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(11) |
EP 1 737 620 B9 |
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CORRECTED EUROPEAN PATENT SPECIFICATION |
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Note: Bibliography reflects the latest situation |
| (15) |
Correction information: |
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Corrected version no 1 (W1 B1) |
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Corrections, see Claims EN |
| (48) |
Corrigendum issued on: |
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03.10.2012 Bulletin 2012/40 |
| (45) |
Mention of the grant of the patent: |
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23.05.2012 Bulletin 2012/21 |
| (22) |
Date of filing: 11.03.2005 |
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| (51) |
International Patent Classification (IPC):
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| (86) |
International application number: |
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PCT/US2005/008113 |
| (87) |
International publication number: |
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WO 2005/090006 (29.09.2005 Gazette 2005/39) |
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| (54) |
TORQUE LIMITING HANDLE
DREHMOMENTBEGRENZUNGSGRIFF
POIGNEE SERVANT A LIMITER LE COUPLE
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| (84) |
Designated Contracting States: |
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AT BE BG CH CY CZ DE DK EE ES FI FR GB GR HU IE IS IT LI LT LU MC NL PL PT RO SE SI
SK TR |
| (30) |
Priority: |
12.03.2004 US 799241
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| (43) |
Date of publication of application: |
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03.01.2007 Bulletin 2007/01 |
| (73) |
Proprietor: Bondhus Corporation |
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Monticello, MN 55362 (US) |
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| (72) |
Inventors: |
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- BONDHUS, John
Buffalo, Minnesota 55313 (US)
- PETROSKE, Mark
Becker, Minnesota 55308 (US)
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| (74) |
Representative: Vossius & Partner |
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Siebertstrasse 4 81675 München 81675 München (DE) |
| (56) |
References cited: :
DE-A1- 4 022 763
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DE-U1- 8 204 454
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| Note: Within nine months from the publication of the mention of the grant of the European
patent, any person may give notice to the European Patent Office of opposition to
the European patent
granted. Notice of opposition shall be filed in a written reasoned statement. It shall
not be deemed to
have been filed until the opposition fee has been paid. (Art. 99(1) European Patent
Convention).
|
Field of the Invention
[0001] The present invention relates to a torque limiting tool that uses a longitudinal
biasing force to bias interface member radially outward against an inner surface of
an outer handle.
Background of the Invention
[0002] There are many situations where systems, mechanisms, or devices are assembled at
a point of delivery where it is disadvantageous to attach a nut, bolt, or other fastener
with too much or too little torque. One solution to this problem is to provide a torque
wrench or similar device that is calibrated to apply a pre-determined amount of torque
to such a fastener. When the pre-determined amount of torque is applied, the torque
wrench slips and the fastener is no longer turned, thereby preventing damage to the
fastener or the objects secured by the fastener.
[0003] Such torque wrenches are well known in the art. However, many existing torque wrenches
require a large number of components, including compression springs and complex drive
mechanisms, which must be manufactured from wear resistant metals to deal with high
forces. Furthermore, such torque wrenches are frequently bulky because of the large
number of components and the manner in which they are positioned inside of the wrench
handle.
[0004] DE 82 04 454 U1 discloses a self-releasing torque wrench with a spring-loaded coupling mechanism.
Balls are mounted in a cage and are stressed radially outwards centrally by an axially
running tension spring. The balls form an interface with a surface of a bushing. The
location where the balls contact the surface is substantially a point contact, with
minimal surface area.
[0005] US 3 272 036 discloses a torque limiting wrench with two complementary coaxial rotatable members
mounted for rotation relative to one another. Torque is transferred from a ratchet
to a drive plug via intermediate elongated rollers.
Brief Summary of the Invention
[0006] The present invention is directed to an torque wrench with a reduced number of components,
resulting in less complexity and lower cost. The present torque wrench distributes
the forces across larger surface areas than a conventional torque wrench, resulting
in a reduced need for wear resistant and higher cost materials, such as metals. Low
cost materials, such a plastics, can be substituted.
[0007] The torque limiting tool includes an inner handle having a tool coupling portion,
a biasing assembly aperture, and at least one radially oriented slot. At least one
interface member is located in the radially oriented slot. The interface member comprises
an elongated surface generally oriented along a longitudinal axis of the tool. A biasing
assembly is located in the biasing assembly aperture that provides a longitudinal
biasing force that biases the interface member radially outward. An outer handle having
an inner surface limits radial displacement of the interface member.
[0008] The tool coupling portion can be a tool receiving aperture extending along the longitudinal
axis of the inner handle or an outer surface of the inner handle. A plurality of tools
are preferably provided that releasably engage with the tool coupling portion.
[0009] The biasing assembly aperture is typically connected to the radially oriented slot.
The proximal end of the biasing assembly aperture preferably includes a threaded portion.
The radially oriented slots preferably include at least one angled surface. The interface
member preferably includes at least one surface oriented toward the biasing assembly
aperture at an acute angle with respect to the longitudinal axis.
[0010] The elongated surface of the interface member is generally flush with the outer surface
of the inner handle when the longitudinal biasing force is removed. The biasing force
displaces the elongated surface of the interface member above the outer surface of
the inner handle. The elongated surface is at least about 12.7 mm (0.5 inches) long,
and more preferably at least 25.4 mm (1.0 inches) long. The elongated surface can
be curvilinear, planar, or a variety of other shapes.
[0011] The longitudinal biasing force is typically provided by a spring. The longitudinal
biasing force is preferably adjustable.
[0012] In one embodiment, the biasing assembly includes a biasing member with a leading
edge engaged with the interface member. A retainer engages with the proximal end of
the inner handle. A spring is compressively interposed between the biasing member
and the retainer. The leading edge of the biasing member preferably form an acute
angled with respect to the longitudinal axis. The biasing member is preferably slidably
engaged with the biasing assembly aperture. In one embodiment, the retainer is threadably
engaged with a proximal end of the inner handle so that the location of the retainer
relative to a proximal end of the inner handles is adjustable.
[0013] The inner surface of the outer handle can include a variety of structures, such as
detents. Alternatively, the inner surface can be curvilinear, smooth, symmetrical
or asymmetrical, regular or irregular, etc.
[0014] In operation, the interface member is displaced radially inward when a torque applied
to the tool coupling portion exceeds a threshold value. The inner handle rotates within
the outer handle when a torque applied to the tool coupling portion exceeds a threshold
value. The rotation of the inner handle relative to the outer handle can be uni-directional
or bi-directional.
[0015] When a torque is applied to the inner handle in a first direction that exceeds a
threshold value, the inner handle rotates in the first direction within the outer
handle. When a torque is applied to the inner handle in a second direction that exceeds
the threshold value, the inner handle does not substantially rotate within the outer
handle. The inner handle, interface members, and outer handle can be made of metal,
ceramic, polymeric materials, a composite, or combinations thereof.
