, if the rotary tool F is to be rotated counterclockwise, the spiral groove should preferably be formed with a clockwise spiral. In other words, when tracing the spiral groove from the base end to the tip of the stirring pin F2, the spiral groove spirals in a clockwise direction as viewed from above the base end of the stirring pin F2. The spiral groove is set in this way to allow metal that is plasticized and fluidized during friction stirring to be led by the spiral groove to the side of the tip of the stirring pin F2. In this way, it is possible to reduce the amount of metal that spills out from metal members being joined together (the jacket body 2 and the sealing body 3).
As shown in
As shown in
When the outer circumferential surface of the stirring pin F2 is too far apart from the step side surface 12b, the joining strength of the first butted section J1 is reduced. The separation L between the step side surface 12b and the outer circumferential surface of the stirring pin F2 may be set in accordance with the materials used for the jacket body 2 and the sealing body 3. In cases where, as in the present embodiment, the outer circumferential surface of the stirring pin F2 avoids contact with the step side surface 12b and the tip surface F3 avoids contact with the step bottom surface 12a, the separation L should be set, for example, within the range 0≤L≤0.5 mm, and should preferably be set within the range 0≤L≤0.3 mm.
After the rotary tool F is moved once around the sealing body 3, the terminating point of the plasticized region W1 is overlapped with the starting point of the plasticized region W1. The rotary tool F may be raised gradually from the front surface 3a of the sealing body 3 for removal.
According to the present embodiment of the method for manufacturing a liquid-cooling jacket described above, although the stirring pin F2 of the rotary tool F does not come into contact with the step side surface 12b, frictional heat generated between the sealing body 3 and the stirring pin F2 causes material at the first butted section J1, primarily the second aluminum alloy of the sealing body 3 to be stirred, plasticized, and fluidized, enabling the step side surface 12b and the side surface 3c of the sealing body 3 to be joined at the first butted section J1. Further, because friction stirring is carried out with only the stirring pin F2 in contact with only the sealing body 3, there is hardly any transfer of the first aluminum alloy from the jacket body 2 to the sealing body 3. In this way, friction stirring at the first butted section J1 occurs primarily in the second aluminum alloy of the sealing body 3, making it possible to suppress the reduction in joining strength.
Further, because the central axis of rotation C of the rotary tool F is tilted towards the central side of the jacket body 2 by a tilt angle γ relative to the step side surface 12b (a vertical surface), contact between the stirring pin F2 and the jacket body 2 at the first butted section J1 can be avoided with ease. Also, in the present embodiment, the outer circumferential surface of the stirring pin F2 and the step side surface 12b are kept parallel to each other by making γ=α, where γ is the tilt angle of the central axis of rotation C of the rotary tool F with respect to the step side surface 12b and α is the inclination angle of the outer circumferential surface of the stirring pin F2 with respect to the central axis of rotation C. This way, it becomes possible to bring the outer circumferential surface of the stirring pin F2 and the step side surface 12b as close as possible to each other across the height direction while avoiding contact.
Yet further, because friction stir welding is carried out by having only the stirring pin F2 come in contact with only the sealing body 3, it is possible to remove any imbalance between material resistance the stirring pin F2 receives on one side and on the other side across the central axis of rotation C of the stirring pin F2. In this way, material that undergoes plasticization and fluidization can be friction stirred in a well-balanced manner, making it possible to suppress the reduction in joining strength.
For the main joining step, the direction of rotation and direction of movement of the rotary tool F can be set as appropriate. In the present embodiment, the direction of rotation and direction of movement of the rotary tool F are set so that, within the plasticized region W1 formed along the movement locus of the rotary tool F, the side of the jacket body 2 becomes the shear side and the side of the sealing body 3 becomes the flow side. This way, the stirring effect of the stirring pin F2 around the first butted section J1 is heightened and a rise in temperature at the first butted section J1 can be expected, making it possible to more reliably join the step side surface 12b and the side surface 3c of the sealing body 3 at the first butted section J1.
Note that the shear side is the advancing side on which the speed of the circumference of the rotary tool relative to the joint is equal to the moving speed of the rotary tool added to the tangential speed on the circumference of the rotary tool. The flow side is the retreating side on which the speed of the rotary tool relative to the joint is reduced due to the rotation of the rotary tool opposing the direction of motion of the rotary tool.
