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EP 2 872 295 B1 |
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EUROPEAN PATENT SPECIFICATION |
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Mention of the grant of the patent: |
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16.11.2016 Bulletin 2016/46 |
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Date of filing: 15.07.2013 |
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International Patent Classification (IPC):
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International application number: |
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PCT/US2013/050481 |
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International publication number: |
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WO 2014/028150 (20.02.2014 Gazette 2014/08) |
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MOTOR DRIVEN HAND TOOL
MOTORGETRIEBENES HANDWERKZEUG
OUTIL MANUEL MOTORISÉ
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Designated Contracting States: |
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AL AT BE BG CH CY CZ DE DK EE ES FI FR GB GR HR HU IE IS IT LI LT LU LV MC MK MT NL
NO PL PT RO RS SE SI SK SM TR |
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Priority: |
13.07.2012 DE 202012006747 U
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Date of publication of application: |
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20.05.2015 Bulletin 2015/21 |
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Proprietor: Illinois Tool Works Inc. |
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Glenview, IL 60025 (US) |
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Inventor: |
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- WEISS, Oliver
Glenview, Illinois 60026 (US)
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Representative: Trinks, Ole et al |
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Meissner, Bolte & Partner GbR
Postfach 10 26 05 86016 Augsburg 86016 Augsburg (DE) |
| (56) |
References cited: :
EP-A1- 2 119 537 EP-A1- 2 468 455 WO-A1-00/47862
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EP-A1- 2 253 430 EP-A2- 2 384 859 DE-A1-102007 042 721
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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).
|
[0001] The invention relates to a motor-driven hand tool as per the preamble of claim 1,
to a handgrip arrangement of a motor-driven hand tool of said type as per the preamble
of claim 11, and to a coupling arrangement as per the preamble of claim 12.
[0002] Numerous motor-driven hand tools, in the operational state thereof, generate vibrations
in a machine body, which vibrations are transmitted via a handgrip arrangement to
the user of the machine. Such vibrations are generated for example in the case of
percussive tools such as a percussion drill, a hammer drill, a chisel hammer or the
like. As a result of the percussive and possibly simultaneously rotational engagement
with the respective item to be drilled, vibrations are generated in the machine body,
which vibrations are transmitted via the handgrip arrangement to the user of the machine.
[0003] The above vibrations may be considerably detrimental to health. One example of this
is so-called "white finger syndrome" caused by damaged nerves and cells.
[0004] In the present case, the expression "vibrations" is to be understood very generally
to mean mechanical vibrations which are perceptible via the human hand. Such vibrations
may include linear and non-linear vibration components.
[0005] The known hand tool (
EP 1 533 084 B1) on which the invention is based is in the form of a percussion drill. In the operating
state, linear and non-linear vibrations of innumerable frequencies and directions
are generated, said vibrations being transmitted differently to the machine operator
depending on the handgrip arrangement.
[0006] In the case of the known hand tool, it has been identified that the machine-side
vibrations include a dominant vibration component with a preferential direction which
can be determined statistically. To prevent said vibration component "arriving" at
the handgrip of the percussive tool, a damping arrangement composed of rubber or cellular
foamed material is provided between the handgrip and the machine body of the hand
tool. The mode of operation of the damping arrangement is based on the conversion
of vibration energy into deformation energy.
[0007] Other approaches are based on the principle of a "vibration absorber" in which the
disturbing vibrations excite an additional mass-spring oscillator, whereby vibration
energy is extracted from the machine body (
DE 20 2010 002 296 U1,
DE 20 2010 002 297 U1).
[0008] The invention is based on the problem of configuring and refining the known hand
tool such that the vibrations transmitted to the handgrip in the operational state
are further reduced.
[0009] The above problem is solved in the case of a hand tool as per the preamble of claim
1 by means of the features of the characterizing part of claim 1.
[0010] What is essential is a special embodiment of the coupling arrangement for coupling
the handgrip to the machine body, such that the handgrip is substantially isolated
from the machine body with respect to machine-side vibrations.
[0011] According to the proposal, it has been identified that particularly good isolation
of the handgrip with respect to the transmission of machine-side vibrations is ensured
by virtue of the machine-side vibrations being conducted in a very specific manner
via at least two coupling strands of the coupling arrangement. Here, it is in turn
essential that the coupling strands are of different configuration such that the force
effects which are channeled out at the handgrip side via the individual coupling strands
and which are attributed to vibrations introduced at the machine side into the individual
coupling strands at least partially cancel one another out.
[0012] The individual coupling strands of the coupling arrangement are preferably assigned
different transmission functions, such that the resulting force effects at the handgrip
correspondingly at least partially cancel one another out.
[0013] According to the invention, provision is made of a first coupling strand for the
substantially in-phase transmission of machine-side vibrations and a second coupling
strand for the substantially anti-phase transmission of machine-side vibrations. The
anti-phase condition is realized in a particularly simple manner by means of a mass-spring
oscillator.
[0014] "Substantially in-phase" and "substantially anti-phase" means that, owing to deformation
and friction, an ideal in-phase condition and an ideal anti-phase condition will scarcely
occur in practice. In this respect, these two expressions are to be interpreted broadly,
and encompass angular deviations of up to +/- 10°.
[0015] The mass-spring oscillator is excited by the machine-side vibrations such that the
force effects channeled out of the second coupling strand cancel out the force effects
channeled out of the first coupling strand. This, in effect, constitutes an active
reduction of vibrations at the handgrip. Of interest here is the fact that the mass-spring
oscillator may also serve as a vibration absorber for the machine body.
[0016] The particularly preferred embodiments as claimed in claims 3 to 7 relate to variants
for the configuration of the mass-spring oscillator. Particular emphasis should be
given here, with regard to design, to the embodiment, in which the oscillator mass
is simply connected between the two spring elements of the oscillator spring arrangement.
[0017] In the further preferred embodiment as claimed in claim 7, the coupling between the
oscillator mass and the oscillator spring arrangement has, in any case in the operational
state, a certain degree of play in a movement direction of the mass-spring oscillator.
Of interest here is the fact that the play between the oscillator mass and the oscillator
spring arrangement is generally associated with an additional phase offset between
the machine-side vibration and the force effect channeled out of the second coupling
strand. This is advantageous because, with the mass-spring oscillator alone, the desired
precise anti-phase condition is scarcely attained in practice owing to damping influences.
[0018] According to a further teaching as per claim 11, which is of independent significance,
a handgrip arrangement for a hand tool according to the proposal is claimed independently.
Reference may be made to all statements suitable for describing the handgrip arrangement.