[0016] The present invention is also directed to a method of limiting torque transmission.
A longitudinal biasing force is generated along a longitudinal axis of an inner handle.
The longitudinal biasing force is coupled to one or more interface members. The longitudinal
biasing force biases a longitudinally oriented elongated surface on the interface
members radially outward. The radial movement of the interface members is restrained
by an outer handle surrounding at least a portion of the inner handle. The inner handle
is permitted to rotate relative to the outer handle when a torque applied to the inner
handle exceeds a threshold level.
[0017] The method includes coupling one of a plurality of tools to the inner handle. The
longitudinal biasing force can also be adjusted. The elongated surface is displaced
above an outer surface of the inner handle. The interface member is displaced radially
inward when a torque applied to the inner handle exceeds a threshold value. The inner
handle is rotated within the outer handle when a torque applied to the inner handle
exceeds a threshold value. The rotation of the inner handle relative to the outer
handle can be uni-directional or bi-directional.
[0018] In one embodiment, the method includes applying a torque to the inner handle in a
first direction that exceeds a threshold value so that the inner handle rotates within
the outer handle in the first direction. When torque is applied to the inner handle
in a second direction that exceeds the threshold value, however, the inner handle
does not substantially rotate in the second direction within the outer handle.
Brief Description of the Several Views of the Drawing
[0019]
Figure 1 is a cross-section view of an inner handle in accordance with the present
invention.
Figure 2 is a perspective view of the inner handle of Figure 1.
Figure 3 is a side view of an interface member in accordance with the present invention.
Figure 4 is an end view of the interface member of Figure 3.
Figure 5 is a perspective view of the interface member of Figure 3.
Figure 6 is a bottom view of the interface member of Figure 3.
Figures 7 and 8 illustrate end view alternate interface members in accordance with
the present invention.
Figure 9 is an end view of an outer handle in accordance with the present invention.
Figure 10 is a perspective view of the outer handle of Figure 9.
Figure 11 is a side view of the outer handle of Figure 9.
Figure 12 is a sectional view of the outer handle of Figure 9.
Figure 13 is a perspective view of the outer handle of Figure 9.
Figure 14 illustrates an alternate outer handle in accordance with the present invention.
Figure 15 is a cross-sectional view of an adjustable torque limiting tool in accordance
with the present invention.
Figure 16 illustrates an alternate interface member and biasing member in accordance
with the present invention.
Figure 17 is a front view of a biasing member in accordance with the present invention.
Figure 18 is a side view of the biasing member of Figure 17.
Figure 19 is a rear view of the biasing member of Figure 17.
Figure 20 is a perspective view of the biasing member of Figure 17.
Figure 21 is a sectional view of a cap for an outer handle in accordance with the
present invention.
Figure 22 is a perspective view of the cap of Figure 21.
Figure 23 is a cross-sectional view of an alternate adjustable torque limiting tool
in accordance with the present invention.
Figure 24 is a cross-sectional view of another alternate adjustable torque limiting
tool in accordance with the present invention.
Figure 25 is a schematic illustration of an interface between an outer handle and
an interface member.
Detailed Description of the Invention
[0020] Figure 1 illustrates an inner handle 20 for a torque limiting tool (see e.g., Figures
15,23,24) in accordance with the present invention. The inner handle 20 includes a
proximal end 22 and a distal end 24. The distal end 24 of the inner handle 20 includes
a tool coupling portion 25. In the illustrated embodiment, the tool coupling portion
25 comprises a receiving aperture 26 that extends along longitudinal axis 28. The
tool receiving aperture 26 is designed to releasably engage with a variety of tools
80, such as illustrated in Figure 15. Alternatively, the tools 80 couple with the
outer surface 216 of inner handle 202 (see, e.g., Figure 24).
[0021] The distal end 24 can be tapered as shown in Figures 1 and 2. Alternatively, the
distal end 24 can be straight or a variety of other symmetrical or asymmetrical shapes.
A variety of tools 80 can be coupled to the tool coupling portion, such as for example
Philips head screwdrivers, flathead screwdrivers, wrenches, socket wrenches or any
number of alternative tools.
[0022] The inner handle 20 includes a biasing assembly aperture 30 located at or near the
proximal end 22. The proximal end 22 of the biasing assembly aperture 30 preferably
includes threaded portion 36. Alternatively, the threaded portion 36 can be located
on the outer surface 34 of the inner handle 20. In another embodiment, the tool coupling
portion 25 and the biasing assembly aperture 30 can both be located at the proximal
end 22, or the distal end 24, of the inner handle 20.
[0023] At least one radially oriented slot 32 is located between biasing assembly aperture
30 and distal end 24 of inner handle 20. In the illustrated embodiment, inner handle
20 includes four slots 32. In the embodiment of Figure 1, the biasing assembly aperture
30 extends into the radially oriented slots 32. In an alternative embodiment, a spacer
or other structure is inserted between biasing assembly aperture 30 and slots 32.
[0024] The slots 32 preferably include angled surface 38 oriented toward at least the biasing
assembly aperture 30. In the illustrated embodiment, the slots 32 include angled surfaces
38 at both ends. Alternatively, the slots 32 can be formed without angled surfaces,
such as illustrated in Figure 16.
[0025] Figures 3 through 8 illustrate one embodiment of a interface member 40 in accordance
with the present invention. As illustrated in Figures 3 through 4, the interface member
40 includes an elongated surface 42 at a distal end and a proximal end 43. When located
in a radially oriented slot 32, the elongated surface 42 is oriented generally parallel
with the longitudinal axis 28. In one embodiment, the interface members 40 are sized
so that the elongated surfaces 42 is flush with the outer surface 34 of the inner
handle 20.
[0026] As will be discussed in connection with Figure 15, the elongated surface 42 is configured
to engage with an inner surface 50 of outer handle 46. In the present invention, the
elongated surface 42 transmits torque from the outer handle 46 to the inner handle
20, and hence, to the tool 80. By increasing the surface area of the elongated surface
42, higher torque can be transmitted. Alternatively, lower cost materials, such as
plastics, can be used to construct the interface elements 40 and handles 20, 46 of
the present invention. The elongated surface 42 preferably has a length "L" of at
least 12.7 mm (0.5 inches), more preferably 25.4 mm (1.0 inch), and most preferably
at least 1.25 inches. The width "W" is typically less than the length "L".
[0027] The interface members 40 are generally wedge-shaped as shown on Figures 3 through
8. In the illustrated embodiment, the interface members 40 include at least one side
surface 44 that forms an acute angle with respect to the longitudinal axis 28 when
inserted in the radially oriented slot 32. The surface 44 is oriented toward the biasing
assembly aperture 30 to engage with the biasing assembly 60 (see Figure 15). In another
embodiment, the interface member 40 can be rectangular (see Figure 16), or a variety
of other shapes.
