For more complete understanding of the present invention and the advantages hereof, reference is now made to the following description taken in conjunction with the accompanying drawings wherein:
A detailed description will be given below, of an FSW process according to an embodiment of the present invention, with reference to accompanying drawings.
Referring to
The welding tool 1 is configured to rotate about a rotational axis A at a high speed. Further, the pin 10 also rotates in conjunction with the welding tool 1. The rotation of the welding tool 1 is controlled by an FSW machine 5 implemented by, for example, a robot arm as shown in
Preferably, the FSW machine 5 has a function of traveling the welding tool freely in the vertical direction with respect to the rotational axis A.
Thanks to this function, the FSW machine 5 can travel the welding tool 1 in parallel with a surface of a member while the welding tool 1 is rotating. Consequently, workpieces can be welded by a desired length.
Moreover, it is preferable that the FSW machine 5 possesses a function of traveling the welding tool 1 freely in the lateral direction with respect to the rotational axis A.
Owing to this function, the FSW machine 5 can insert the pin 10 into a member or removes therefrom.
The pin 10 may have a screwed form, although being not limited to any specific forms.
In this embodiment, the FSW machine 5 is implemented by the robot arm, but it is not limited to this implementation. Alternatively, the FSW machine 5 may be an NC working machine such as a milling machine.
In this embodiment, two members to be welded have different shearing strengths. The member having a lower shearing strength (low-strength member) 3 is represented by a first welded member, while the member having a higher shearing strength (high-strength member) 2 is represented by a second welded member.
As shown in
After forming the overlapped region 20 as in
The FSW machine 5 allows the rotating welding tool 1 to approach a surface 2a of the high-strength member 2. Following this, a tip 10a of the pin 10 which rotates at a high speed in conjunction with the welding tool 1 is brought into contact with an initial welding point on the surface 2a of the high-strength member 2.
The tip 10a of the pin 10 is still rotating on the initial welding point. As a result, frictional heat is generated between the tip 10a and the surface 2a.
Because of this frictional heat, a temperature of the high-strength member 2 rises. Consequently, the high-strength member 2 softens without reaching its melting point, thus creating a plasticized region 2b as shown in
The FSW machine 5 presses the welding tool 1 against the surface 2a of the high-strength member 2 at a predetermined power, while rotating the tool 1 at a high speed. Eventually, the tip 10a of the pin 10 goes into the plasticized region 2b, while pressurizing the surface 2a of the high-strength member 2. Following this, the shoulder portion 11 is brought into contact with the surface 2a of the high-strength member 2, as shown in
The shoulder portion 11 which rotates at a high speed presses the surface 2a of the high-strength member 2. Subsequently, the rotating shoulder portion 11 traverses the surface 2a of the high-strength member 2 in parallel with the surface 2a, as shown in
The FSW machine 5 feeds the rotating welding tool 1 by a desired distance, and then, it allows the welding tool 1 to come off the surface 2a of the high-strength member 2. When the pin 10 comes off the plasticized region 2b, the FSW process is over.
In this embodiment, the FSW process is performed by the step of moving the welding tool 1 of the FSW machine 5 in parallel with the surface 2a of the high-strength member 2 while the welding tool 1 is rotating at a high speed. However, the present invention is not limited to this step. Alternatively, the welding tool 1 may not move in parallel with the surface 2a of the high-strength member 2. In this case, a spot FSW is carried out.
In order to explain the effect of the present invention, the following concrete examples will be presented.
In this example, Al-3Mg (Al—Mg alloy) is used as the high-strength member 2, and Al-8Si-0.3Mg (Al—Si alloy) is used as the low-strength member 3.
Now, a first welded structure 40 according to the embodiment of the present invention is fabricated (see
Next, a second welded structure 41 (see
The fabricating process of the second welded structure 41 is similar to that of the embodiment, except that the rotating pin 10 is inserted into the surface 3a of the low-strength member 3.
A table 1 shows configurations of the first and second welded structures 40 and 41, and process condition of the FSW.
In the table 1, the “PRESS LOAD OF TOOL” means a load by which the welding tool 1 of the FSW machine 5 presses the high-strength member 2 or the low-strength member 3 (
In
The overlaid height in the first welded structure 40 is denoted by ΔH1.
The height of the upper part 40c is not considered to be the overlaid height, because the upper part 40c is a combination of the high-strength and low-strength members 2 and 3. Accordingly, it is regarded as a part of the contact portion.
In
The height ΔH2 of upper part 41d of the high-strength member 2 represents the overlaid height of the second welded structure 41.
In order to evaluate the welding strengths of the first and second welded structure 40 and 41, a tensile test is conducted on them.
A table 2 shows overlaid heights ΔH1 and ΔH2 of the first and second welded structure 40 and 41, and results of the tensile test on them, respectively.
The table 2 proves that the first welded structure 40 has the lower overlaid height than that of the second welded structure 41. Also, it demonstrates that the first welded structure 40 can withstand a greater tensile strength than the second welded structure 41 does.
In the evaluation of the tensile strength, it is preferable that test samples are fabricated at the same FSW temperature. In this example, both structures are manufactured at a temperature of about 450° C.
As described above, the FSW process according to the embodiment of the present invention successfully fabricates structures in which relatively low overlaid portions are formed in a contact portion. In other words, this FSW process can produce structures having a high welding strength.
In the example, Al—Mg alloy and Al—Si alloy are used as the materials of the welded members. However, the present invention is not limited to this configuration. Alternatively, any alloys can be used as welded members, unless two members have the same shearing strength.
From the aforementioned explanation, those skilled in the art ascertain the essential characteristics of the present invention and can make the various modifications and variations to the present invention to adapt it to various usages and conditions without departing from the spirit and scope of the claims.
Number | Date | Country | Kind |
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2006-129595 | May 2006 | JP | national |