[0019] According to a further teaching as per claim 12, which is likewise of independent
significance, a coupling arrangement as described above is claimed independently.
What is essential here is the fact that the force effects which are channeled out
at one end via the individual coupling strands and which are attributed to vibrations
introduced at the other end into the individual coupling strands at least partially
cancel one another out. Here, the expressions "at one end" and "at the other end"
relate to the two sides of the coupling arrangement. In this regard, reference may
be made to the statements regarding the two former teachings. All of the features
and advantages explained with regard to the two former teachings may be applied to
the latter teaching. Here, it must be taken into consideration that the coupling arrangement
according to the proposal can be used in a wide variety of applications. For example,
the coupling arrangement may be incorporated in a drivetrain of an electric machine
or in the suspension arrangement of a washing machine.
[0020] The invention will be explained in more detail below on the basis of a drawing, which
illustrates merely one exemplary embodiment. In the drawing:
- figure 1
- shows a hand tool according to the proposal in a perspective, partially disassembled
overall view,
- figure 2
- shows a partially sectional detail view of the hand tool as per figure 1 in the region
of the coupling arrangement for the handgrip, and
- Figure 3
- is a highly schematic illustration of the coupling arrangement for the handgrip as
per figure 1a) in the region of one full excursion of the machine-side vibration and
b) in the region of the opposite full excursion of the machine-side vibration.
[0021] The hand tool 1 illustrated in the drawing is preferably a percussion drill, as will
be explained in more detail. This is to be understood merely as an example. The expression
"motor-driven hand tool" also encompasses other tools, in particular percussive tools,
machine tools and the like.
[0022] The hand tool 1 is equipped with a machine body 2 and with a handgrip arrangement
3, wherein the handgrip arrangement 3 has a handgrip 4 and a coupling arrangement
5 for coupling the handgrip 4 to the machine body 2.
[0023] The machine body 2 is the unit which provides the motor function of the hand tool
1. In the operational state, the machine body 2 vibrates, in this case primarily as
a result of the percussive mechanism of the percussion drill and as a result of the
cutting engagement between the respective drilling tool and the material to be drilled.
The expression "machine body" is to be understood in a broad sense and encompasses
all components linked in the broadest sense to the motor function of the hand tool
1. The machine body 2 thus has a motor, gearing, percussive mechanism, drill chuck,
housing parts, electrical or electronic components, switches or the like.
[0024] In the illustrated and, in this respect, preferred exemplary embodiment, the handgrip
4 is of substantially U-shaped configuration and is coupled to the machine body 2
via an upper coupling arrangement 5 and a lower coupling arrangement 5a. The lower
coupling arrangement 5a provides a pivotable mounting of the handgrip 4 on the machine
body 2. The lower coupling arrangement 5a is assigned elastic damping rings 6 which
generate a first vibration damping action. The focus will hereinafter be on the upper
coupling arrangement 5, via which the major part of the actuation forces introduced
by the user via the handgrip 4 is transmitted into the machine body 2. Figure 2 shows
the construction of the upper coupling arrangement 5 according to the proposal.
[0025] A central element of the coupling arrangement 5 is a machine-side coupling plate
7 which is fastened at one end to the machine body 2 and which, at the other end,
has latching hooks 8 which engage into the handgrip 4 in the assembled state illustrated
in figure 2. The basic design of said latching means is described in the European
patent
EP 1 533 084 B1, which belongs to the applicant and the content of which is in this respect incorporated
in the subject matter of the present application.
[0026] What is essential for the latching means is the fact that a tensile load on the handgrip
4 counter to its actuation direction 21, downward and to the right in figure 2, has
the effect that the latching hooks 8 come into blocking engagement, by way of a detent
stop 9, with the handgrip 4. Loading of the handgrip 4 in the actuation direction
21, to the left and upward in figure 2, has the effect that the handgrip 4 comes into
blocking abutment with a counterpart stop 10. The upper coupling arrangement 5 thus
permits a certain adjustment of the handgrip 4, wherein the lower coupling arrangement
5a ensures that said adjustment is a pivoting adjustment.
[0027] It need not be explained any further that the machine body 2 of the hand tool 1,
which in this case and preferably is in the form of a percussion drill, vibrates in
the operational state. With the solution according to the proposal, it is possible,
as explained above, to attain good isolation of the handgrip 4 with respect to said
vibrations. For this purpose, the coupling arrangement 5 has at least two parallel
coupling strands 11, 12, in this case and preferably exactly two parallel coupling
strands 11, 12, which are of different configuration in the illustrated and, in this
respect, preferred exemplary embodiment.
[0028] In the illustrated and, in this respect, preferred exemplary embodiment, the two
coupling strands 11, 12 are realized independently of one another. This means that
the two coupling strands 11, 12 do not influence one another aside from the in this
case common coupling points.
[0029] In a way which will be explained, the two coupling strands 11, 12 are realized on
the basis of springs, and provide a certain transmission of force between the machine
body 2 and the handgrip 4 at all times. The two coupling strands 11, 12 are now of
different configuration such that the force effects which are channeled out at the
handgrip side via the individual coupling strands 11, 12 and which are attributed
to vibrations introduced at the machine side into the individual coupling strands
11, 12 at least partially cancel one another out.
[0030] Of interest in the exemplary embodiment illustrated is firstly the fact that all
machine-side vibrations are introduced into the coupling arrangement 5 via an end
region 13 of the coupling plate 7, and are channeled out of the coupling arrangement
5 via a sleeve 14. Of interest here is the fact that both the end region of the coupling
plate 13 and also the sleeve 14 are formed in each case in one piece. This means that
the machine-side vibrations are initially "split up" between the individual coupling
strands 11, 12 of the coupling arrangement 5 and are subsequently merged again at
the sleeve 14. Owing to the parallel arrangement of the coupling strands 11, 12, this
results in a superposition, at the sleeve 14, of the force effects attributed to the
machine-side vibrations. With the configuration according to the proposal, this has
the result that the force effects attributed to vibrations introduced at the machine
side into the individual coupling strands 11, 12 at least partially cancel one another
out.
[0031] In the illustrated and, in this respect, preferred exemplary embodiment, the coupling
arrangement 5 is suitable for the isolation of a one-dimensional vibration. This is
also appropriate because the machine-side vibrations in this case include, in a manner
inherent to the system, a dominant vibration component with a preferential frequency
which, in a particularly preferred configuration, constitutes a substantially harmonic
vibration. In the case of a percussion drill, said preferential vibration is generated
by the percussive mechanism, wherein the preferential frequency is in this case and
preferably in the range between approximately 10 Hz and approximately 100 Hz, and
is in particular approximately 50 Hz. The preferential vibration also has a preferential
direction 1a, which in the case of a percussion drill, is defined by the percussion
direction. In a way which will be explained, the coupling arrangement 5 is aligned
with the preferential direction 1a of the hand tool 1.