[0028] As shown in Figures 3 and 4, the cross-section of the elongated surface 42 has a
generally arcuate shape. Alternatively, the cross-section of the elongated surface
42' can be curvilinear shape (see Figure 7), planar 42"(see Figure 8), or a variety
of other shapes.
[0029] Figures 9 through 13 illustrate various views of one embodiment of the outer handle
46 in accordance with the present invention. Outer surface 48 of the outer handle
46 preferably includes a plurality of grooves or flat portions 54 that facilitate
gripping. The outer surface 48 can also have a slightly course or pebbled finish to
provide a non-slip surface. Alternatively, outer surface 48 can be smooth.
[0030] The outer handle 46 includes a primary opening 52 that is sized to receive the inner
handle 20. Inner surface 53 of the outer handle 46 is preferably smooth. Inner surface
50 of the outer handle 46, however, preferably includes a structure 56 configured
to engage with the elongated surface 42 of the interface member 40. In the illustrated
embodiment, the structure 56 of the inner surface 50 is curvilinear with peaks 56A
and valleys 56B. The peaks 56A and valleys 56B can be regular or irregular in shape
and/or spacing, symmetrical or asymmetrical, etc. In another embodiment, the structure
56 comprises a plurality of detents. In an alternate embodiment, the inner surface
50' can be smooth, such as illustrated in Figure 14.
[0031] The inner handle 20, the interface members 40, and the outer handle 46 can be manufactured
from a variety of materials, such as metal, ceramic, polymeric materials, composites,
or any such combination thereof. Polymeric materials suitable for use in the present
invention include acrylonitrile-butadiene-styrene, acetal, acrylic, polyamide nylon
6-6, nylon, polycarbonate, polyester, polyether etherketone, polyetheride, polyether
sulfone, polyphenylene sulfide, polyphenylene oxide, polystyrene, polysulfone, and
styrene acrylonitrile. In the preferred embodiment, the components 20, 40, and 46
are constructed from reinforced nylon. Suitable reinforcing materials include aramid,
carbon, glass, polyester or mica fibers, or some combination thereof.
[0032] Figure 15 illustrates one embodiment of an adjustable torque limiting tool 58 in
accordance with the present invention. In the context of the present torque limiting
tool 58, torque should be understood as the torque 81 on the inner handle 20 and/or
the tool 80 relative to the torque 79 on the outer handle 46. In particular, the torque
79 applied to the outer handle 46 is transmitted to the inner handle 20 and/or tool
80 at the torque 81, up to a threshold torque set by the functioning of the mechanism
58.
[0033] The outer handle 46 substantially surrounds inner handle 20. In the illustrated embodiment,
the distal end 24 of the inner handle 20 abuts shoulder 74 in the outer handle 46.
Cap 62 attaches to the primary opening 52 of the outer handle 46 to secure the inner
handle 20 in place. The cap 62 preferably includes threads 65 (see Figure 21) that
engage with threads 57 on the outer handle 46 (see Figures 12-14). The cap 62 also
preferably includes an opening 63 that provides easy access for adjusting retainer
66.
[0034] Biasing assembly 60 includes spring 68 compressively interposed between the retainer
66 and an biasing member 64. The retainer 66 is engaged with proximal end 22 of inner
handle 20. In the illustrated embodiment, the retainer 66 is threadably engaged with
the treaded portion 36 on the inner handle 20. The threaded portion 36 permits the
location of the retainer 66 to be adjusted along the longitudinal axis 28 relative
to the inner handle 22. By advancing the retainer 66 toward the distal end 24, the
compressive force on the spring 68 is increased. In an alternate embodiment, the location
of the retainer 66 is fixed. In the illustrated embodiment, the spring 68 is a conventional
coil spring. The spring 68 can be replaced by an elastomeric material, a memory metal,
or a variety of other biasing devices.
[0035] The biasing member 64 is positioned to bias the interface members 40 radially outward.
The biasing member 64 is preferably located in the biasing assembly aperture 30. Alternatively,
the biasing member 64 can be located in the radially oriented slots 32.
[0036] In the illustrated embodiment, the biasing member 64 includes a leading edge 70 that
is angled with respect to the longitudinal axis 28. The angle of the leading edge
70 is preferably complementary to the angle of the side surface 44 on the interface
members 40. In an alternate embodiment, the leading edge 70 could be substantially
perpendicular to the longitudinal axis 28.
[0037] Figure 16 illustrates an alternative interface member 40' in accordance with the
present invention. The biasing member 64' includes an angled leading edge 70' that
acts on a substantially rectangular interface member 40'. The longitudinal biasing
force 76 causes the leading edge 70' to urge the interface member 40' radically outward,
generating the radially outward biasing force 77.
[0038] Biasing assembly 60 creates a longitudinal biasing force 76 that acts along longitudinal
axis 28. The biasing member 64 transmits the longitudinal biasing force 76 to the
interface members 40. As the biasing member 64 advances along the longitudinal axis
28 toward the distal end 24, the interface of the angled surfaces 44, 70 slide relative
to each other to convert the longitudinal biasing force 76 into a radially outward
biasing force 77. The radially outward biasing force 77 urges the elongated surface
42 against the inner surface 50 of the outer handle 46. The magnitude of the radially
outward biasing force 77 can be adjusted (increased or decreased) by moving the retainer
66 relative to the inner handle 20.
[0039] As shown in Figure 15, when longitudinal biasing force 76 acts on the interface member
40, the elongated surface 42 is displaced so that it is above the outer surface 34
of inner handle 20. In the configuration of Figure 15, a space 78 exists between the
proximal ends 43 of the interface members 40 and a gap 72 exists between the side
surfaces 44 and the angled surfaces 38 (see Figure 2) on the inner handle 20. The
space 78 and the gap 72 provide clearance for some radially inward displacement of
the interface members 40.
[0040] During normal operating conditions, the elongated surface 42 is typically engaged
with one of the valleys 56B on the structure 56 of the outer handle 46. When torque
79 applied to the outer handle 46 is greater than the torque 81 desired at the tool
80, the elongated surface 42 slides out valley 56B and up onto one of the peaks 56A.
Movement of the elongated surface 42 out of a valley 56A toward a peak 56A displaces
the interface member 40 radially inward. Simultaneously, the biasing member 64 is
displaced toward the proximal end 22 of the inner handle 20. The space 78 and the
gap 72 provide clearance for the interface members 40 to move radially inward.
[0041] Once the elongated surface 42 reaches a peak 56A, continued application of torque
79 causes the interface member 40 to advance to an adjacent valley 56B. The radially
outward biasing force 77 displaces the interface member 40 into the adjacent valley
56B.
[0042] If the torque 79 continues to exceed the threshold value, the outer handle 46 rotates
around the inner handle 20, preventing the tool 80 from transmitting torque 81 greater
than the threshold value. In one embodiment, the present adjustable torque limiting
tool 58 responds the same way to torque 79 applied in either direction. That is, the
rotation of the inner handle 20 relative to the outer handle 46 is bi-directional.
