Title of Invention

" A LATHE WITH A POLYGON MACHINING DEVICE TO WORK A WORKPIECE"

Abstract A lathe includes a polygon machining cutter unit (53) and a turret unit (80), which are attached to a cutter carrying plate (23) that can be driven to move on a machine body (20) in longitudinal and transverse directions of a spindle (41). The spindle (41) is connected mechanically to a cutter shaft (51) of the cutter unit (53) by means of a transmission, which includes a rigid driving shaft (70), a rigid driven shaft (60), and first and second gearings. The driving shaft (70) and the driven shaft (60) extend respectively on the machine body (20) in the longitudinal and transverse directions of the spindle (41), and are interconnected by the first gearing. The second gearing interconnects the driven shaft (60) and the cutter shaft (51) for transferring rotation therebetween.
Full Text 1
This invention relates to a lathe with a polygon machining device to work a workpiece.
This invention further relates to a lathe, more particularly to a lathe, which is provided with a polygon machining device that is used to machine a workpiece, such as a nut or a headed bolt.
The lathe of the subject invention has a polygon machining device that is not disclosed in US 4413539 and US 6173630. Furthermore, the two US patents do not disclose a spindle and a polygon machining cutter unit that are driven by the same driving source and that are interconnected by means of a mechanical transmission.
Referring to Fig.l, a conventional polygon machining device 10 is shown to include a machine body 11, a right gear box 12, a rail member 13, a cutter carrying plate 14, a left gear box 15, three cutters 16 (see Fig.2), and a universal connecting rod 17. A spindle 121 and a driving shaft 122 are jo urn ailed on the machine body 11. A chunk 123 is mounted on an end of the spindle 121 for holding a workpiece 18 (see Fig. 2) to be machined. A cutter shaft 151 is driven by the left gear box 15. A driven shaft 152 is driven by the universal connecting rod 17, and is connected operably to the left gear box 15. The cutters 16 are fixed on a cutter mounting disc 153, which is connected fixedly on the cutter shaft 151. When the spindle 123 rotates, it activates the driving shaft 122 via the right gear box 12, thereby rotating the cutter shaft 151, the cutter mounting disc 153 and the cutters 16 through a transmission line of the universal connecting rod 17, die driven shaft 152 and the left gear box 15, The aforesaid device 10 suffers from the following disadvantages:
(1) When the position of the cutter carrying plate 14 is adjusted in an axial or radial direction of the spindle

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121, the universal connecting rod 17 flexes, thereby resulting in unsmooth rotation of the spindle 121 and the cutter shaft 151. Furthermore, because the length of the universal connecting rod 17 is limited, and because the 5 device 10 can only be used to machine a workpiece, which is shorter than the universal connecting rod 17, the application range of the device 10 is reduced.
(2) To form a nut or a headed bolt, a workpiece has to be machined on the device 10 and a lathe for forming
10 threads, thereby resulting in an increase in the machining costs, the machine-occupied space and the tool-changing time,
Hence, an improved lathe, which is provided with a polygon machining device, has been proposed'heretofore
15 to overcome the above-mentioned problems. In the improved lathe, a spindle and a polygon machining cutter unit are driven respectively by different driving sources at different rotational-speed ratios, and have no mechanical transmission therebetween. As a result, when
20 the feeding distance of the polygon machining cutter unit is relatively large or when the material of a workpiece to be' machined is relatively hard, the feeding of the cutter unit is delayed, thereby resulting in failure to form an accurate polygon on the workpiece.
25 The object of this invention is to provide a lathe with a polygon machining device, which includes a spindle arid" a polygon machining cutter unit that are driven by the

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same driving source and that have a mechanical transmission therebetween, thereby feeding the cutter uait positively.
According to this invention, a lathe has a machine body including a spindle that is joumailed thereon, and a chuck that is adapted to hold a workpiece to be machined. A transverse rail member is disposed slid ably on the machine body, and extends in a transverse direction relative to the spindle. The rail member is movable on the machine body along a longitudinal direction of die spindle. A cutter carrying plate is disposed si id ably on the rail member, and is movable along a longitudinal direction of the rail member. A turret unit is attached to the carrying plate, and is adapted to work the workpiece. A polygon machining cutter unit is attached to the carrying plate, and is spaced apart from the turret unit in the longitudinal direction of the rail member. The polygon machining cutter unit k adapted to form a plane on the workpiece. A cutter shaft is attached fixedly to die polygon machining cutter unit, and is disposed parallel to the spindle. A rigid driving shaft is joumalied on the machine body, and is disposed parallel to the spindle. A driving source is used for rotating &e spindle A clutch device is movable between a connecting position, where rotation is transferred between the spindle and the driving shaft so as to rotate the driving shaft, and a isition, where ...

