MAGNESIUM BASE ALLOY TUBE AND ITS MANUFACTURING METHOD
20170014881 ยท 2017-01-19
Inventors
Cpc classification
B22F3/16
PERFORMING OPERATIONS; TRANSPORTING
B22F5/10
PERFORMING OPERATIONS; TRANSPORTING
B22F2999/00
PERFORMING OPERATIONS; TRANSPORTING
B21C33/00
PERFORMING OPERATIONS; TRANSPORTING
A61F2/82
HUMAN NECESSITIES
B22F5/10
PERFORMING OPERATIONS; TRANSPORTING
B22F3/16
PERFORMING OPERATIONS; TRANSPORTING
B22F2998/10
PERFORMING OPERATIONS; TRANSPORTING
B22F2998/10
PERFORMING OPERATIONS; TRANSPORTING
B21C29/04
PERFORMING OPERATIONS; TRANSPORTING
B22F2999/00
PERFORMING OPERATIONS; TRANSPORTING
B21C23/002
PERFORMING OPERATIONS; TRANSPORTING
C22C23/02
CHEMISTRY; METALLURGY
International classification
Abstract
[Problem] To present a small-diameter magnesium base alloy tube and its manufacturing method of long length, high dimensional precision, and excellent mechanical properties.
[Solving Means] A raw material 1 of aluminum base alloy is extruded and formed by using a forming pattern comprising an upper pattern 2 having plural through-holes 21 for supplying the raw material into diaphragms of equal angles on the circumference and circular cylindrical protrusions 22 positioned in the center of plural through-holes 21 so as to be surrounded by plural through-holes 21 at the exit side of the through-holes 21, and a lower pattern 3 positioned in the concave portions commonly penetrating at the exit of the plural through-holes 21 of the upper pattern 2, having through-holes 32 for inserting the protrusions of circular circumference of the upper pattern by providing a tube forming gap, positioned in the center of concave portions 31 of the concave portions 31 in the circular columnar shape of the upper pattern 2.
Claims
1. A magnesium base alloy tube, being a magnesium base alloy tube of which outside diameter is 1.0 to 6.0 mm, inside diameter is 0.8 to 5.5 mm, overall length is 500 mm or more, coaxiality is 20 m or less, and elongation is 10% or more.
2. A manufacturing method of the magnesium base alloy tube of claim 1, being a method of manufacturing a magnesium base alloy tube for extruding and forming the raw material of magnesium base alloy, by using a forming pattern comprising an upper pattern having circular cylindrical protrusions of a plate shape positioned in the center of plural through-holes so as to be surrounded by plural through-holes for supplying the raw material into diaphragms of equal angles on the circumference, and a lower pattern positioned in the concave portions commonly penetrating at the exit of the plural through-holes of the upper pattern, having through-holes for inserting the protrusions of circular circumference of the upper pattern by providing wind-shaped gap, positioned in the center of concave portions of the concave portions in the circular columnar shape of the upper pattern
3. The manufacturing method of the magnesium base alloy tube according to claim 2, wherein powder of magnesium base alloy is used as the raw material of the magnesium base alloy.
4. The manufacturing method of the magnesium base alloy tube according to claim 2, wherein forging material of magnesium base alloy is used as the raw material of the magnesium base alloy.
5. The manufacturing method of the magnesium base alloy tube according to claim 2, wherein extrusion forming material of magnesium base alloy is used as the raw material of the magnesium base alloy.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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BEST MODE FOR CARRYING OUT THE INVENTION
[0022] Hereinafter, the magnesium base alloy tube and its manufacturing method of the invention are specifically described while referring to embodiments and the accompanying drawings.