[0032] Numerous advantageous variants are conceivable for the embodiment of the two coupling
strands 11, 12. The structural design of the two coupling strands can be seen from
a juxtaposition of figures 2 and 3.
[0033] The coupling strand 11 illustrated on the left in figure 2 and at the bottom in each
case in figure 3 is equipped with a transmission element 15 for the substantially
in-phase transmission of machine-side vibrations, said transmission element being
coupled here at one side via the coupling plate 7 to the machine body 2 and at the
other side via the sleeve 14 to the handgrip 4, wherein it is also possible in principle
for merely a facility for coupling to be provided. The transmission element 15 is
preferably a spring element, in particular a helical compression spring. In this respect,
the embodiment of said coupling strand 11 corresponds to a conventional design.
[0034] Of particular interest is the design of the other coupling strand 12, illustrated
on the right in figure 2 and at the top in each case in figure 3. Said coupling strand
12 provides a mass-spring oscillator 16 which can be excited by a machine-side vibration
and which, in the excited state, generates a handgrip-side force effect which is phase-offset
and substantially in anti-phase, with respect to the machine-side vibration.
[0035] With suitable configuration, it is then the case that the first coupling strand 11
has a transmission element 15, in this case and preferably a spring element 15, for
substantially in-phase transmission of machine-side vibrations and that the second
coupling strand 12 has the mass-spring oscillator 16 for the phase-offset and substantially
anti-phase transmission of machine-side vibration. As a result of the fact that the
resultant force effects introduced via the individual coupling strands 11, 12 are
phase-offset and even substantially in anti-phase, said force effects at least partially
cancel one another out. This applies in particular to vibrations at a preferential
frequency, as described above, for which the coupling arrangement 5 is to be correspondingly
configured.
[0036] In a particularly preferred embodiment, it is the case that the mass-spring oscillator
16 is at least slightly detuned, in particular toward lower frequencies, with respect
to the above-described preferential frequency of the machine-side vibrations. With
suitable configuration, this has the effect that a machine-side vibration with the
preferential frequency is converted by means of the mass-spring oscillator 16 into
a substantially anti-phase handgrip-side force effect. Precise tuning of the mass-spring
oscillator 16 to the preferential frequency of the machine-side vibrations is expressly
not desired because, in this way, a phase offset of only 90°, and not the desired
180° (anti-phase condition), is attainable.
[0037] The mass-spring oscillator 16 is equipped with an oscillator spring arrangement 17
which is coupled to the machine body 2 and which is in this case and preferably coupled
to the handgrip 4. Furthermore, the mass-spring oscillator 16 has an oscillator mass
arrangement 18 which is coupled to the oscillator spring arrangement 17. In the exemplary
embodiment illustrated, coupling of the oscillator mass arrangement 18 to the transmission
element 15 is not provided but is conceivable. Numerous advantageous variants are
conceivable for the embodiments of the oscillator spring arrangement 17 and of the
oscillator mass arrangement 18.
[0038] The mode of operation of the coupling arrangement 5 according to the proposal will
be explained below on the basis of the illustration in figure 3.
[0039] In figure 3, it is assumed that a user actuation in an actuation direction 21 and
a machine-side vibration with the preferential frequency discussed above are present,
wherein figures 3a) and 3b) show the two opposite full excursions of the machine-side
vibration. In both figures, the mass-spring oscillator 16 is in the excited state.
Dashed lines indicate the positions of the full excursions not presently assumed.
[0040] It can be seen from the illustrations of figures 3a) and 3b) firstly that the vibration
is conducted from the coupling plate 7 to the sleeve 14 via the transmission element
15, in this case the spring element 15. A substantially in-phase transmission of the
vibration is to be expected here.
[0041] A different situation is encountered in the case of the second coupling strand 12
which is equipped with the mass-spring oscillator 16. While the coupling plate 7,
that is to say the machine body 2, is situated at the right-hand full excursion in
figure 3, the oscillator mass arrangement 18 reaches its left-hand full excursion
in figure 3.
[0042] The situation encountered after one half of the period length of the vibration is
shown in figure 3b). Here, the coupling plate 7, that is to say the machine body 2,
is situated at the left-hand full excursion in figure 3, while the oscillator mass
arrangement 18 reaches its right-hand full excursion in figure 3.
[0043] It can thus be seen from a juxtaposition of figures 3a) and 3b) that the machine-side
vibration is converted into an anti-phase vibration of the oscillator mass arrangement
18. By virtue of the fact that the oscillator mass arrangement 18 is coupled to the
sleeve 14 via the oscillator spring arrangement 17, the anti-phase condition has the
effect that the resultant handgrip-side force effects cancel one another out.
[0044] In the illustrated and, in this respect, preferred exemplary embodiment, it must
be taken into consideration that the coupling arrangement 5 provides a transmission
of force between the machine body 2 and the handgrip 4 at all times. Here, and preferably,
this takes place via the transmission element 15, which is in the form of a helical
compression spring, and via the oscillator spring arrangement 17, which in this case
and preferably is likewise in the form of a helical compression spring arrangement.
[0045] According to the proposal the oscillator spring arrangement 17 of the mass-spring
oscillator 16 has two spring elements 19, 20, specifically a first spring element
19 coupled to the machine body 2, in this case to the coupling plate 7, and a second
spring element 20 coupled to the handgrip 4, in this case to the sleeve 14, wherein,
the two spring elements 19, 20 are connected in series. The oscillator mass arrangement
18 is, as illustrated in figure 3, coupled to the oscillator spring arrangement 17
as a whole at the connection point between the two spring elements 19, 20. For this
purpose, the oscillator mass arrangement 18 has, in this case and preferably, a fastening
web 18a which extends between the two spring elements 19, 20.
[0046] In an embodiment which can be realized in a particularly simple manner, the two spring
elements 19, 20 of the mass-spring oscillator 16 are sections of a single spring element.
It is however also conceivable for more than two spring elements 19, 20 to be assigned
to the oscillator spring arrangement 17.
[0047] A particularly compact embodiment of the coupling arrangement 5 is attained in that,
in this case and preferably, the machine-side spring element 19 assigned to the oscillator
mass arrangement 18 is aligned with regard to its spring action, and in this case
also with regard to its shaping, with the handgrip-side spring element 20 assigned
to the oscillator mass arrangement 18. The two spring elements 19, 20 in the form
of helical compression springs are thus arranged coaxially with respect one another.