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rotation of the driving shaft is stopped. A rigid driven shaft is journalled on the machine body, and extends in the transverse direction relative to the spindle . A first gearing interconnects the driving shaft and the driven 5 shaft, and is movable on the driving shaft for transferring rotation from the driving shaft to the driven shaft. A second gearing interconnects the driven shaft and the cutter shaft, and is movable on the driven shaft for transferring rotation from the driven shaft to the 10 cutter shaft.
Because the driving shaft, the first gearing, the driven shaft and the second gearing constitute cooperatively a mechanical transmission between the cutter shaft and the spindle, the cutter unit can be fed 15 at appropriate times, thereby forming an accurate polygon on the workpiece.
These and other features and advantages of this
invention will become apparent in the following detailed
description of the preferred embodiment of this invention,
20 with reference to the accompanying drawings, in which:
Fig. 1 is a perspective view of a conventional polygon machining device;
Fig. 2 is a schematic view illustrating how a workpiece is machined by the conventional polygon machining device; 25 Fig 3 is a perspective view of the preferred embodiment of a lathe according to this invention;
Fig. 4 is a perspective view of the preferred

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embodiment, illustrating how an electromagnetic clutch is connected to a driving source, a driving shaft and a spindle;
Fig. 5 is a perspective view of the preferred
5 embodiment, in which some elements, including first and
second casings, are removed to illustrate a transmission
between a polygon machining cutter unit and the driving
shaft; and
Fig. 6 is a perspective view of first and second 10 gearings of the preferred embodiment.
Referring to Figs . 3, 4 and 5, the preferred embodiment of a lathe according to this invention is shown to include a machine body 20, a driving source or motor unit 30, a headstock 40, a cutter seat 50, a rigid driven shaft 60, 15 a rigid driving shaft 70 and a turret unit 80. The motor unit 30 and the headstock 40 are disposed on the machine body 20. A spindle 41 is journalled on the machine body
20, and is attached to the spindle 41 in a known manner
for holding a workpiece (A) (see Fig. 5) to be machined.
20 The driven shaft 60 and the driving shaft 70 are journalled on the machine body 20, and extend respectively in longitudinal and transverse directions of the spindle 41. The machine body 2 0 has a top surface, which is formed with a slide slot 21. An inclined transverse rail member
25 22 is disposed slidably on the machine body 20, and can be driven by a motor unit 221 to move along the slide slot
21. The motor unit 221 has an externally threaded motor

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shaft 22, which engages threadedly an in t era ally threaded portion (not shown) of the rail member 22. A cutter carrying plate 23 is disposed si id ably on the rail member 22, sad can be drives by a motor unit 231 to move along a longitudinal direction of the same. The motor unit 231 has an externally threaded motor shaft 232 (see Fig.5), which engages threadedly an internally threaded portion {not shown) of the carrying plate 23. The cutter seat 50 aad the turret unit 80 are attached to the carrying plate 23, and are spaced apart from each other in a longitudinal direction of the rail member 22. The turret unit 80 is driven by a motor unit SI to form for example threads os the workpiece (A), e.g. form threads on the latter.
The driving motor unit 30 is provided with a motor shaft 31, and a belt pulley 32 that is mounted fixedly on the motor shaft 31.
A clutch device interconnects the spindle 41 and the driving shaft 70, and can be moved between a connecting position, where rotation is transferred between the spindle 41 and the driving shaft 70 so as to rotate the driving shaft 70, and a disconnecting position, where rotation of the driving shaft 70 is stopped.
In this embodiment, the clutch device includes an electromagnetic clutch 43, and endless first, second aad third belts 33, 47, 73. The clutch 43 has a rotating shaft 431, an outer pulley 44, an inner pulley 45 and a driving pulley 46. The rotating shaft 431 is joumailed on the ...

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machine body 20. The outer and inner pulleys 44, 45 are sleeved fixedly on the rotating shaft 431. The first belt 33 is trained on the pulley 32 of the driving motor unit 30 and the outer pulley 44. The second belt 47 is trained 5 on the inner pulley 45 and a driven pulley 411 that is slaeved fixedly on the spindle 41. The third belt 73 is trained on the driving pulley 46 and a driven pulley 72 that is sleeved fixedly on an end of the driving shaft 70. The driving pulley 46 is sleeved rotatably on the
10 rotating shaft 431, and can be moved between a driving position, where the driving pulley 46 is locked on the rotating shaft 431 for transferring rotation of the rotating shaft 431 to the driving shaft 70, and an idle position, where the driving pulley 46 is unlocked from
15 the rotating shaft 431 for stopping rotation of the driving shaft 70.
A cutter shaft 51 is journalled on the cutter seat 50, and is connected fixedly to a polygon machining cutter unit 53. A tailstock 56 is disposed on the machine body
20 20 for extension of a push needle 561 therein.
¦ A first gearing interconnects the driving shaft 70 and the driven shaft 60 for transferring rotation from the driving shaft 70 to the driven shaft 60. In this embodiment, the first gearing includes a first sleeve 71,
25 a first driving gear 74 , a first driven gear 62 and a first casing (CD {see Fig, 3) . The first casing (Cl) is removed from Fig. 5 for the sake of illustrating connection