Further, the first aluminum alloy of the jacket body 2 is a harder material than the second aluminum alloy of the sealing body 3. This way, durability of the liquid-cooling jacket 1 can be heightened. Also, it is preferable to make the first aluminum alloy of the jacket body 2 a cast aluminum alloy and the second aluminum alloy of the sealing body 3 a wrought aluminum alloy. By choosing for example an Al—Si—Cu cast aluminum alloy such as JIS H5302 Grade ADC12 for the first aluminum alloy, properties such as castability, strength, and machinability of the jacket body 2 can be enhanced. Also, by choosing for example a JIS A1000 series or A6000 series alloy for the second aluminum alloy, workability and thermal conductivity can be enhanced.
Yet further, in the present embodiment, even though the tip surface F3 of the stirring pin F2 is not inserted below the step bottom surface 12a, by making the plasticized region W1 reach the second butted section J2, joining strength can be enhanced.
Next, description of a first modification of the first embodiment will be given. As shown in the first modification of
Next, description of a second modification of the first embodiment will be given. As shown in the second modification of
Next, description will be given of a manufacturing method for a liquid-cooling jacket according to the second embodiment of the present invention. The manufacturing method for a liquid-cooling jacket according to the second embodiment includes carrying out a preparation step, a placing step, and a main joining step. The preparation step and the placing step of the manufacturing method for a liquid-cooling jacket according to the second embodiment are the same as those of the first embodiment, and description is therefore omitted. Description will focus on areas where the second embodiment differs from the first embodiment.
As shown in
The contact margin between the outer circumferential surface of the stirring pin F2 and the step side surface 12b is defined as an offset value N. In cases such as the present embodiment where the outer circumferential surface of the stirring pin F2 is in contact with the step side surface 12b and the tip surface F3 of the stirring pin F2 avoids contact with the step bottom surface 12a, the offset value N is set within the range 0<N≤0.5 mm, and should preferably be in the range 0<N≤0.25 mm.
In the conventional method for manufacturing a liquid-cooling jacket as shown in
Note that, in the second embodiment, the plate thickness of the sealing body 3 can be made larger and/or the side surface 3c of the sealing body 3 can be sloped, as in the first modification and second modification of the first embodiment.
Next, description will be given of a manufacturing method for a liquid-cooling jacket according to a third embodiment of the present invention. The manufacturing method for a liquid-cooling jacket according to the third embodiment includes carrying out a preparation step, a placing step, and a main joining step. The preparation step and placing step of the manufacturing method for a liquid-cooling jacket according to the third embodiment are the same as those for the first embodiment, and description is therefore omitted. Description will focus on areas where the third embodiment differs from the first embodiment.
As shown in
According to the manufacturing method for a liquid-cooling jacket of the present embodiment, even though the stirring pin F2 is not in contact with the step side surface 12b, frictional heat generated between the stirring pin F2 and the sealing body 3 causes material at the first butted section J1, primarily the second aluminum alloy of the sealing body 3, to be plasticized and fluidized, making it possible to join the step side surface 12b and the side surface 3c of the sealing body 3 at the first butted section. Also, because friction stirring at the first butted section J1 is carried out with only the stirring pin F2 in contact with only the sealing body 3, there is hardly any transfer of the first aluminum alloy from the jacket body 2 to the sealing body 3. In this way, it is primarily the second aluminum alloy of the sealing body 3 that is friction stirred at the first butted section J1, making it possible to suppress the reduction in joining strength.
Further, because the central axis of rotation C of the rotary tool F is tilted towards the central side of the jacket body 2 by a tilt angle γ relative to the step side surface 12b (a vertical surface), contact between the stirring pin F2 and the step side surface 12b can be avoided with ease at the first butted section J1. Also, because the outer circumferential surface of the stirring pin F2 and the step side surface 12b are kept parallel to each other by making γ=α, where γ is the tilt angle of the central axis of rotation C of the rotary tool F relative to the step side surface 12b and α is the inclination angle of the outer circumferential surface of the stirring pin F2 relative to the central axis of rotation C, the outer circumferential surface of the stirring pin F2 and the step side surface 12b can be brought as close as possible to each other across the height direction while avoiding contact.
