Field of invention
[0001] In a first aspect of the present invention there is provided a system that comprises
on the one hand an implement attachment means adapted to be fitted to a working machine,
and on the other hand at least one implement or tool, wherein the implement attachment
means includes first locking means and first drive coupling means, wherein the implement
or tool includes second locking means and second drive coupling means and wherein
the first and second locking means are adapted for mutual co-action in releasably
locking the implement to the implement attachment means and the first and second drive
coupling means are adapted for mutual co-action in releasably connecting said drive
coupling means one to the other.
[0002] The phrase "drive coupling means" used in the instant application includes hydraulic
coupling units, electrical coupling units and/or pneumatic coupling units.
Background of the invention
[0003] Implement attachment systems for the rapid exchange of buckets, scoops and other
implements in connection with diggers, wheel mounted loaders, various types of material
handling machines, have been a self-evident solution in the majority of European markets
over the last ten to fifteen years. During this period, development has quickly progressed
from simple mechanical solutions, where the driver leaves his cabin and locks or unlocks
the attachment locking mechanism with a simple lever movement, to hydraulic solutions,
where the driver controls a locking cylinder that actuates the attachment locking
mechanism, by simply pressing a button in the driver's cabin. Even fully automatic
implement attachment systems have become commercially available in recent years. In
this case, mechanical and hydraulic buckets, scoops and other implements are locked
and unlocked fully automatically directly from the driver' cabin. Hydraulic hoses
and electric power cables are also coupled automatically.
[0004] For example, such a system, together with its implement attachment means and working
implement, is described in
EP 602 165. The system described in
EP 602 165 provides considerable benefits, since the interconnection, locking and hydraulic
and electrical coupling of the implement attachment means and the implement can be
effected without the operator needing to leave his place in the working machine.
[0005] The majority of implement attachment systems are based on the principle of an implement
attachment means that includes a "capture side" and a locking side. Most implement
gates are of the same design, apart from symmetrical gate attachments or fasteners
that are mechanically designed to be coupled and locked from two directions. The capturing
side of the attachment means picks up the implement and turns it into position, and
then locks the implement with the aid of a locking mechanism in the form of a locking
pin or a locking lip that passes into a locking position on the gate. The locking
mechanism goes either in the coupling direction of the attachment or at an angle of
90 degrees to this direction. The gate is that part of the implement which is connected
to the implement attachment means.
[0006] In the case of the system described in
EP 602 165, the locking system comprises a rod-like element, a so-called gate axle, on each
side of the gate and two U-shaped and two L-shaped grippers on the implement attachment
means. In a coupling operation, the U-shaped grippers act as claw-like capturing elements
and are caused to straddle the gate axle on the corresponding side of the gate, said
axle constituting gripping means. The implement attachment means and the implement
are then rotated relative to one another about the gate axle straddled by the U-shaped
grippers to a position in which the other gate axle lies adjacent the L-shaped gripper.
In this position, lock bolts are projected out into the L-shaped grippers so as to
surround the other gate axle together with the L-shaped gripper, therewith firmly
locking the implement to the implement attachment means. The hydraulic coupling units
on the implement attachment means are coupled to corresponding hydraulic units on
the implement in unison with this locking action.
[0007] Problems can occur when coupling up equipment in the manner proposed in
EP 602 165, and also when using other similar systems.
- The driver is unable to see when the implement attachment means is in the correct
capturing position for rotation of the attachment to its locking position. This makes
coupling of the implement difficult to achieve, with the risk of dropping the implement.
- The driver has succeeded in reaching the correct capturing position, but rotates the
implement attachment means down to a locking position with the lock mechanism in an
outwardly activated state. The driver is normally unable to see the rear side of the
attachment means at the moment of endeavouring to effect a coupling. This means that
the implement attachment means will not be in the correct locking position. There
is then a danger that the implement will not be truly coupled to the attachment means
and that it may be dropped. A variant of this possibility is that the implement attachment
means may be clamped firmly in a half-way position where the driver believes that
the implement to be reliably coupled to the attachment means, but where the implement
falls down onto the ground when subjected to load.