[0023]
[0024] This manufacturing apparatus is a forming pattern, which comprises an upper pattern 2 having plural (four in this example) penetration holes 21 for supplying a raw material 1 of a magnesium base alloy to equal angle intervals on the circumference and circular columnar protrusions 22 positioned in the center of the plural penetration holes 21 so as to be surrounded by the penetration holes 21 at the outlet side of the penetration holes 21, and a lower pattern 3 having concave parts 31 of a specific shape (cross shape in this example) commonly penetrating the outlet of the plural penetration holes 21 of the upper pattern 2 and penetration holes 32 positioned in the center of this concave part 31, in which the protrusions 22 of the circular columnar shape of the upper pattern 2 are to be inserted, is installed in a holder 52 of a press machine 5, and the raw material 1 of magnesium base alloy inserted in an upper tubular space 52a of the upper pattern 2 of the holder 52 is pressed by a punch 51 of the press machine 5, so that the small-diameter magnesium base alloy tube can be extruded and formed.
[0025] In this case, the penetration holes 32 of the lower pattern 3 have the upper part in which the protrusions are inserted formed in drawing parts 32a in which a specified tube forming space is formed, and the lower part is formed in leading-out parts 32b of the magnesium base alloy tube of larger diameter extruded and formed by the drawing part 32a.
[0026] The upper pattern 2 and the lower pattern 3 for composing the forming pattern are not designed to rotate relatively by inserting common pins in holes 23 of smaller diameter than those formed respectively in the upper pattern 2 and lower pattern 3.
[0027] As the raw material 1 of the magnesium base alloy, depending on the final product (application), various conventionally known magnesium base alloys may be used, but it is preferred to use any magnesium base alloys excellent in strength and mechanical properties, forging properties (extrusion forming performance), and others, such as AZ system (MgAlZn alloy) and WE system (MgY-rare earth elements alloy).
[0028] Preferred examples of the raw material of the magnesium base alloy include powder and forging materials (such as columnar or cylindrical shapes suited to the tubular space 52a of the holder 52 of the press machine 5), and in relation to the use of the forming pattern consisting of the upper pattern and the lower pattern to be installed on the manufacturing apparatus, it is preferred to use a powder material capable of obtaining a uniform texture in the peripheral direction of the extruded and formed magnesium base alloy tube (such as those shown in the sectional view of the magnesium base alloy tube in
[0029] Extrusion forming of the magnesium base alloy tube by this manufacturing apparatus may be either performed in cold process, but is more preferred to be done in a temperature condition of about 300 C. to 500 C., and more preferably the extrusion-formed magnesium base alloy tube may be treated, as required, thermally (heated and then cooled gradually).
[0030] The small-diameter magnesium base alloy tube manufactured by using this manufacturing apparatus is preferably 1.0 to 6.0 mm in outside diameter, 0.8 to 5.5 mm in inside diameter, 0.1 to 1.0 mm in wall thickness, and 500 mm or more in overall length, more preferably 1000 mm or more, and 20 m or less in coaxiality, and 10% or more in elongation, and hence it is possible to obtain a small-diameter magnesium base alloy tube suited to manufacture of medical appliances such as stent, and long in length, high in dimensional precision, and excellent in mechanical properties.
[0031] Specific examples of the small-diameter magnesium base alloy tube manufactured by using this manufacturing apparatus are shown in Table 1 and
[0032] Herein, the overall length of the magnesium base alloy tube is 500 mm, but by adding and supplying the raw material 1, as required, a length of over 2000 mm can be also manufactured.
[0033] The coaxiality was measured by using a digital microscope VHX-2000 of Keyence, and measuring the center distance of an outside diameter circle (outer circumference) and an inside diameter circle (inner circumference) of an arbitrary section of the magnesium base alloy tube.