Furthermore, it can be seen from a juxtaposition of figures 2 and 3 that the spring
elements 19, 20 of the oscillator spring arrangement 17 are aligned parallel to the
spring element 15.
[0048] Other arrangements and embodiments of the coupling strands 11, 12 are possible. In
this connection, one particularly advantageous embodiment would be for the oscillator
spring arrangement 17 to be configured coaxially with respect to the transmission
element 15, in particular for the spring elements 19, 20 in the form of helical compression
springs to be configured coaxially with respect to the transmission element 15 in
the form of a helical compression spring. It would thus be ensured that the connection
points of the two coupling strands 11, 12 are situated particularly close to one another,
which would simplify the desired cancelling-out of the channeled-out force effects.
[0049] In the illustrated and, in this respect, preferred exemplary embodiment, the oscillator
mass arrangement 18 is coupled to the oscillator spring arrangement 17 without play.
It may however also be advantageous for the coupling between the oscillator mass arrangement
18 and the oscillator spring arrangement 17 to have, in any case in the operational
state, a degree of play in a movement direction of the mass-spring oscillator 16.
Such a degree of play, the extent of which is considerably less than 1 mm, can, as
explained above, assist in generating a substantially anti-phase handgrip-side force
effect.
[0050] For the desired cancelling-out of the force effects channeled out via the individual
coupling strands 11, 12, it is advantageous for the coupling points of the individual
coupling strands 11, 12 to the machine body 2 and/or to the handgrip 4 to be situated
adjacent one another as illustrated in figure 2, or to even be identical. As an alternative
or additional measure, which is provided in the embodiment as per figure 2, the coupling
points of the individual coupling strands 11, 12 to the machine body 2 and to the
handgrip 4 are arranged on a respective machine-side and handgrip-side coupling part
7, 14 which is common to the coupling strands 11, 12, in this case and preferably
on the end region 13 of the coupling plate 7 and on the sleeve 14 respectively.
[0051] In the present case, the appropriate alignment of the coupling arrangement 5 with
regard to the coupling forces thereof is of very great significance. Here, and preferably,
it is provided that the coupling arrangement 5 is aligned, with regard to its coupling
forces, substantially with the preferential direction 1a of the hand tool 1.
[0052] If the hand tool 1 is in the form of a percussion drill with a drilling tool, the
preferential direction 1a of the hand tool corresponds, as already indicated, to the
percussion direction of the hand tool 1. In a particularly preferred embodiment, the
line of force action of the coupling forces lies in the direct vicinity of the line
of force action of the percussion mechanism of the percussion drill, that is to say
substantially in the direct vicinity of the geometric axis of the respective drilling
tool. Accordingly, it is also appropriate for the vibration direction of the mass-spring
oscillator 16 to correspond to the preferential direction 1a of the hand tool 1.
[0053] Figure 2 shows that the handgrip 4 is preloaded counter to the user actuation direction
21 by means of the coupling arrangement 5, in particular by means of the spring elements
15, 19, 20, and can be deflected in the user actuation direction 21. The handgrip
4 is thus, in the non-actuated state, preloaded against a machine-side stop, in this
case against the detent stop 9 discussed above, wherein the handgrip 4, in the event
of a predetermined user-imparted actuation force being exceeded, abuts against a further
machine-side stop, in this case against the counterpart stop 10 discussed above.
[0054] The above statements show that the two coupling strands 11, 12 may be of relatively
rigid configuration, without excessive vibrations occurring at the handgrip 4. The
reason for this is the fact that the force effects channeled out via the individual
coupling strands 11, 12 cancel one another out. It can thus be ensured that the handgrip
4 comes into contact with the counterpart stop 10 only in the event of an exceptional
actuation force. This is advantageous because the contact with the counterpart stop
10 results in a direct transmission of the machine-side vibrations to the handgrip
4.
[0055] It is also pointed out that the solution according to the proposal serves primarily
as an isolator for the handgrip 4 with regard to the transmission of machine-side
vibrations. However, it must also be emphasized that, in an advantageous manner, the
mass-spring oscillator 16 may in principle also serve as a vibration absorber because
it extracts from the machine body 2 a part of the vibration energy thereof.
[0056] According to a further teaching which is of independent significance, the handgrip
arrangement 3 for a hand tool 1 according to the proposal is claimed independently.
Reference may be made to all statements regarding the hand tool according to the proposal
which are suitable for describing the handgrip arrangement 3.
[0057] According to a further teaching which is likewise of independent significance, the
coupling arrangement 5 with the two coupling strands 11, 12 is claimed independently.
It has already been pointed out that the coupling arrangement 5 according to the proposal
may be used in a wide variety of applications. Furthermore, reference may be made
to the statements regarding the two former teachings. All of the features and advantages
explained with regard to the two former teachings may be applied to the latter teaching.
1. A motor-driven hand tool having a machine body (2) and having a handgrip arrangement
(3), wherein the handgrip arrangement (3) has a handgrip (4) and a coupling arrangement
(5) for coupling the handgrip (4) to the machine body (2), wherein, in the operational
state, in any case, the machine body (2) vibrates, wherein the coupling arrangement
(5) has at least two parallel coupling strands (11, 12) and wherein the coupling strands
(11, 12) are of different configuration such that the force effects which are channeled
out at the handgrip side via the individual coupling strands (11, 12) and which are
attributed to vibrations introduced at the machine side into the individual coupling
strands (11, 12) at least partially cancel one another out,
characterized
in that a first coupling strand (11) has a transmission element (15) for the substantially
in-phase transmission of machine-side vibrations, in that a second coupling strand
(12) has a mass-spring oscillator (16) for the phase-offset, substantially anti-phase,
transmission of machine-side vibrations, in that the force effects of the vibrations
introduced at the machine side into the two coupling strands (11, 12) at least partially
cancel one another out at the handgrip side, in that the oscillator spring arrangement
(17) of the mass-spring oscillator (16) has a first spring element (19) coupled to
the machine body (2) and a second spring element (20) coupled to the handgrip (4),
in that the two spring elements (19, 20) are connected in series and in that the oscillator
mass arrangement (18) is coupled to the oscillator spring arrangement (17) at the
connection point between the two spring elements (19, 20).