- When the implement attachment means is coupled with the locking pins extended in conjunction
with an automatic quick hose-coupling function, there is a serious risk of striking
and crushing couplings on the implement.
[0008] It will be obvious from the aforegoing that there is a serious need for additional
assistance in checking the position of the implement attachment means relative to
the implement with regard to coupling and uncoupling operations.
[0009] For safety reasons, it is also important that the attachment locking mechanism is
always in its locking mode when working with working implements. This creates the
problem of checking that such is always the case.
[0010] Systems of the type concerned present other problems. The implements that shall be
capable of connection to the implement attachment means may be of mutually different
kinds. For reasons of a technical and safety nature, it is important that each implement
is coupled to the correct hydraulic pressure and flow rate. For instance, should an
hydraulic hammer that requires a large flow rate, a relatively low working pressure
and a pressureless return line be mistakenly connected to a two-way hydraulic circuit,
the return packing on the hammer will be quickly blown.
[0011] It also desirable in many instances to know just how long a working implement has
been in use and under what conditions, and also to be aware of the condition of the
implement.
[0012] The object of the present invention is to overcome the aforesaid problems, either
completely or partially, and thus to provide an implement attachment means and implement
system that will satisfy one or more of the following measures:
- Elimination or at least reduction in the danger of an error being made when coupling
together attachment means and implement
ensuring that an implement cannot be loosened unintentionally from the implement attachment
means during work, or at least reduce the danger of such an event taking place
ensuring that an implement connected to the implement attachment means will be manoeuvred
in the manner intended with respect to the implement concerned
facilitate control of the work carried out with a given working implement and also
of its condition.
[0013] US 6301811 discloses a system according to the preamble of claim 1.
Summary of the invention
[0014] The object has been achieved in accordance with the first aspect of the invention
by virtue of a system of the kind defined in the preamble of Claim 1 being provided
with the features in the characterizing portion of claim 1.
[0015] The sensor and detection means enable information to be obtained regarding the mutual
relationship of the implement attachment means and the implement and also regarding
the working conditions of the implement. The sensor and detection means may consist
respectively of a plurality of sensor units and detection units and may be adapted
to satisfy one or more of the aforesaid requisite measures. This will depend on the
completeness and sophistication of the system that has been constructed around such
sensor and detection means.
[0016] The inventive system enables high demands on safety and reliability to be achieved
and also enhances the operator's ability to have control over working processes. The
at least one sensor unit and at least one detection unit is adapted to send information
to the effect that the locking elements are in locking engagement with one another.
This solves a safety problem that is vital in the present context, namely that the
operator is able to check continually that locking has been safely achieved. This
feature also fulfils the function of monitoring that a step in a third and last locking
sequence has been carried out correctly. Since at least one sensor unit and at least
one detection unit is adapted to send implement identifying information, it enables
the type of implement that has been coupled to be identified and therewith allows
the correct electricity supply , the correct oil supply, the correct pressure and
the correct flow rate to be applied on the basis of this identification. In addition
to identifying the type of implement that has been coupled-up, said function can also
be used to identify the implement concerned individually - which may be of value in
some cases.
[0017] According to a preferred embodiment of the inventive system, at least one sensor
unit is mounted on the implement and at least one detection unit is mounted on the
implement attachment means. Although it lies within scope of the invention to mount
a respective sensor and detection unit on either the implement attachment means or
on the implement itself, it is beneficial in many instances to mount the detection
units on the implement attachment means since it is these units that are intended
to forward said information. The detection units mounted on the implement attachment
means facilitate the transfer of information carrying signals to the operator, for
example through signal lines leading to the driving cabin of the working machine.