[0043] In one embodiment, the peaks 56A and valleys 56B, and/or the elongated surface 42,
are asymmetrical so as to provide different limits on the torque 81 delivered at the
tool 80 depending upon the direction of rotation (see e.g., Figure 25). In yet another
alternate embodiment, the present adjustable torque limiting tool 58 transmits limited
toque in one direction of rotation, but transmits significantly higher torque in the
other direction, typically limited only by failure of the tool 58 or the item being
torqued.
[0044] The threshold value corresponds to the torque 79 at which the interface members 40
slip. By increasing the longitudinal biasing force 76, the threshold value is increased.
Similarly, by decreasing the longitudinal biasing force 76, the threshold value is
decreased. As discussed above, the compression of the spring 68, and hence the longitudinal
biasing force 76, can be adjusted by moving the retainer 66 relative to the threaded
portion 36. In an alternate embodiment, the spring 68 can be replaced with a spring
having a different spring force.
[0045] Figures 17 through 20 provide various views of the preferred biasing member 64 of
the present invention. The biasing member 64 includes base 86 and head 88. Head 88
preferably includes a plurality of notches 90 and a tip 92. Notches 90 are intended
to engage with surface 44 of interface members 40. Alternatively, notches 90 can be
omitted or could have some other configuration such as planar or curvilinear.
[0046] Figures 21 and 22 illustrate the cap 62 in greater detail. The cap 62 preferably
includes threads on surface 65 that engage with corresponding threads 57 on the outer
handle 46.
[0047] Figure 23 illustrates an alternative embodiment of adjustable torque limiting tool
158 in accordance with the present invention. Spring 168 oriented along longitudinal
axis 128 acts on ball 196. Application of biasing force 176 on the ball 1 96 acts
to displace interface members 140 radially outward. Shoulder 198 on inner handle 120
acts as a stop for ball 199. The interface of the elongated surface 142 with the inner
surface 156 of the outer handle 146 causes the interface member 140 to be generally
self-leveling.
[0048] When the torque 179 applied to the outer handle 146 exceeds a threshold value of
torque 181 desired at the tool coupling portion 125, member 140 is displaced radially
inward and the inner handle 120 slips against outer handle 146, thereby limiting the
transmission of torque to the tool coupling portion 125.
[0049] Figure 24 illustrates an alternate adjustable torque limiting tool 200 in accordance
with the present invention. Inner handle 202 includes a shoulder 204 that engages
with a corresponding shoulder 206 on inner surface 208 of the outer handle 210. Distal
end 212 of the inner handle 202 extends beyond the outer handle 210, providing a location
adapted to couple with a variety of tools 214. In the illustrated embodiment, the
tools 214 releasably couple with outer surface 216 of the distal end 212.
[0050] Figure 25 is a schematic illustration of an alternate inner surface 250 of an outer
handle 252 engaged with an interface member 260. The inner surface 250 includes a
structure 254 that limits torque transmission to the inner handle 251 when the outer
handle 252 is rotated in the direction 256. Interface member 260 includes a first
surface portion 262 that rides up surface 264 on the structure 254. The second surface
portion 266 of the interface member 260 abuts the surface 268 on the structure 254
to transmits theoretically unlimited torque when the outer handle 252 is rotated in
the direction 258.
[0051] In operation, when a torque applied to the inner handle 251 in the direction 258
exceeds a threshold value, the inner handle 251 rotates within the outer handle 254
in the direction 258. When a torque applied to the inner handle 251 in the direction
256 exceeds the threshold value, the inner handle 251 does not substantially rotate
within the outer handle 252.
1. A torque limiting tool comprising:
an inner handle (20) comprising a tool coupling portion (25) and at least one radially
oriented slot (32);
at least one interface member (40) located in the radially oriented slot (32) of the
inner handle, the interface member (40) comprising an elongated surface generally
oriented parallel to a longitudinal axis (28) of the inner handle (20);
a coil spring (68) compressively interposed between a retainer (66) and a biasing
member (64) located in a biasing assembly aperture (30) and oriented along the longitudinal
axis (28) to provide a longitudinal biasing force that biases the interface member
(40) radially outward; and
an outer handle (46) having an outer surface oriented generally parallel to the longitudinal
axis (28) adapted to be gripped by a user and an inner surface (50) limiting radial
displacement of the interface member (40) the elongated surface (42) on the interface
member (40) is configured to engage with the inner surface (50) of the outer handle
(46) comprising an elongated surface area of engagement at least 12.7 mm (0.5 inches)
long and generally oriented generally parallel to the longitudinal axis (28) of the
inner handle, one or more of the inner handle (20), the outer handle (46) and the
interface member (40) made of a polymeric material.
2. The tool of claim 1 wherein the tool coupling portion (25) comprises a tool receiving
aperture (26) extending along the longitudinal axis (28) of the inner handle (20).
3. The tool of claim 1 wherein the tool coupling portion (25) comprises an outer surface
of the inner handle.
4. The tool of claim 1 comprising a plurality of tools (80) each adapted to releasably
engage with the tool coupling portion (25).
5. The tool of claim 1 wherein the biasing assembly aperture (30) is connected to the
radially oriented slot (32).
6. The tool of claim 1 wherein a proximal end of the biasing assembly aperture (30) comprises
a threaded portion.
7. The tool of claim 1 wherein the radially oriented slots (32) comprise at least one
angled surface.
8. The tool of claim 1 wherein the interface member (40) comprises at least one surface
oriented toward the biasing assembly aperture (30) at an acute angle with respect
to the longitudinal axis (28).
9. The tool of claim 1 wherein the elongated surface (42) of the interface member (40)
is generally flush with an outer surface of the inner handle (20) when the longitudinal
biasing force is removed.
10. The tool of claim 1 wherein the biasing force displaces the elongated surface (42)
of the interface member (40) above an outer surface of the inner handle (20).
11. The tool of claim 1 wherein the elongated surface (42) is at least 25.4 mm (1,0 inch)
long.
12. The tool of claim 1 wherein the elongated surface (42) comprises a curvilinear shape.
13. The tool of claim 1 wherein the elongated surface (42) comprises a planar portion.
14. The tool of claim 1 wherein the biasing assembly (60) comprises a spring (68).
15. The tool of claim 1 wherein the longitudinal biasing force is adjustable.
16. The tool of claim 1 wherein the biasing member (64) comprises a leading edge engaged
with the interface member.
17. The tool of claim 16 wherein the leading edge of the biasing member (64) forms an
acute angle with respect to the longitudinal axis.
18. The tool of claim 16 wherein the biasing member (64) is slidably engaged with the
biasing assembly aperture.
19. The tool of claim 1 wherein the retainer (66) is threadably engaged with a proximal
end of the inner handler (20).