TABLE-US-00001 TABLE 1 Roughness (outer Outside circum- diameter ference) (mm) Roughness Inside Co- (inner Raw diameter axiality circum- Photo- material Form (mm) (m) ference) graph AZ31B Powder 1.795~1.805 13.7 Ra0.10 FIG. 4 1.487~1.491 Ra0.08 AZ31B Forging 1.799~1.806 12.8 Ra0.10 FIG. 5 material 1.386~1.401 Re0.08 WE43 Powder 1.793~1.819 11.3 Re0.08 FIG. 6 1.379~1.408 Ra0.10
TABLE-US-00002 TABLE 2 STRENGTH PROPERTIES OF EXTRUDED SMALL-DIAETER TUBE Yield ratio TS YP (YP/ EL State (MPa) (MPa) TS) (%) Remarks AZ31B As formed 290 205 0.71 23.3 Outside diameter powder 2.0 Heat (T5) 278 190 0.68 16.0 Outside diameter treated 1.8 AZ31B As formed 272 205 0.75 14.0 Outside diameter forging 1.8 material Heat (T5) 251 170 0.68 20.0 Outside diameter treated 1.8 WE43 As formed 263 220 0.84 20.0 Outside diameter powder 1.8 Heat (T5) treated: 400 C. 60 min
[0034] Incidentally, the extrusion forming of small-diameter magnesium base alloy tube by this manufacturing apparatus is high in area reduction rate, and is hence high in the load applied to the forming patterns (upper pattern 2 and lower pattern 3), and therefore the forming pattern is likely to be deformed, buckled or broken.
[0035] To cope with this problem, as required, ultrasonic transmitters are disposed in the punch 51 and/or holder 21 (the forming pattern (upper pattern 2 and lower pattern 3) (not shown), and by adding ultrasonic oscillations at the time of forming, it is designed to reduce the abrasion resistance between the manufacturing apparatus such as forming patterns (upper pattern 2 and lower pattern 3), and the extruded and formed magnesium base alloy tube.
[0036] As shown in
[0037] As a form of the raw material 1 of the magnesium base alloy, aside from the powder forging material mentioned above, it is also possible to use an extrusion forming material (a cylindrical shape suited to the tubular space 52a of the holder 52 of the press machine 5).
[0038] The extrusion forming material may be manufactured by using the extrusion forming machine 6 comprising an extrusion forming die 61 having an extrusion opening, and an extrusion tool 64 as shown in
[0039] The extrusion forming die 61 has a die unit 61a and a main body unit 61b.
[0040] In the magnesium base powder heating process, as shown in
[0041] In the magnesium base powder feeding process, as shown in
[0042] In the primary extrusion process, as shown in
[0043] In the additional magnesium base powder feeding process, as shown in
[0044] In the secondary extrusion process, as shown in
[0045] By repeating this additional magnesium base powder feeding process, as shown in
[0046] In this manner, the extrusion forming material 65 thus obtained in this process may be cut in a length suited to the tubular space 52a of the holder 52 of the press machine 5, which may be used as a preferred raw material 1.
[0047] The small-diameter magnesium base alloy tube manufactured by using thus obtained extrusion forming material 65 in the raw material 1 of the magnesium base alloy undergoes two steps of extrusion forming process, and is processed into fine texture and high strength after the processing and curing process, and the mechanical properties are further excellent, and at the same time the corrosion resistance is further enhanced by corrosion core reduction and suppression of precipitation by solid solution of the magnesium base alloy.
[0048] The magnesium base alloy tube and its manufacturing method of the invention are specifically described while referring to exemplary embodiments, but the invention is not limited to the illustrated embodiments alone, but may be freely changed in the constitution and the application as far as it is not departed from the true spirit of the invention.
INDUSTRIAL APPLICABILITY
[0049] The magnesium base alloy tube and its manufacturing method of the invention are intended to present a small-diameter magnesium alloy tube long in length, high in dimensional precision, and excellent in mechanical properties, and can be hence applied preferably in manufacture of medical materials such as the stent, urinary tube, bile duct, and other internal tubular tissues by making use of the excellent biocompatibility of magnesium base alloy, and can be also applied in many structural materials in various industrial fields.
DESCRIPTION OF REFERENCE NUMERALS
[0050] 1 Raw material [0051] 2 Upper pattern [0052] 21 Through-hole [0053] 22 Protrusion [0054] 3 Lower pattern [0055] 31 Concave part [0056] 32 Through-hole
[0057] 4 Pin [0058] 5 Press machine [0059] 51 Punch [0060] 52 Holder [0061] 6 Extrusion apparatus