2. The hand tool as claimed in claim 1, characterized in that the machine-side vibrations include a dominant vibration component, in particular
at least one substantially harmonic vibration, with a preferential direction (1a)
and a preferential frequency, preferably in that the preferential frequency lies in
the range between approximately 10 Hz and approximately 100 Hz and is preferably approximately
50 Hz.
3. The hand tool as claimed in claim 1 or 2, characterized in that the mass-spring oscillator (16) is at least slightly detuned with respect to a preferential
frequency of the machine-side vibrations, such that a machine-side vibration with
a preferential frequency is converted via the mass-spring oscillator (16) into a substantially
anti-phase handgrip-side force effect.
4. The hand tool as claimed in one of the preceding claims, characterized in that the mass-spring oscillator (16) has an oscillator spring arrangement (17) which is
coupled to the machine body (2) and preferably to the handgrip (4), and in that the mass-spring oscillator (16) has an oscillator mass arrangement (18) which is
coupled to the oscillator spring arrangement (17).
5. The hand tool as claimed in one of the preceding claims, characterized in that the two spring elements (19, 20) of the mass-spring oscillator (16) are sections
of a single spring element.
6. The hand tool as claimed in one of the preceding claims, characterized in that the machine-side spring element (19) assigned to the oscillator mass arrangement
(18) is aligned, with regard to its spring action and/or its shaping, with the handgrip-side
spring element (20) assigned to the oscillator mass arrangement (18).
7. The hand tool as claimed in one of the preceding claims, characterized in that the coupling between the oscillator mass arrangement (18) and the oscillator spring
arrangement (17) has, in any case in the operational state, a degree of play in a
movement direction of the mass-spring oscillator (16).
8. The hand tool as claimed in one of the preceding claims, characterized in that the coupling points of the individual coupling strands (11, 12) to the machine body
(2) and/or to the handgrip (4) are in each case situated adjacent to one another and/or
are identical, and/or in that the coupling points of the individual coupling strands (11, 12) to the machine body
(2) and/or to the handgrip (4) are arranged in each case on a respective machine-side
and/or handgrip-side coupling part (7, 14) which is common to the coupling strands
(11, 12).
9. The hand tool as claimed in claim 2 and if appropriate as claimed in one of claims
3 to 9, characterized in that the coupling arrangement (5) is substantially aligned, with regard to its coupling
forces, with the preferential direction (1a) of the hand tool (1), preferably in that the hand tool (1) is in the form of a percussive tool, in particular a percussion
drill with a drilling tool, and in that the preferential direction (1a) of the hand tool (1) corresponds to the percussion
direction.
10. The hand tool as claimed in one of the preceding claims, characterized in that the handgrip (4) is preloaded by means of the coupling arrangement (5) counter to
the user actuation direction (21) and can be deflected in the user actuation direction
(21), and in that the handgrip (4), in the non-actuated state, is preloaded against a machine-side
stop (9), and in that the handgrip (4), in the event of a predetermined user-imparted actuation force being
exceeded, abuts against a further machine-side stop (10).
11. A handgrip arrangement for a motor-driven hand tool having a machine body (2), wherein
the handgrip arrangement (3) has a handgrip (4) and a coupling arrangement (5) for
coupling the handgrip (4) to the machine body (2) of the hand tool (1), wherein, in
the operational state, in any case, the machine body (2) vibrates,
in particular for a hand tool as claimed in one of the preceding claims, wherein the
coupling arrangement (5) has at least two parallel coupling strands (11, 12) and wherein
the coupling strands (11, 12) are of different configuration such that the force effects
which are channeled out at the handgrip side via the individual coupling strands (11,
12) and which are attributed to vibrations introduced at the machine side into the
individual coupling strands (11, 12) at least partially cancel one another out,
characterized
in that a first coupling strand (11) has a transmission element (15) for the substantially
in-phase transmission of machine-side vibrations, in that a second coupling strand
(12) has a mass-spring oscillator (16) for the phase-offset, substantially anti-phase,
transmission of machine-side vibrations, in that the force effects of the vibrations
introduced at the machine side into the two coupling strands (11, 12) at least partially
cancel one another out at the handgrip side, in that the oscillator spring arrangement
(17) of the mass-spring oscillator (16) has a first spring element (19) coupled to
the machine body (2) and a second spring element (20) coupled to the handgrip (4),
in that the two spring elements (19, 20) are connected in series and in that the oscillator
mass arrangement (18) is coupled to the oscillator spring arrangement (17) at the
connection point between the two spring elements (19, 20).
12. A coupling arrangement for mechanical coupling of a first component, in particular
of a machine body of a hand tool, to a second component, in particular of a handgrip
of a hand tool,
in particular for a hand tool as claimed in one of claims 1 to 10, wherein the coupling
arrangement (5) has at least two parallel coupling strands (11, 12) and wherein the
coupling strands (11, 12) are of different configuration such that the force effects
which are channeled out at one end, in particular at the handgrip side, via the individual
coupling strands (11, 12) and which are attributed to vibrations introduced at the
other end, in particular at the machine side, into the individual coupling strands
(11, 12) at least partially cancel one another out,
characterized
in that a first coupling strand (11) has a transmission element (15) for the substantially
in-phase transmission of machine-side vibrations, in that a second coupling strand
(12) has a mass-spring oscillator (16) for the phase-offset, substantially anti-phase,
transmission of machine-side vibrations, in that the force effects of the vibrations
introduced at the machine side into the two coupling strands (11, 12) at least partially
cancel one another out at the handgrip side, in that the oscillator spring arrangement
(17) of the mass-spring oscillator (16) has a first spring element (19) coupled to
the machine body (2) and a second spring element (20) coupled to the handgrip (4),
in that the two spring elements (19, 20) are connected in series and in that the oscillator
mass arrangement (18) is coupled to the oscillator spring arrangement (17) at the
connection point between the two spring elements (19, 20).