20. The tool of claim 19 wherein the location of the retainer (66) relative to a proximal
end of the inner handle (20) is adjustable.
21. The tool of claim 1 wherein the inner surface (50) of the outer handle (46) comprises
a plurality of detents.
22. The tool of claim 1 wherein the inner surface (50) of the outer handle (46) comprises
a curvilinear surface.
23. The tool of claim 1 wherein the inner surface (50) of the outer handle (46) comprises
a generally smooth surface.
24. The tool of claim 1 wherein the inner surface (50) of the outer handle (46) is asymmetrical.
25. The tool of claim 1 wherein the outer handle (46) substantially surrounds the inner
handle (20).
26. The tool of claim 1 wherein the interface member (40) is displaced radially inward
when a torque applied to the tool coupling portion exceeds a threshold value.
27. The tool of claim 1 wherein the inner handle (20) rotates within the outer handle
(46) when a torque applied to the tool coupling portion exceeds a threshold value.
28. The tool of claim 27 wherein the rotation of the inner handle (20) relative to the
outer handle (46) is bi-directional.
29. The tool of claim 1 wherein a torque applied to the inner handle (20) in a first direction
that exceeds a threshold value causes the inner handle (20) to rotate in the first
direction within the outer handle (46) and a torque applied to the inner handle (20)
in a second direction that exceeds the threshold value does not substantially rotate
the inner handle (20) within the outer handle (46).
30. The tool of claim 1 comprising:
an elongated outer handle (46) having a primary opening to a central aperture adapted
to receive the inner handle (20); and
a cap (62) attached to the primary opening (52) of the outer handle (46) that is sized
to receive the inner handle (20) to secure the inner handle in place.
31. The tool of claim 1 wherein one or more of the inner handle (20) the outer handle
(46) and the interface members (40) are made of metal, ceramic, a composite, or a
combination thereof.
32. The tool of claim 1 wherein the biasing assembly aperture (30) is located in the inner
handle.
33. A method of limiting torque transmission comprising the steps of:
generating a longitudinal biasing force along a longitudinal axis (28) of an inner
handle (20);
positioning a coil spring (68) compressively between a retainer (66) and a biasing
member (64) in a biasing assembly aperture, the coil spring oriented along the longitudinal
axis (28) to provide a longitudinal biasing force;
coupling the longitudinal biasing force to one or more interface members located in
a radially oriented slot (32) of the inner handle, the longitudinal biasing force
biasing a longitudinally oriented elongated surface on the one or more interface members
(40) radially outward;
positioning at least a portion of the inner handle (20) in an outer handle (46), the
outer handle (46) having an outer gripping surface oriented generally parallel to
the longitudinal axis (28) adapted to be gripped by a user;
restraining the radial movement of the one or more interface members (40) in the outer
handle (46) such that the elongated surface on the one or more interface members (40)
is in direct contact with the inner surface (50) of the outer handle (46) comprising
an elongated surface area of engagement at least 12.7 mm (0.5 inches) long and generally
oriented generally parallel to the longitudinal axis (28) of the inner handle (20),
one or more of the inner handle (20), the outer handle (46) and the one or more interface
members is made of a polymeric material;
positioning a tool in a tool coupling portion on the inner handle;
and permitting the inner handle (20) to rotate relative to the outer handle (46) when
a torque applied from the tool to the inner handle exceeds a threshold level.
34. The method of claim 33 comprising coupling one of a plurality of tools (80) to the
inner handle.
35. The method of claim 33 comprising adjusting the longitudinal biasing force.
36. The method of claim 33 comprising displacing the elongated surface above an outer
surface of the inner handle (20).
37. The method of claim 33 comprising displacing the one or more interface members radially
inward when a torque applied to the inner handle (20) exceeds a threshold value.
38. The method of claim 33 wherein the rotation of the inner handle (20) relative to the
outer handle (46) is bi-directional.
39. The method of claim 33 comprising the steps of:
applying a torque to the inner handle (20) in a first direction that exceeds a threshold
value so that the inner handle (20) rotates within the outer handle (46) in the first
direction; and
applying a torque to the inner handle (20) in a second direction that exceeds the
threshold value without permitting the inner handle (20) to substantially rotate in
the second direction within the outer handle.
40. The method of claim 33 comprising the step of:
removing a spring that provides the longitudinal biasing force from the inner handle;
and
inserting a different spring having a different spring constant into the inner handle.
1. Drehmomentbegrenzungswerkzeug, das aufweist:
einen inneren Griff (20) mit einem Werkzeugkupplungsabschnitt (25) und mindestens
einem radial ausgerichteten Schlitz (32);
mindestens ein in dem radial ausgerichteten Schlitz (32) des inneren Griffs angeordnetes
Anpassungsglied (40), wobei das Anpassungsglied (40) eine langgestreckte Oberfläche
aufweist, die im Allgemeinen parallel zu einer Längsachse (28) des inneren Griffs
(20) ausgerichtet ist;
eine zwischen einem Halter (66) und einem Vorspannglied (64) unter Druck eingesetzte
Spiralfeder (68), die in einer Vorspannbaugruppenöffnung (30) angeordnet und in Richtung
der Längsachse (28) ausgerichtet ist, um eine längsgerichtete Vorspannkraft bereitzustellen,
die das Anpassungsglied (40) radial nach außen vorspannt; und
einen äußeren Griff (46) mit einer im Allgemeinen parallel zur Längsachse (28) ausgerichteten
Außenfläche, die so angepasst ist, dass sie von einem Benutzer ergriffen werden kann,
und einer Innenfläche (50), welche die Radialverschiebung des Anpassungsglieds (40)
begrenzt, wobei die langgestreckte Oberfläche (42) an dem Anpassungsglied (40) für
den Eingriff mit der Innenfläche (50) des äußeren Griffs (46) konfiguriert ist, der
eine langgestreckte Eingriffsfläche von mindestens 12,7 mm (0,5 Zoll) Länge aufweist,
die im Allgemeinen parallel zur Längsachse (28) des inneren Griffs ausgerichtet ist,
wobei eine oder mehrere der Komponenten innerer Griff (20), äußerer Griff (46) und
Anpassungsglied (40) aus Polymerwerkstoff hergestellt sind.
2. Werkzeug nach Anspruch 1, wobei der Werkzeugkupplungsabschnitt (25) eine Werkzeugaufnahmeöffnung
(26) aufweist, die sich in Richtung der Längsachse (28) des inneren Griffs (20) erstreckt.
3. Werkzeug nach Anspruch 1, wobei der Werkzeugkupplungsabschnitt (25) eine Außenfläche
des inneren Griffs aufweist.
4. Werkzeug nach Anspruch 1, das eine Vielzahl von Werkzeugen (80) aufweist, die jeweils
an einen lösbaren Eingriff mit dem Werkzeugkupplungsabschnitt (25) angepasst sind.