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between the first driving gear 74 and the first driven gear 62, which is best shown in Fig. 6. The driving shaft 70 is externally splined. The first sleeve 71 is internally splined, and is sleeved axially and movably 5 on the driving shaft 70 for rotating synchronously with the driving shaft 70 . The first driving gear 74 is sleeved fixedly on the first sleeve 71. The first driven gear 62 is sleeved fixedly on the driven shaft 60, and meshes with the first driving gear 74 for transferring rotation
10 between the driving shaft 70 and the driven shaft 60. The first casing (Cl) is disposed axially and movably around the driving shaft 70 for confining the first driving gear 74 and the first driven gear 62 therein while preventing relative movement between the first driving gear 74 and
15 the first driven gear 62.
A second gearing interconnects the driven shaft 60 and the cutter shaft 51, and is movable on the driven shaft 60 for transferring rotation from the driven shaft 60 to the cutter shaft 51. In this embodiment, the second
20 gearing includes a second sleeve 61, a second driving gear 63, an intermediate shaft 52, an intermediate gear 55, a second driven gear 54, and a second casing (C2) (see Fig. 3) . The second casing (C2) is removed from Fig. 5 for the sake of illustrating the remaining parts of the
25 second gearing, which are best shown in Fig . 6 . The driven shaft 60 is externally splined. The second sleeve 61 is sleeved axially and movably on the driven shaft 60. The

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intermediate shaft 52 is journalled on the machine body 20, and is disposed over and parallel to the driven shaft 60. The intermediate gear 55 is sleeved fixedly on the intermediate shaft 52, and meshes with the second driving gear 63. The second casing (C2) is disposed axially and movably around the driven shaft 60 for confining the second driving gear 63, the intermediate gear 55 and the second gear 54 therein while preventing movement of the intermediate gear 55 and the driven gear 54 relative to the second driving gear 63.
When it is desired to adjust the position of the cutter seat 50 and the turret unit 80 relative to the chuck 42 and the workpiece (A), the motor units 221, 231 are actuated to move the rail member 22 along the slide slot 21 and the cutter carrying plate 23 on the rail member 22. Because the driving shaft 70 is relatively long, the permissible greatest length of the workpiece (A) is increased.
The driving shaft 70, the first driving gear 74, the first driven gear 62, the driven shaft 60, the second driving gear 63, the intermediate gear 55 and the second driven gear 55 constitute cooperatively a mechanical transmission between the cutter shaft 51 and the spindle 41. Because the cutter unit is driven indirectly by the spindle, the polygon machining cutter unit 53 can be fed at appropriate times even when it is used to machine a workpiece that is made of a relatively hard material and even when the feeding distance is relatively large,

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thereby increasing the machining precision

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I CLAIM
1. A Lathe with a polygon machining device to work a workpiece including
a machine body (20) including a spindle (41) that is journallcd thereon, and a chuck that is adapted to hold a workpiece (A) to be machined;
a driving source (30) for rotating said spindle (41); and
a polygon machining cutter unit (53) disposed on the machine body (20) and adapted to form a plane on the workpiece (A);
characterized by:
a transverse rail member (22) disposed slidably on said machine body (20) and extending in a transverse direction relative to said spindle (41), said rail member (22) being movable on said machine body (20) along a longitudinal direction of said spindle (4 1);
a cutter carrying plate (23) disposed slidably on said rail member (22) and movable along a longitudinal direction relative to said rail member (22);
a turret unit (80) attached to said carrying plate (23) and adapted to work on the workpiece (A);
said polygon machining cutter unit (53) being attached-to said carrying plate (23) and being spaced apart from said turret unit (80) in the longitudinal direction of said rail member (22), said polygon machining cutter unit being adapted to form a plane on the workpiece;
a cutter shaft (51) attached fixedly to said polygon machining cutter unit (53) and disposed

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parallel to said spindle (41);
a rigid driving shaft (70) journailed on said machine body (20) and disposed
parallel to said spindle (41);
a clutch device movable between a connecting position, where rotation is
transferred between said spindle (41) and said driving shall (70) so as to
rotate said driving shall (70), and a disconnecting position, where rotation of
said driving shaft (70) is stopped;
a rigid driven shaft (60) joumailed on said machine body (20) and extending
in the transverse direction relative to said spindle (41);
a first gearing interconnecting said driving shaft (70) and said driven shaft
(60) and movable on said driving shaft (70) for transferring rotation from
said driving shaft (70) to said driven shaft (60); and
a second gearing interconnecting said driven shaft (60) and said cutter shaft
(51) and movable on said driven shaft (60) for transferring rotation from said
driven shaft (60) to said cutter shaft (51).
2. The lathe as claimed in claim 1, wherein said driving source (30) includes a motor unit, said clutch device including:
an electromagnetic clutch (43) including a rotating shaft (431) that is journ ailed on said machine body (20), and a driving pulley (46) which is sleeved rotatably on said rotating shaft (431) and ...