The provision of a detection unit on the implement attachment means does not, of course,
exclude other detection units of the detection means from being mounted on the implement
when the system is designed to fulfil several of the aforesaid functions and when
such placement of said detection units is beneficial in respect of certain of said
functions.
[0018] According to a further preferred embodiment at least one sensor unit and at least
one detection unit are adapted to transfer information that indicates whether or not
the implement attachment means and the implement are in a predetermined positional
area relative to one another. This embodiment is intended to fulfil one of the most
important of said requirements, namely the creation of a first decisive condition
for the safe and interference-free coupling of the implement attachment means with
the implement. This embodiment thus enables the operator to be informed as to whether
or not the implement attachment means is ready for the next following sequence in
the coupling procedure.
[0019] According to another preferred embodiment at least one sensor unit and at least one
detection unit are adapted to transfer information as to whether or not the implement
attachment means and the implement are in a predetermined position relative to one
another. In many instances, this starting position represents a second sequence in
the coupling procedure. The fact that the operator has control over this coupling
sequence contributes still further to the safety aspect of the coupling procedure.
This embodiment may conveniently constitute a compliment to the latter embodiment
given above. This may, of course, be beneficial also when the first coupling sequence
is effected in the absence of a control function.
[0020] According to a further embodiment of the invention the implement attachment means
includes capturing means and the implement includes gripping means adapted for co-action
with the capturing means, wherein either the capturing means or the gripping means
includes a first sensor unit which is adapted to transfer information to a first detection
unit when the capturing means is in engagement with the gripping means and wherein
a second sensor unit is disposed in a determined angular position on the periphery
of either the capturing means or the gripping means and functions to transfer information
to a second detection unit when the implement attachment means and the implement occupy
a predetermined position of rotation relative to one another about a pivot axle defined
by the capturing means or the gripping means.
[0021] This embodiment is adapted to a beneficial constructive implement attachment means
and implement design which has been well tested and found to function effectively.
The specified placement of the sensor units means that said units are placed on the
attachment component that is decisive with regard to the function of the coupling
and therefor gives a clear indication as to whether or not the area in which the implement
attachment means and the implement are positioned and their relative positions are
correct.
[0022] According to a further preferred embodiment the capturing means includes at least
one claw-like element and the gripping means includes at least one rod element or
vice versa, in other words the capturing means may include a rod element and the gripping
means may include a claw-like element. Such co-acting pairs of elements enable said
capturing and locking procedures to be achieved in a constructively simple manner.
Moreover, this solution provides a purposeful arrangement with respect to the sensor
and detection units.
[0023] According to another preferred embodiment the second sensor unit is disposed on the
rod element. These sensor units can be readily provided on the rod element in well
defined angular positions, therewith ensuring that a correct function will be obtained.
[0024] According to another beneficial embodiment at least one sensor unit and at least
one detection unit is adapted to send information to the effect that the drive coupling
devices are mutually coupled. This can ensure that a second step in the third coupling
sequence has been carried out correctly, while also providing access to continual
monitoring that the drive functions are intact.
[0025] According to another preferred embodiment at least one sensor unit and at least one
detection unit is adapted to send information relating to the operating conditions
of the implement. This information may, for instance, relate to the operating time
of different implements. Such information can be used as a basis for implement servicing
or as a basis for customer billing.
[0026] According to another preferred embodiment control means are provided for controlling
the measures or steps involved in coupling the implement attachment means and the
implement together and/or for controlling the measures or steps involved in manoeuvring
the implement. Because of these control means there is achieved a re-coupling procedure,
wherewith adequate measures will be taken in response to said information. This further
enhances the safety aspect of the arrangement.
[0027] According to another preferred embodiment the system includes a microprocessor which
is adapted to receive and to process received information and to deliver control signals
when applicable.