5. Werkzeug nach Anspruch 1, wobei die Vorspannbaugruppenöffnung (30) mit dem radial
ausgerichteten Schlitz (32) verbunden ist.
6. Werkzeug nach Anspruch 1, wobei ein proximales Ende der Vorspannbaugruppenöffnung
(30) einen Gewindeabschnitt aufweist.
7. Werkzeug nach Anspruch 1, wobei die radial ausgerichteten Schlitze (32) mindestens
eine abgewinkelte Oberfläche aufweisen
8. Werkzeug nach Anspruch 1, wobei das Anpassungsglied (40) mindestens eine Oberfläche
aufweist, die zur Vorspannbaugruppenöffnung (30) hin in einem spitzen Winkel bezüglich
der Längsachse (28) ausgerichtet ist.
9. Werkzeug nach Anspruch 1, wobei die langgestreckte Oberfläche (42) des Anpassungsglieds
(40) im Allgemeinen bündig mit einer Außenfläche des inneren Griffs (20) ist, wenn
die längsgerichtete Vorspannkraft weggenommen wird.
10. Werkzeug nach Anspruch 1, wobei die Vorspannkraft die langgestreckte Oberfläche (42)
des Anpassungsglieds (40) über einer Außenfläche des inneren Griffs (20) verschiebt.
11. Werkzeug nach Anspruch 1, wobei die langgestreckte Oberfläche (42) eine Länge von
mindestens 25,4 mm (1,0 Zoll) aufweist.
12. Werkzeug nach Anspruch 1, wobei die langgestreckte Oberfläche (42) eine gekrümmte
Form aufweist.
13. Werkzeug nach Anspruch 1, wobei die langgestreckte Oberfläche (42) eine ebene Form
aufweist.
14. Werkzeug nach Anspruch 1, wobei die Vorspannbaugruppe (60) eine Feder (68) aufweist.
15. Werkzeug nach Anspruch 1, wobei die längsgerichtete Vorspannkraft einstellbar ist.
16. Werkzeug nach Anspruch 1, wobei das Vorspannglied (64) eine Vorderkante aufweist,
die im Eingriff mit dem Anpassungsglied ist.
17. Werkzeug nach Anspruch 16, wobei die Vorderkante des Vorspannglieds (64) einen spitzen
Winkel mit der Längsachse bildet.
18. Werkzeug nach Anspruch 16, wobei das Vorspannglied (64) in gleitenden Eingriff mit
der Vorspannbaugruppenöffnung gebracht wird.
19. Werkzeug nach Anspruch 1, wobei der Halter (66) in Gewindeeingriff mit einem proximalen
Ende des inneren Griffs (20) gebracht wird.
20. Werkzeug nach Anspruch 19, wobei die Position des Halters (66) bezüglich eines proximalen
Endes des inneren Griffs (20) verstellbar ist.
21. Werkzeug nach Anspruch 1, wobei die Innenfläche (50) des äußeren Griffs (46) eine
Vielzahl von Arretierungen aufweist.
22. Werkzeug nach Anspruch 1, wobei die Innenfläche (50) des äußeren Griffs (46) eine
gekrümmte Oberfläche aufweist.
23. Werkzeug nach Anspruch 1, wobei die Innenfläche (50) des äußeren Griffs (46) eine
im Allgemeinen glatte Oberfläche aufweist.
24. Werkzeug nach Anspruch 1, wobei die Innenfläche (50) des äußeren Griffs (46) asymmetrisch
ist.
25. Werkzeug nach Anspruch 1, wobei der äußere Griff (46) den inneren Griff (20) weitgehend
umschließt.
26. Werkzeug nach Anspruch 1, wobei das Anpassungsglied (40) radial nach innen verschoben
wird, wenn ein am Werkzeugkupplungsabschnitt angreifendes Drehmoment einen Schwellwert
überschreitet.
27. Werkzeug nach Anspruch 1, wobei sich der innere Griff (20) innerhalb des äußeren Griffs
(46) dreht, wenn ein am Werkzeugkupplungsabschnitt angreifendes Drehmoment einen Schwellwert
überschreitet.
28. Werkzeug nach Anspruch 27, wobei die Drehung des inneren Griffs (20) gegenüber dem
äußeren Griff (46) bidirektional ist.
29. Werkzeug nach Anspruch 1, wobei ein am inneren Griff (20) in einer ersten Richtung
angreifendes Drehmoment, das einen Schwellwert überschreitet, eine Drehung des inneren
Griffs (20) in der ersten Richtung innerhalb des äußeren Griffs (46) bewirkt, und
ein am inneren Griff (20) in einer zweiten Richtung angreifendes Drehmoment, das den
Schwellwert überschreitet, den inneren Griff (20) nicht wesentlich innerhalb des äußeren
Griffs (46) dreht.
30. Werkzeug nach Anspruch 1, das aufweist:
einen langgestreckten äußeren Griff (46) mit einer Primäröffnung zu einer zentralen
Öffnung, die an die Aufnahme des inneren Griffs (20) angepasst ist; und
eine an der Primäröffnung (52) des äußeren Griffs (46) angebrachte Kappe (62), die
so bemessen ist, dass sie den inneren Griff (20) aufnimmt, um den inneren Griff zu
fixieren.
31. Werkzeug nach Anspruch 1, wobei eine der Komponenten innerer Griff (20), äußerer Griff
(46) und Anpassungsglieder (40) aus Metall, Keramik, einem Verbundstoff oder einer
Kombination davon besteht.
32. Werkzeug nach Anspruch 1, wobei sich die Vorspannbaugruppenöffnung (30) im äußeren
Griff befindet.
33. Verfahren zur Begrenzung der Drehmomentübertragung, mit den folgenden Schritten:
Erzeugen einer längsgerichteten Vorspannkraft in Richtung einer Längsachse (28) eines
inneren Griffs (20);
Positionieren einer Spiralfeder (68) unter Druck zwischen einem Halter (66) und einem
Vorspannglied (64) in einer Vorspannbaugruppenöffnung, wobei die Spiralfeder (68)
in Richtung einer Längsachse (28) ausgerichtet wird, um eine längsgerichtete Vorspannkraft
bereitzustellen;
Koppeln der längsgerichteten Vorspannkraft an ein oder mehrere, in einem radial ausgerichteten
Schlitz (32) des inneren Griffs angeordnete Anpassungsglieder, wobei die längsgerichtete
Vorspannkraft eine in Längsrichtung ausgerichtete langgestreckte Oberfläche an dem
einen oder den mehreren Anpassungsgliedern (40) radial nach außen vorspannt;
Positionieren zumindest eines Abschnitts des inneren Griffs (20) in einem äußeren
Griff (46), wobei der äußere Griff (46) eine äußere Greiffläche aufweist, die im Allgemeinen
parallel zur Längsachse (28) ausgerichtet und so angepasst ist, dass sie von einem
Benutzer ergriffen werden kann;
Einschränken der radialen Bewegung des einen oder der mehreren Anpassungsglieder (40)
in dem äußeren Griff (46), so dass sich die langgestreckte Oberfläche des einen oder
der mehreren Anpassungsglieder (40) in direktem Kontakt mit der Innenfläche (50) des
äußeren Griffs (46) befindet, der eine langgestreckte Eingriffsfläche mit einer Länge
von mindestens 12,7 mm (0,5 Zoll) aufweist, die im Allgemeinen parallel zu der Längsachse
(28) des inneren Griffs (20) ausgerichtet ist, wobei eine oder mehrere der Komponenten
innerer Griff (20), äußerer Griff (46) und das eine oder die mehreren Anpassungsglieder
(40) aus Polymerwerkstoff bestehen;
Anordnen eines Werkzeugs in einem Werkzeugkupplungsabschnitt an dem inneren Griff;
und
Zulassen einer Drehung des inneren Griffs (20) bezüglich des äußeren Griffs (46),
wenn ein von dem Werkzeug an dem inneren Griff angreifendes Drehmoment einen Schwellwert
überschreitet.