1. Motorisch angetriebenes Handwerkzeug mit einem Maschinenkörper (2) und einer Handgriffanordnung
(3), wobei die Handgriffanordnung (3) einen Handgriff (4) und eine Kopplungsanordnung
(5) zur Kopplung des Handgriffs (4) mit dem Maschinenkörper (2) aufweist, wobei im
Betriebszustand jedenfalls der Maschinenkörper (2) vibriert,
wobei die Kopplungsanordnung (5) mindestens zwei parallele Kopplungsstränge (11, 12)
aufweist und wobei die Kopplungsstränge (11, 12) derart unterschiedlich ausgestaltet
sind, dass sich die handgriffseitig über die einzelnen Kopplungsstränge (11, 12) ausgeleiteten
Kraftwirkungen, die auf die maschinenseitig in die einzelnen Kopplungsstränge (11,
12) eingeleiteten Vibrationen zurückgehen, zumindest zum Teil gegeneinander aufheben,
dadurch gekennzeichnet, dass ein erster Kopplungsstrang (11) ein Übertragungselement (15) zur im Wesentlichen
gleichphasigen Übertragung von maschinenseitigen Vibrationen aufweist, dass ein zweiter
Kopplungsstrang (12) einen Masse-Feder-Schwinger (16) zur phasenverschobenen, im Wesentlichen
gegenphasigen, Übertragung von maschinenseitigen Vibrationen aufweist, dass sich die
Kraftwirkungen der maschinenseitig in die beiden Kopplungsstränge (11, 12) eingeleiteten
Vibrationen handgriffseitig zumindest zum Teil gegeneinander aufheben, dass die Schwinger-Federanordnung
(17) des Masse-Feder-Schwingers (16) ein erstes, mit dem Maschinenkörper (2) gekoppeltes
Federelement (19) und ein zweites, mit dem Handgriff (4) gekoppeltes Federelement
(20) aufweist, dass die beiden Federelemente (19, 20) hintereinander geschaltet sind
und dass die Schwinger-Massenanordnung (18) an der Anschlussstelle zwischen den beiden
Federelementen (19, 20) mit der Schwinger-Federanordnung (17) gekoppelt ist.
2. Handwerkzeug nach Anspruch 1, dadurch gekennzeichnet, dass die maschinenseitigen Vibrationen einen dominanten Vibrationsanteil, insbesondere
mindestens eine im Wesentlichen harmonische Schwingung, mit einer Vorzugsrichtung
(1a) und einer Vorzugsfrequenz umfassen, vorzugsweise, dass die Vorzugsfrequenz im
Bereich zwischen etwa 10 Hz und etwa 100 Hz, vorzugsweise bei etwa 50Hz liegt.
3. Handwerkzeug nach Anspruch 1 oder 2, dadurch gekennzeichnet, dass der Masse-Feder-Schwinger (16) im Hinblick auf eine Vorzugsfrequenz der maschinenseitigen
Vibrationen zumindest geringfügig verstimmt ist, derart, dass eine maschinenseitige
Vibration mit Vorzugsfrequenz über den Masse-Feder-Schwinger (16) in eine im Wesentlichen
gegenphasige, handgriffseitige Kraftwirkung übertragen wird.
4. Handwerkzeug nach einem der vorhergehenden Ansprüche, dadurch gekennzeichnet, dass der Masse-Feder-Schwinger (16) eine Schwinger-Federanordnung (17) aufweist, die mit
dem Maschinenkörper (2) und, vorzugsweise, mit dem Handgriff (4), gekoppelt ist, und
dass der Masse-Feder-Schwinger (16) eine Schwinger-Massenanordnung (18) aufweist,
die mit der Schwinger-Federanordnung (17) gekoppelt ist.
5. Handwerkzeug nach einem der vorhergehenden Ansprüche, dadurch gekennzeichnet, dass die beiden Federelemente (19, 20) des Masse-Feder-Schwingers (16) Abschnitte eines
einzigen Federelements sind.
6. Handwerkzeug nach einem der vorhergehenden Ansprüche, dadurch gekennzeichnet, dass das maschinenseitige, der Schwinger-Massenanordnung (18) zugeordnete Federelement
(19) hinsichtlich seiner Federwirkung und/oder seiner Formgebung auf das handgriffseitige,
der Schwinger-Massenanordnung (18) zugeordnete Federelement (20) ausgerichtet ist.
7. Handwerkzeug nach einem der vorhergehenden Ansprüche, dadurch gekennzeichnet, dass die Kopplung zwischen der Schwinger-Massenanordnung (18) und der Schwinger-Federanordnung
(17) jedenfalls im Betriebszustand ein Spiel in Bewegungsrichtung des Masse-Feder-Schwingers
(16) aufweist.
8. Handwerkzeug nach einem der vorhergehenden Ansprüche, dadurch gekennzeichnet, dass die Koppelstellen der einzelnen Kopplungsstränge (11, 12) am Maschinenkörper (2)
und/oder am Handgriff (4) jeweils nebeneinander liegen und/oder identisch sind, und/oder,
dass die Koppelstellen der einzelnen Kopplungsstränge (11, 12) am Maschinenkörper
(2) und/oder am Handgriff (4) jeweils an einem den Kopplungssträngen (11, 12) gemeinsamen,
maschinenseitigen und/oder handgriffseitigen Koppelteil (7, 14) angeordnet sind.
9. Handwerkzeug nach Anspruch 2 und ggf. nach einem der Ansprüche 3 bis 9, dadurch gekennzeichnet, dass die Kopplungsanordnung (5) im Hinblick auf deren Kopplungskräfte im Wesentlichen
auf die Vorzugsrichtung (1a) des Handwerkzeugs (1) ausgerichtet ist, vorzugsweise,
dass das Handwerkzeug (1) als Schlagwerkzeug, insbesondere als Schlagbohrmaschine
mit einem Bohrwerkzeug, ausgestaltet ist und dass die Vorzugsrichtung (1a) des Handwerkzeugs
(1) der Schlagrichtung entspricht.
10. Handwerkzeug nach einem der vorhergehenden Ansprüche, dadurch gekennzeichnet, dass der Handgriff (4) mittels der Kopplungsanordnung (5) entgegen der benutzerseitigen
Betätigungsrichtung (21) vorgespannt ist und in der benutzerseitigen Betätigungsrichtung
(21) einfederbar ist und dass der Handgriff (4) im unbetätigten Zustand gegen einen
maschinenseitigen Anschlag (9) vorgespannt ist und dass der Handgriff (4) bei Überschreiten
einer vorbestimmten, benutzerseitigen Betätigungskraft gegen einen weiteren, maschinenseitigen
Anschlag (10) anliegt.