[0028] The integration of a microprocessor in the system in this way enables information
to be presented to an operator in a clear and lucid manner, so that adequate measures
can be taken without delay. Since the system according to the immediately preceding
embodiment includes control means, it is possible to trigger requisite measures automatically
through the medium of said microprocessor. The microprocessor is therefore a component
that further enhances the safety and reliability of the system. The working history
of individual implements can be stored and processed in the microprocessor.
[0029] The preferred embodiments of the inventive system are set forth in the claims dependent
on Claim 1.
[0030] Corresponding advantages are also gained with the working machine defined in claim
11 and with the method defined in claim 12, in accordance with further aspects of
the invention.
[0031] The invention will be described more explicitly hereinafter by way of a detailed
description of beneficial embodiments of the same and with reference to the accompanying
drawings.
Brief description of the drawings
[0032]
- Figure 1
- is perspective view of an implement attachment means and an implement in a first relative
position in accordance with known technology;
- Figure 2
- is a perspective view of the components shown in Fig. 1 in a second relative position;
- Figure 3
- is a perspective view of the components shown in Fig. 1 in a third relative position;
- Figure 4
- is a perspective view of a first part of an inventive implement attachment means;
- Figure 5
- is a perspective view of a second part of an inventive implement attachment means;
- Figure 6
- is a perspective view of a part of an inventive implement;
- Figure 7
- is a diagram illustrating signal transmission in a system according to the present
invention;
- Figure 8
- is a perspective view of an alternative embodiment of part of an implement.
Description of advantageous embodiments of the invention
[0033] A known system of mutually coupling an implement attachment means and an implement
is described in Figs 1 - 3. The system illustrated in these Figures and described
with reference thereto is included in the standpoint of techniques as disclosed, for
instance, in
EP 602 615, to which reference is made here.
[0034] The system shown in Fig. 1 thus includes an implement attachment means 100 and an
implement 200. The implement attachment means is intended to be fitted to a working
machine (not shown). The implement 200 includes a gate 201, which is that part which
is connected to the implement attachment means and which has a standard design for
different types of implement. The active part of the implement has been shown only
in broken lines and has different designs for different purposes. Thus, this system
enables implements intended for different types of work to be connected to the implement
attachment means 100 fitted to the machine.
[0035] The implement attachment means includes a connection part 101 which comprises a capturing
side 102 to the right in the Figure, and a locking side 103 to the left of the Figure.
The capturing side 102 has two U-shaped recesses 104, of which only one can be seen
in the Figure. The locking side 103 is an L-shaped profile from which two lock bolts
105 can be projected such as to form a U-shaped profile together with the L-profile.
The lock bolts 105 are shown extended in Fig. 1.
[0036] The gate 201 on the implement 200 includes a first gate axle 202 which is adapted
for co-action with the capturing side 102 of the implement attachment means, and a
second gate axle 203 which is adapted for co-action with the locking side 103 of the
implement attachment means. Each gate axle may be replaced with a short axle stump
on a respective side wall of the gate.
[0037] When the implement attachment means is to be connected to the implement, the implement
attachment means is manoeuvred to a capturing position, shown in Fig. 2. This means
that the U-profiles 104 of the implement attachment means will be caused to straddle
the first gate axle 102 of the implement. In this position, the gate axle 202 will
lie against the bottom of the U-profiles or generally in this position. As will be
seen from the Figure, the implement attachment means 100 is angled upwards in this
position. The angular position is not particularly critical in this stage of the proceedings
and the angle between the implement attachment means and the implement may have any
value within a given range. The capturing position can thus be defined as a positional
region.
[0038] The next step in the procedure involves rotating the implement attachment means 100
and the implement 200 from the position shown in Fig. 2 relative to one another, so
that the attachment 100 will face towards the implement. This is done with the lock
bolts withdrawn, so that the implement can be turned to an extent such that the second
gate axle 203 will be positioned in the L-profile. When there, the components are
ready to be firmly locked. This is achieved by extending the bolts so as to lock the
second gate axle between the L-profile 103 and the lock bolts 105. The lock bolts
105 are manoeuvred between their two positions hydraulically.