Yet further, because friction stir welding is carried out by keeping the outer circumferential surface of the stirring pin F2 away from the step side surface 12b, it is possible to reduce the imbalance between material resistance the stirring pin F2 receives on one side and on the other side across the central axis of rotation C. In this way, material that undergoes plasticization and fluidization can be friction stirred in a well-balanced manner, making it possible to suppress the reduction in joining strength. In cases where, as in the present embodiment, the outer circumferential surface of the stirring pin F2 avoids contact with the step side surface 12b and the tip surface F3 is inserted below the step bottom surface 12a, the separation L between the step side surface 12b and the outer circumferential surface of the stirring pin F2 should, for example, be set within the range 0≤L≤0.5 mm, and should preferably be set within the range 0≤L≤0.3 mm.
Yet further, by inserting the tip surface F3 of the stirring pin F2 below the step bottom surface 12a, the lower part of the joint can be friction stirred more reliably. This way, joining strength can be enhanced. Also, the entire tip surface F3 of the stirring pin F2 is disposed more to the center side of the sealing body 3 from the side surface 3c of the sealing body 3. This way, the joining region at the second butted section J2 can be made large, making it possible to enhance joining strength.
Note that, in the third embodiment, the plate thickness of the sealing body 3 can be made larger and/or the side surface 3c of the sealing body 3 can be made to have a sloped surface as in the first modification and second modification of the first embodiment.
A manufacturing method for a liquid-cooling jacket according to a fourth embodiment of the present invention will be described in detail. The manufacturing method for a liquid-cooling jacket according to the fourth embodiment includes carrying out a preparation step, a placing step, and a main joining step. The preparation step and placing step of the manufacturing method for a liquid-cooling jacket according to the fourth embodiment are the same as those for the first embodiment, and description is therefore omitted. Description will focus on areas where the fourth embodiment differs from the third embodiment.
As shown in
The contact margin between the outer circumferential surface of the stirring pin F2 and the step side surface 12b is defined as an offset value N. In cases such as the present embodiment where the tip surface F3 of the stirring pin F2 is inserted below the step bottom surface 12a and the outer circumferential surface of the stirring pin F2 comes in contact with the step side surface 12b, the offset value N is set within the range 0<N≤1.0 mm, and should preferably be in the range 0<N≤0.85 mm, and more preferably should be in the range 0<N≤0.65 mm.
In the conventional manufacturing method for a liquid-cooling jacket shown in
Further, by inserting the tip surface F3 of the stirring pin F2 below the step bottom surface 12a, the lower part of the joint can be friction stirred more reliably. This way, the joining strength can be enhanced. In short, both the first butted section J1 and the second butted section J2 can be joined together firmly.
Note that, in the fourth embodiment, the plate thickness of the sealing body 3 can be made larger and/or the side surface 3c of the sealing body 3 can be made to have a sloped surface, as in the first modification and second modification of the first embodiment.
Next, description of a third modification of the third embodiment will be given. As shown in
The rotary tool FA used in the main joining step includes a connection portion F1 and a stirring pin F2. Also, the stirring pin F2 is configured with a tip surface F3 and a protrusion F4. The protrusion F4 protrudes down from the tip surface F3. There are no restrictions that apply to the shape of the protrusion F4, but in the present embodiment, the protrusion F4 is cylindrical in shape. The protrusion F4 and the tip surface F3 form a step profile.
In the main joining step of the third modification of the third embodiment, the tip of the rotary tool FA is inserted below the step bottom surface 12a (the side of the protrusion F4 is positioned at the step bottom surface 12a). This way, material that is friction stirred and undergoes plasticization and fluidization along the protrusion F4 and dragged upwards by the protrusion F4 is held down by the tip surface F3. This way, material around the protrusion F4 can be friction stirred more reliably and the oxide film at the second butted section J2 is torn with certainty. This way, joining strength at the second butted section J2 can be enhanced. Also, by arranging the rotary tool so that only the protrusion F4 is inserted below the second butted section J2 as in this modification, it is possible to make the width of the plasticized region W1 smaller compared to when the tip surface F3 is inserted below the second butted section J2. This way, it is possible to prevent material that undergoes plasticization and fluidization from spilling out into the recess 13 and to set a smaller width for the step bottom surface 12a.
Note that, although in the third modification of the third embodiment shown in
Embodiments of the present invention described above may undergo appropriate design changes or modification within the scope not departing from the gist of the present invention.
For example, although the step side surface 12b is equivalent to a vertical surface in the embodiments, the step side surface 12b may be inclined with respect to the vertical surface.
Number | Date | Country | Kind |
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2017-159142 | Aug 2017 | JP | national |
Filing Document | Filing Date | Country | Kind |
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PCT/JP2017/041706 | 11/20/2017 | WO | 00 |