34. Verfahren nach Anspruch 33 mit Ankuppeln eines von einer Vielzahl von Werkzeugen (80)
an den inneren Griff.
35. Verfahren nach Anspruch 33 mit Einstellen der längsgerichteten Vorspannkraft.
36. Verfahren nach Anspruch 33 mit Verschieben der langgestreckten Oberfläche über einer
Außenfläche des inneren Griffs (20).
37. Verfahren nach Anspruch 33 mit Verschieben des einen oder der mehreren Anpassungsglieder
radial nach innen, wenn ein an dem inneren Griff (20) angreifendes Drehmoment einen
Schwellwert überschreitet.
38. Verfahren nach Anspruch 33, wobei die Drehung des inneren Griffs (20) bezüglich des
äußeren Griffs (46) bidirektional ist.
39. Verfahren nach Anspruch 33, mit den folgenden Schritten:
Anlegen eines Drehmoments an den inneren Griff (20) in einer ersten Richtung, wobei
das Drehmoment einen Schwellwert überschreitet, so dass sich der innere Griff (20)
innerhalb des äußeren Griffs (46)in der ersten Richtung dreht; und
Anlegen eines Drehmoments an den inneren Griff (20) in einer zweiten Richtung, wobei
das Drehmoment den Schwellwert überschreitet ohne zuzulassen, dass sich der innere
Griff (20) erheblich in der zweiten Richtung innerhalb des äußeren Griffs dreht.
40. Verfahren nach Anspruch 33, mit dem folgenden Schritt:
Entfernen einer Feder, welche die längsgerichtete Vorspannkraft bereitstellt, aus
dem inneren Griff; und
Einsetzen einer anderen Feder mit einer anderen Federkonstante in den inneren Griff.
1. Outil de limitation de couple, comprenant :
une poignée intérieure (20) comprenant une partie de couplage d'outil (25) et au moins
une fente orientée radialement (32) ;
au moins un organe d'interface (40) situé dans la fente orientée radialement (32)
de la poignée intérieure, l'organe d'interface (40) comprenant une surface allongée
généralement orientée parallèlement à un axe longitudinal (28) de la poignée intérieure
(20) ;
un ressort hélicoïdal (68) interposé de manière à pouvoir être compressé entre une
fixation (66) et un organe de polarisation (64) situé dans une ouverture d'ensemble
de polarisation (30) et orienté le long de l'axe longitudinal (28) pour fournir une
force de polarisation longitudinale qui polarise l'organe d'interface (40) radialement
vers l'extérieur ; et
une poignée extérieure (46) ayant une surface extérieure orientée généralement parallèlement
à l'axe longitudinal (28) apte à être prise par un utilisateur et une surface intérieure
(50) limitant le déplacement radial de l'organe d'interface (40), la surface allongée
(42) sur l'organe d'interface (40) étant configurée pour se mettre en prise avec la
surface intérieure (50) de la poignée extérieure (46) comprenant une zone de surface
allongée de mise en prise d'au moins 12,7 mm (0,5 pouce) de long et généralement orientée
généralement parallèlement à l'axe longitudinal (28) de la poignée intérieure, un
ou plusieurs de la poignée intérieure (20), la poignée extérieure (46) et l'organe
d'interface (40) étant constitués d'un matériau polymérique.
2. Outil selon la revendication 1, dans lequel la partie de couplage d'outil (25) comprend
une ouverture de réception d'outil (26) s'étendant le long de l'axe longitudinal (28)
de la poignée intérieure (20).
3. Outil selon la revendication 1, dans lequel la partie de couplage d'outil (25) comprend
une surface extérieure de la poignée intérieure.
4. Outil selon la revendication 1, comprenant une pluralité d'outils (80) étant chacun
apte à se mettre en prise de manière libérable avec la partie de couplage d'outil
(25).
5. Outil selon la revendication 1, dans lequel l'ouverture d'ensemble de polarisation
(30) est connectée à la fente orientée radialement (32).
6. Outil selon la revendication 1, dans lequel une extrémité proximale de l'ouverture
d'ensemble de polarisation (30) comprend une partie filetée.
7. Outil selon la revendication 1, dans lequel les fentes orientées radialement (32)
comprennent au moins une surface angulaire.
8. Outil selon la revendication 1, dans lequel l'organe d'interface (40) comprend au
moins une surface orientée vers l'ouverture d'ensemble de polarisation (30) à un angle
aigu par rapport à l'axe longitudinal (28).
9. Outil selon la revendication 1, dans lequel la surface allongée (42) de l'organe d'interface
(40) est généralement arasée avec une surface extérieure de la poignée intérieure
(20) lorsque la force de polarisation longitudinale est supprimée.
10. Outil selon la revendication 1, dans lequel la force de polarisation déplace la surface
allongée (42) de l'organe d'interface (40) au-dessus d'une surface extérieure de la
poignée intérieure (20).
11. Outil selon la revendication 1, dans lequel la surface allongée (42) est d'au moins
25,4 mm (1,0 pouce) de long.
12. Outil selon la revendication 1, dans lequel la surface allongée (42) comprend une
forme curviligne.
13. Outil selon la revendication 1, dans lequel la surface allongée (42) comprend une
partie plane.
14. Outil selon la revendication 1, dans lequel l'ensemble de polarisation (60) comprend
un ressort (68).
15. Outil selon la revendication 1, dans lequel la force de polarisation longitudinale
est réglable.
16. Outil selon la revendication 1, dans lequel l'organe de polarisation (64) comprend
un bord avant en prise avec l'organe d'interface.
17. Outil selon la revendication 16, dans lequel le bord avant de l'organe de polarisation
(64) forme un angle aigu avec l'axe longitudinal.