[0039] Figure 3 shows the components in a firmly locked state. The implement attachment
means is provided with a number of hydraulic coupling units and electrical coupling
units which shall be coupled to corresponding units provided on the implement. The
coupling units are mounted on a coupling ramp on respective units. The coupling ramp
on the implement attachment means is mounted so that it will be manoeuvred by the
same hydraulic cylinders as those that manoeuvre the lock bolts. The rear side of
the implement coupling ramp 104 is visible in Figure 3, whereas its front side and
the coupling ramp on the implement attachment means are hidden from view. The lock
bolts are thus extended at the same time as the coupling units are connected. It will
be understood that the invention is not restricted to such simultaneous connection.
[0040] Neither is the invention restricted to a design in which the lock bolts are manoeuvred
in the longitudinal direction of the implement attachment means as shown in Fig. 3.
For example, the lock bolts may be arranged to be extended at right angles to said
direction, i.e. in a direction parallel with the first gate axle 202. In such case,
the bolts may be projected into openings in the side members of the implement gates.
Other lock bolt manoeuvring arrangements are, of course, conceivable within the scope
of the invention.
[0041] Similarly, the capturing device may have a different design to the claw-like elements,
the U-profiles, on the implement attachment means and the gripping device may have
a different design to the rod elements, i.e. to the gate axle, on the implement. For
instance, the implement may be provided with claw-like hooks for co-action with complimentary
elements on the implement attachment means, as shown in Fig. 8 for example.
[0042] An example of the special arrangement of sensor units and detector units on which
the resent invention is based will now be described more specifically with reference
to Figs 4 - 6.
[0043] Figure 4 is a perspective view of an implement attachment means according to the
invention, although some of its components have been excluded for the sake of simplicity.
These components are shown in perspective in Fig. 5.
[0044] Four detection units 109 110 are disposed adjacent the capturing side of the implement
attachment means so as to be situated in the U-profiles 104. These detection units
are adapted to co-act with sensor units on the first gate axle 202 of the implement
(see Fig. 6). One of these sensor units consists in the gate axle 202 itself. When
the implement 200 is in the correct capture position in relation to the implement
attachment means 100, as shown in Fig. 2, the first gate axle 202 will be located
in the U-profile. The detection units 109 therewith indicate that the gate axle is
in this position. A positive indication is triggered when the distance between the
detection units 109 and said gate axle 202 is less than a given value, say from 2
to 5mm inclusive. This information is transferred on signal lines 111 to the operator
or to a microprocessor which automatically allows the next coupling sequence to take
place.
[0045] As earlier mentioned, the next coupling sequence is to turn the implement attachment
means 100 and the implement relative to one another from the position shown in Fig.
2 to the position shown n Fig. 3.
[0046] An indication that the position shown in Fig. 3 has been reached is achieved with
the aid of a given number of sensor units 210 disposed on the front gate axle in given
angular positions around the periphery of said axle (see Fig. 6). In the illustrated
example these are located "in the nine o'clock" position, i.e. on the inside of the
gate axle on a level with its centre line. When the position shown in Fig. 6 has been
reached, the detection units 110 on the implement attachment means will be located
in a rotary direction opposite the sensor unit 210 on the gate axle 202 and therewith
forward this information to the operator or to a microprocessor on signal lines 112.
[0047] At this stage the system is ready to lock the implement firmly to the implement attachment
means, which is effected in the manner described with reference to Figs 1 - 3. The
hydraulic cylinders 113 shown in Fig. 5 are therewith activated, causing the cylinders
to move an H-shaped yoke 107 upwards to the left in Fig. 5. The yoke 107 carries the
lock bolts 105 and the coupling ramp 114 of the implement attachment means, which
accompany the yoke as it moves. When this locking movement has terminated, the bolts
105 will protrude through openings 106 on the implement attachment means (see Fig.