11. Handgriffanordnung für ein motorisch angetriebenes Handwerkzeug mit einem Maschinenkörper
(2), wobei die Handgriffanordnung (3) einen Handgriff (4) und eine Kopplungsanordnung
(5) zur Kopplung des Handgriffs (4) mit dem Maschinenkörper (2) des Handwerkzeugs
(1) aufweist und wobei im Betriebszustand jedenfalls der Maschinenkörper (2) vibriert,
insbesondere für ein Handwerkzeug nach einem der vorhergehenden Ansprüche,
wobei die Kopplungsanordnung (5) mindestens zwei parallele Kopplungsstränge (11, 12)
aufweist und wobei die Kopplungsstränge (11, 12) derart unterschiedlich ausgestaltet
sind, dass sich die handgriffseitig über die einzelnen Kopplungsstränge (11, 12) ausgeleiteten
Kraftwirkungen, die auf die maschinenseitig in die einzelnen Kopplungsstränge (11,
12) eingeleiteten Vibrationen zurückgehen, zumindest zum Teil gegeneinander aufheben,
dadurch gekennzeichnet, dass ein erster Kopplungsstrang (11) ein Übertragungselement (15) zur im Wesentlichen
gleichphasigen Übertragung von maschinenseitigen Vibrationen aufweist, dass ein zweiter
Kopplungsstrang (12) einen Masse-Feder-Schwinger (16) zur phasenverschobenen, im Wesentlichen
gegenphasigen, Übertragung von maschinenseitigen Vibrationen aufweist, dass sich die
Kraftwirkungen der maschinenseitig in die beiden Kopplungsstränge (11, 12) eingeleiteten
Vibrationen handgriffseitig zumindest zum Teil gegeneinander aufheben, dass die Schwinger-Federanordnung
(17) des Masse-Feder-Schwingers (16) ein erstes, mit dem Maschinenkörper (2) gekoppeltes
Federelement (19) und ein zweites, mit dem Handgriff (4) gekoppeltes Federelement
(20) aufweist, dass die beiden Federelemente (19, 20) hintereinander geschaltet sind
und dass die Schwinger-Massenanordnung (18) an der Anschlussstelle zwischen den beiden
Federelementen (19, 20) mit der Schwinger-Federanordnung (17) gekoppelt ist.
12. Kopplungsanordnung zur mechanischen Kopplung einer ersten Komponente, insbesondere
eines Maschinenkörpers eines Handwerkzeugs, mit einer zweiten Komponente, insbesondere
einem Handgriffm eines Handwerkzeugs, insbesondere für ein Handwerkzeug nach einem
der Ansprüche 1 bis 10,
wobei die Kopplungsanordnung (5) mindestens zwei parallele Kopplungsstränge (11, 12)
aufweist und wobei die Kopplungsstränge (11, 12) derart unterschiedlich ausgestaltet
sind, dass sich die am einem Ende, insbesondere handgriffseitig, über die einzelnen
Kopplungsstränge (11, 12) ausgeleiteten Kraftwirkungen, die auf am anderen Ende, insbesondere
maschinenseitig, in die einzelnen Kopplungsstränge (11, 12) eingeleiteten Vibrationen
zurückgehen, zumindest zum Teil gegeneinander aufheben, dadurch gekennzeichnet, dass ein erster Kopplungsstrang (11) ein Übertragungselement (15) zur im Wesentlichen
gleichphasigen Übertragung von maschinenseitigen Vibrationen aufweist, dass ein zweiter
Kopplungsstrang (12) einen Masse-Feder-Schwinger (16) zur phasenverschobenen, im Wesentlichen
gegenphasigen, Übertragung von maschinenseitigen Vibrationen aufweist, dass sich die
Kraftwirkungen der maschinenseitig in die beiden Kopplungsstränge (11, 12) eingeleiteten
Vibrationen handgriffseitig zumindest zum Teil gegeneinander aufheben, dass die Schwinger-Federanordnung
(17) des Masse-Feder-Schwingers (16) ein erstes, mit dem Maschinenkörper (2) gekoppeltes
Federelement (19) und ein zweites, mit dem Handgriff (4) gekoppeltes Federelement
(20) aufweist, dass die beiden Federelemente (19, 20) hintereinander geschaltet sind
und dass die Schwinger-Massenanordnung (18) an der Anschlussstelle zwischen den beiden
Federelementen (19, 20) mit der Schwinger-Federanordnung (17) gekoppelt ist.
1. Outil manuel motorisé doté d'un corps (2) de machine et doté d'un agencement (3) de
poignée, l'agencement (3) de poignée comprenant une poignée (4) et un agencement (5)
d'accouplement servant à coupler la poignée (4) au corps (2) de machine, le corps
(2) de machine vibrant dans tous les cas dans l'état opérationnel, l'agencement (5)
d'accouplement comprenant au moins deux brins parallèles (11, 12) d'accouplement et
les brins (11, 12) d'accouplement étant de configuration différente de telle façon
que les effets de force qui sont canalisés vers l'extérieur du côté de la poignée
via les brins individuels (11, 12) d'accouplement et qui sont attribués à des vibrations
introduites du côté de la machine dans les brins individuels (11, 12) d'accouplement
se compensent réciproquement au moins partiellement,
caractérisé
en ce qu'un premier brin (11) d'accouplement est doté d'un élément (15) de transmission servant
à la transmission sensiblement en phase de vibrations côté machine, en ce qu'un deuxième
brin (12) d'accouplement est doté d'un oscillateur masse-ressort (16) servant à la
transmission déphasée, sensiblement en opposition de phase, de vibrations côté machine,
en ce que les effets de force des vibrations introduites du côté de la machine dans
les deux brins (11, 12) d'accouplement se compensent réciproquement au moins partiellement
du côté de la poignée, en ce que l'agencement (17) de ressort d'oscillateur de l'oscillateur
masse-ressort (16) est doté d'un premier élément (19) de ressort couplé au corps (2)
de machine et d'un deuxième élément (20) de ressort couplé à la poignée (4), en ce
que les deux éléments (19, 20) de ressort sont reliés en série et en ce que l'agencement
(18) de masse d'oscillateur est couplé à l'agencement (17) de ressort d'oscillateur
au point de liaison entre les deux éléments (19, 20) de ressort.
2. Outil manuel selon la revendication 1, caractérisé en ce que les vibrations côté machine comprennent une composante dominante de vibrations, en
particulier au moins une vibration sensiblement harmonique, présentant une direction
préférentielle (1a) et une fréquence préférentielle, en ce que la fréquence préférentielle se situe de préférence dans la plage comprise entre environ
10 Hz et environ 100 Hz et est de préférence d'environ 50 Hz.
3. Outil manuel selon la revendication 1 ou 2, caractérisé en ce que l'oscillateur masse-ressort (16) est au moins légèrement désaccordé par rapport à
une fréquence préférentielle des vibrations côté machine, de telle façon qu'une vibration
côté machine présentant une fréquence préférentielle soit convertie via l'oscillateur
masse-ressort (16) en un effet de force côté poignée sensiblement en opposition de
phase.
4. Outil manuel selon l'une des revendications précédentes, caractérisé en ce que l'oscillateur masse-ressort (16) est doté d'un agencement (17) de ressort d'oscillateur
qui est couplé au corps (2) de machine et de préférence à la poignée (4), et en ce que l'oscillateur masse-ressort (16) est doté d'un agencement (18) de masse d'oscillateur
qui est couplé à l'agencement (17) de ressort d'oscillateur.