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which is movable between a driving position, where said driving pulley (46)
is locked on said rotating shaft (431), and an idle position, where said
driving pulley (46) is unlocked from said rotating shaft (431);
an endless first belt (33) trained on said motor unit (30) and said rotating
shaft (431) of said electromagnetic clutch (43) for rotating said rotating shaft
(431);
an endless second belt (47) trained on said rotating shaft (431) of said
electromagnetic clutch (43) and said spindle (41) for rotating said spindle
(41);jmd
an endless third belt (73) trained on said driving pulley (46) of said
electromagnetic clutch (43) and said driving shaft (70) for rotating said
driving shaft (70) only when said driving pulley (46) is at said driving
position.
3. The lathe as claimed in claim 1, wherein said driving shaft (70) is
externally splined, said first gearing including:
an internally sp lined first sleeve (71), which is sleeved axially and movably
on said driving shaft (70) for rotating synchronously with said driving shaft
(70);
a first driving gear (74) sleeved fixedly on said first sleeve (71);

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a first driven gear (62) sleeved fixedly on said driven shaft (60) and meshing with said first driving gear (74) for transferring rotation between said driving shaft (70) and said driven shaft (60); and
a first casing (Cl) disposed axiaily and raovably around said driving shaft (70) for confining said first driving gear (74) and said first driven gear (62) therein while preventing relative movement between said first driving gear (74) and said first driven gear (62).
4. The lathe as claimed in claim 1, wherein said driven shaft (60) is
externally splined, said second gearing including;
an internally splined second sleeve (61), which is sleeved axiaily and
movably on said driven shaft (60);
a second driving gear (63) sleeved fixedly on said second sleeve (61);
an intermediate shaft (52) journalled on said machine body (20) and
disposed over and parallel to said driven shaft (60);
an intermediate gear (55) sleeved fixedly on said intermediate shaft (52) and
meshing with said second driving shaft (70);
a second driven gear (54) sleeved fixedly on said cutter shaft (51) and
meshing with said intermediate gear (55); and
a second casing (C2) disposed axiaily and movably

around said driven shaft (60) for confining said second driving gear (63) , said intermediate gear (55) and said second driven gear (54) therein while preventing movement of said intermediate gear (55) and said second driven gear (54) relative to said second driving gear (63).
A lathe includes a polygon machining cutter unit (53) and a turret unit (80), which are attached to a cutter carrying plate (23) that can be driven to move on a machine body (20) in longitudinal and transverse directions of a spindle (41). The spindle (41) is connected mechanically to a cutter shaft (51) of the cutter unit (53) by means of a transmission, which includes a rigid driving shaft (70), a rigid driven shaft (60), and first and second gearings. The driving shaft (70) and the driven shaft (60) extend respectively on the machine body (20) in the longitudinal and transverse directions of the spindle (41), and are interconnected by the first gearing. The second gearing interconnects the driven shaft (60) and the cutter shaft (51) for transferring rotation therebetween.

Documents:

00465-cal-2001-abstract.pdf

00465-cal-2001-claims.pdf

00465-cal-2001-correspondence.pdf

00465-cal-2001-description(complete).pdf

00465-cal-2001-drawings.pdf

00465-cal-2001-form-1.pdf

00465-cal-2001-form-18.pdf

00465-cal-2001-form-2.pdf

00465-cal-2001-form-26.pdf

00465-cal-2001-form-3.pdf

00465-cal-2001-letters patent.pdf


Patent Number 202630
Indian Patent Application Number 465/CAL/2001
PG Journal Number 10/2007
Publication Date 09-Mar-2007
Grant Date 09-Mar-2007
Date of Filing 21-Aug-2001
Name of Patentee WU HSUAN-LUNG
Applicant Address NO. 4-6, LE-TIEN LANE FANG-SHU LI, NAN-TUN DIST. TAICHUNG CITY, TAIWAN
Inventors:
# Inventor's Name Inventor's Address
1 WU HSUAN-LUNG NO. 4-6, LE-TIEN LANE FANG-SHU LI, NAN-TUN DIST. TAICHUNG CITY, TAIWAN
PCT International Classification Number B 23 B 7/14
PCT International Application Number N/A
PCT International Filing date
PCT Conventions:
# PCT Application Number Date of Convention Priority Country
1 09/573,691 2000-05-19 U.S.A.