18. Outil selon la revendication 16, dans lequel l'organe de polarisation (64) est mis
en prise de manière à pouvoir coulisser avec l'ouverture d'ensemble de polarisation.
19. Outil selon la revendication 1, dans lequel la fixation (66) est mise en prise de
manière filetée avec une extrémité proximale de la poignée intérieure (20).
20. Outil selon la revendication 19, dans lequel l'emplacement de la fixation (66) par
rapport à une extrémité proximale de la poignée intérieure (20) est réglable.
21. Outil selon la revendication 1, dans lequel la surface intérieure (50) de la poignée
extérieure (46) comprend une pluralité de détentes.
22. Outil selon la revendication 1, dans lequel la surface intérieure (50) de la poignée
extérieure (46) comprend une surface curviligne.
23. Outil selon la revendication 1, dans lequel la surface intérieure (50) de la poignée
extérieure (46) comprend une surface généralement lisse.
24. Outil selon la revendication 1, dans lequel la surface intérieure (50) de la poignée
extérieure (46) est asymétrique.
25. Outil selon la revendication 1, dans lequel la poignée extérieure (46) entoure sensiblement
la poignée intérieure (20).
26. Outil selon la revendication 1, dans lequel l'organe d'interface (40) est déplacé
radialement vers l'intérieur lorsqu'un couple appliqué à la partie de couplage d'outil
dépasse une valeur de seuil.
27. Outil selon la revendication 1, dans lequel la poignée intérieure (20) tourne à l'intérieur
de la poignée extérieure (46) lorsqu'un couple appliqué à la partie de couplage d'outil
dépasse une valeur de seuil.
28. Outil selon la revendication 27, dans lequel la rotation de la poignée intérieure
(20) par rapport à la poignée extérieure (46) est bidirectionnelle.
29. Outil selon la revendication 1, dans lequel un couple appliqué à la poignée intérieure
(20) dans une première direction qui dépasse une valeur de seuil amène à la poignée
intérieure (20) à tourner dans la première direction à l'intérieur de la poignée extérieure
(46), et un couple appliqué à la poignée intérieure (20) dans une deuxième direction
qui dépasse la valeur de seuil ne fait pas sensiblement tourner la poignée intérieure
(20) à l'intérieur de la poignée extérieure (46).
30. Outil selon la revendication 1, comprenant :
une poignée extérieure allongée (46) ayant un orifice principal sur une ouverture
centrale apte à recevoir la poignée intérieure (20) ; et
un capuchon (62) attaché à l'orifice principal (52) de la poignée extérieure (46)
qui est dimensionné pour recevoir la poignée intérieure (20) pour maintenir la poignée
intérieure en place.
31. Outil selon la revendication 1, dans lequel un ou plusieurs de la poignée intérieure
(20), la poignée extérieure (46) et l'organe d'interface (40) sont constitués de métal,
de céramique, d'un composite ou d'une combinaison de ceux-ci.
32. Outil selon la revendication 1, dans lequel l'ouverture d'ensemble de polarisation
(30) est située dans la poignée intérieure.
33. Procédé de limitation de transmission de couple, comprenant les étapes de :
la génération d'une force de polarisation longitudinale le long d'un axe longitudinal
(28) d'une poignée intérieure (20) ;
le positionnement d'un ressort hélicoïdal (68) de manière à pouvoir être compressé
entre une fixation (66) et un organe de polarisation (64) dans une ouverture d'ensemble
de polarisation, le ressort hélicoïdal (68) étant orienté le long de l'axe longitudinal
(28) pour fournir une force de polarisation longitudinale ;
le couplage de la force de polarisation longitudinale à un ou plusieurs organes d'interface
situés dans une fente (32) orientée radialement de la poignée intérieure, la force
de polarisation longitudinale polarisant une surface allongée orientée longitudinalement
sur un ou plusieurs organes d'interface (40) radialement vers l'extérieur ;
le positionnement d'au moins une partie de la poignée intérieure (20) dans une poignée
extérieure (46), la poignée extérieure (46) ayant une surface de préhension extérieure
orientée généralement parallèlement à l'axe longitudinal apte à être prise par un
utilisateur ;
la restriction du mouvement radial du ou des organes d'interface (40) dans la poignée
extérieure (46) de sorte que la surface allongée du ou des organes d'interface (40)
soit en contact direct avec la surface intérieure (50) de la poignée extérieure (46)
comprenant une zone de surface allongée de mise en prise d'au moins 12,7 mm (0,5 inch)
de long et généralement orientée généralement parallèlement à l'axe longitudinal (28)
de la poignée intérieure (20), un ou plusieurs de la poignée intérieure (20), la poignée
extérieure (46) et l'un ou plusieurs organes d'interface étant constitués d'un matériau
polymérique ;
le positionnement d'un outil dans une partie de couplage d'outil sur la poignée intérieure
; et
la permission pour la poignée intérieure (20) de tourner par rapport à la poignée
extérieure (46) lorsqu'un couple appliqué de l'outil à la poignée intérieure dépasse
un niveau de seuil.
34. Procédé selon la revendication 33, comprenant le couplage de l'un d'une pluralité
d'outils (80) à la poignée intérieure.
35. Procédé selon la revendication 33, comprenant le réglage de la force de polarisation
longitudinale.
36. Procédé selon la revendication 33, comprenant le déplacement de la surface allongée
au-dessus d'une surface extérieure de la poignée intérieure (20).
37. Procédé selon la revendication 33, comprenant le déplacement d'un ou plusieurs organes
d'interface radialement vers l'intérieur lorsqu'un couple appliqué à la poignée intérieure
(20) dépasse une valeur de seuil.
38. Procédé selon la revendication 33, dans lequel la rotation de la poignée intérieure
(20) par rapport à la poignée extérieure (46) est bidirectionnelle.
39. Procédé selon la revendication 33, comprenant les étapes de :
l'application d'un couple à la poignée intérieure (20) dans une première direction
qui dépasse une valeur de seuil de sorte que la poignée intérieure (20) tourne à l'intérieur
de la poignée extérieure (46) dans la première direction ; et
l'application d'un couple à la poignée intérieure (20) dans une deuxième direction
qui dépasse la valeur de seuil sans permettre à la poignée intérieure (20) de tourner
sensiblement dans la deuxième direction à l'intérieur de la poignée extérieure.
40. Procédé selon la revendication 33, comprenant les étapes de :
l'enlèvement d'un ressort qui fournit la force de polarisation longitudinale de la
poignée intérieure ; et
l'insertion d'un ressort différent ayant une constante de ressort différente dans
la poignée intérieure.
REFERENCES CITED IN THE DESCRIPTION
This list of references cited by the applicant is for the reader's convenience only.
It does not form part of the European patent document. Even though great care has
been taken in compiling the references, errors or omissions cannot be excluded and
the EPO disclaims all liability in this regard.
Patent documents cited in the description