5. Outil manuel selon l'une des revendications précédentes, caractérisé en ce que les deux éléments (19, 20) de ressort de l'oscillateur masse-ressort (16) sont des
sections d'un seul élément de ressort.
6. Outil manuel selon l'une des revendications précédentes, caractérisé en ce que l'élément (19) de ressort côté machine affecté à l'agencement (18) de masse d'oscillateur
est aligné, en ce qui concerne son action élastique et/ou sa mise en forme, avec l'élément
(20) de ressort côté poignée affecté à l'agencement (18) de masse d'oscillateur.
7. Outil manuel selon l'une des revendications précédentes, caractérisé en ce que l'accouplement entre l'agencement (18) de masse d'oscillateur et l'agencement (17)
de ressort d'oscillateur présente, dans tous les cas dans l'état opérationnel, un
degré de jeu dans une direction de mouvement de l'oscillateur masse-ressort (16).
8. Outil manuel selon l'une des revendications précédentes, caractérisé en ce que les points d'accouplement des brins individuels (11, 12) d'accouplement au corps
(2) de machine et/ou à la poignée (4) sont dans chaque cas situés de façon adjacente
les uns aux autres et/ou sont identiques, et/ou en ce que les points d'accouplement des brins individuels (11, 12) d'accouplement au corps
(2) de machine et/ou à la poignée (4) sont disposés dans chaque cas sur une partie
(7, 14) d'accouplement respective côté machine et/ou côté poignée qui est commune
aux brins (11, 12) d'accouplement.
9. Outil manuel selon la revendication 2 et, le cas échéant, selon l'une des revendications
3 à 9, caractérisé en ce que l'agencement (5) d'accouplement est sensiblement aligné, en ce qui concerne ses forces
d'accouplement, avec la direction préférentielle (1a) de l'outil manuel (1), de préférence
en ce que l'outil manuel (1) se présente sous la forme d'un outil à percussion, en particulier
une perceuse à percussion dotée d'un outil de perçage, et en ce que la direction préférentielle (1a) de l'outil manuel (1) correspond à la direction
de percussion.
10. Outil manuel selon l'une des revendications précédentes, caractérisé en ce que la poignée (4) est préchargée au moyen de l'agencement (5) d'accouplement inversement
à la direction (21) d'actionnement par l'utilisateur et peut être déformée dans la
direction (21) d'actionnement par l'utilisateur, et en ce que la poignée (4), dans l'état non actionné, est préchargée contre une butée (9) côté
machine, et en ce que la poignée (4), en cas de dépassement d'une force d'actionnement prédéterminée exercée
par l'utilisateur, prend appui contre une autre butée (10) côté machine.
11. Agencement de poignée destiné à un outil manuel motorisé doté d'un corps (2) de machine,
l'agencement (3) de poignée comprenant une poignée (4) et un agencement (5) d'accouplement
servant à coupler la poignée (4) au corps (2) de machine de l'outil manuel (1), le
corps (2) de machine vibrant dans tous les cas dans l'état opérationnel,
en particulier pour un outil manuel selon l'une des revendications précédentes, l'agencement
(5) d'accouplement comprenant au moins deux brins parallèles (11, 12) d'accouplement
et les brins (11, 12) d'accouplement étant de configuration différente de telle façon
que les effets de force qui sont canalisés vers l'extérieur du côté de la poignée
via les brins individuels (11, 12) d'accouplement et qui sont attribués à des vibrations
introduites du côté de la machine dans les brins individuels (11, 12) d'accouplement
se compensent réciproquement au moins partiellement,
caractérisé
en ce qu'un premier brin (11) d'accouplement est doté d'un élément (15) de transmission servant
à la transmission sensiblement en phase de vibrations côté machine, en ce qu'un deuxième
brin (12) d'accouplement est doté d'un oscillateur masse-ressort (16) servant à la
transmission déphasée, sensiblement en opposition de phase, de vibrations côté machine,
en ce que les effets de force des vibrations introduites du côté de la machine dans
les deux brins (11, 12) d'accouplement se compensent réciproquement au moins partiellement
du côté de la poignée, en ce que l'agencement (17) de ressort d'oscillateur de l'oscillateur
masse-ressort (16) est doté d'un premier élément (19) de ressort couplé au corps (2)
de machine et d'un deuxième élément (20) de ressort couplé à la poignée (4), en ce
que les deux éléments (19, 20) de ressort sont reliés en série et en ce que l'agencement
(18) de masse d'oscillateur est couplé à l'agencement (17) de ressort d'oscillateur
au point de liaison entre les deux éléments (19, 20) de ressort.
12. Agencement d'accouplement destiné à l'accouplement mécanique d'un premier composant,
en particulier d'un corps de machine d'un outil manuel, à un deuxième composant, en
particulier d'une poignée d'un outil manuel,
en particulier pour un outil manuel selon l'une des revendications 1 à 10, l'agencement
(5) d'accouplement comprenant au moins deux brins parallèles (11, 12) d'accouplement
et les brins (11, 12) d'accouplement étant de configuration différente de telle façon
que les effets de force qui sont canalisés vers l'extérieur à une extrémité, en particulier
du côté de la poignée, via les brins individuels (11, 12) d'accouplement, et qui sont
attribués à des vibrations introduites à l'autre extrémité, en particulier du côté
de la machine, dans les brins individuels (11, 12) d'accouplement se compensent réciproquement
au moins partiellement,
caractérisé
en ce qu'un premier brin (11) d'accouplement est doté d'un élément (15) de transmission servant
à la transmission sensiblement en phase de vibrations côté machine, en ce qu'un deuxième
brin (12) d'accouplement est doté d'un oscillateur masse-ressort (16) servant à la
transmission déphasée, sensiblement en opposition de phase, de vibrations côté machine,
en ce que les effets de force des vibrations introduites du côté de la machine dans
les deux brins (11, 12) d'accouplement se compensent réciproquement au moins partiellement
du côté de la poignée, en ce que l'agencement (17) de ressort d'oscillateur de l'oscillateur
masse-ressort (16) est doté d'un premier élément (19) de ressort couplé au corps (2)
de machine et d'un deuxième élément (20) de ressort couplé à la poignée (4), en ce
que les deux éléments (19, 20) de ressort sont reliés en série et en ce que l'agencement
(18) de masse d'oscillateur est couplé à l'agencement (17) de ressort d'oscillateur
au point de liaison entre les deux éléments (19, 20) de ressort.
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