4), said bolts straddling the second gate axle 203 of the implement together with
the L-profile 103, so as to firmly lock the implement. At the same time, the coupling
units on the coupling ramp 114 of the implement attachment means have been coupled
together with the coupling units on the coupling ramp 204 of the implement (see Fig.
6). The system includes guides 108 for guiding movement of the yoke 107.
[0048] A detection unit 115 is provided on the yoke 107, to indicate when this position
has been reached. A sensor unit 116 is provided on a non-movable part of the implement
attachment means in a position such that it will be located opposite the yoke-carried
detection unit 115 when the correct position has been reached. Information to this
effect, i.e. that locking has been completed, is then forwarded to the operator or
to a microprocessor. In the case when the coupling ramps are mutually coupled at the
same time as locking is achieved, as in the case of the illustrated example, this
signal also constitutes information to the effect that said ramp coupling has been
achieved. Otherwise, a separate pair of sensor - detection units can be provided to
this end.
[0049] Should the aforedescribed sensor - detection units in either capturing position,
locking position or locked position fail to forward information to the effect that
respective positions have been reached, the operator is able to stop the coupling
process and take necessary measures.
[0050] Further sensor units 217 that function to identify the implement may be provided
at a suitable location, for instance on the implement coupling ramp, and that also
co-act with corresponding detection units 117 on the implement attachment means. These
units may also be adapted to provide information concerning parameters related to
the hydraulic and/or the electrical power transmission.
[0051] The sensor and detection units included in the system may be based on appropriate
conventional technology and include contact-based magnetic, optical, electrical units
or units that function in some other way.
[0052] Figure 7 illustrates an example of how the information generated by the sensor and
detection units can be utilised. As earlier described, sensor units 202, 210, 217,
115 on the implement 100 and on the implement attachment means 200 co-act with respective
detection units 109, 110, 117, 116 on the implement attachment means. The information
thus obtained is transferred via a signal line bundle 120 to a microprocessor 121
that includes a program 122 for processing said information.
[0053] The processed information is sent from the microprocessor to a terminal 124 in the
driving cabin Of the machine via the signal line 123. The terminal 124 includes a
display 125 for presentation of the information concerned to the operator. Also included
are a number of control buttons 126 for executing control measures initiated by the
operator. These signals are transmitted from the terminal to the microprocessor 121
via a signal line 127.
[0054] The microprocessor is connected by a signal line 128 to a control unit 129 which
initiates control measures on the basis of the information processed in the microprocessor
121 and/or on the basis of measures commanded from the terminal 124. The control unit
is designed to select the correct hydraulic function, pressure and fluid flow rate
for respective implements and to control locking process functions, among other things.
[0055] The system described in Fig. 7 may, of course, be expanded with further input and
output functions and therewith made more sophisticated. Conversely, it may, of course,
be made simpler than described. The signal lines in the system may, of course, be
replaced with wireless signal transmission means.
1. A system comprising an implement attachment means (100) adapted to be fitted to a
working machine, and further comprising at least one working implement (200), wherein
the implement attachment means (100) includes first locking means (105) and first
drive coupling means, wherein the implement (200) includes second locking means (203)
and second drive coupling means and wherein the first and second locking means (203)
are adapted for mutual co-action in releasably locking the implement (200) to the
implement attachment means (100) and the first and second drive coupling means are
adapted for mutual co-action in releasably connecting said drive coupling means one
to the other, which system further comprises sensor means (115, 202, 210, 217) and
detection means (109, 110, 116, 117) adapted for the transfer of information from
the sensor means to the detection means, wherein the sensor means (115, 202, 210,
217) include at least one sensor unit mounted on either the implement attachment means
or the working implement, and wherein the detection means (109, 110, 116, 117) include
at least one detection unit mounted on the other of said implement attachment means
or working implement, whereby at least one sensor unit (115) and at least one detection
unit (116) is adapted to send information to the effect that the first (105) and the
second (203) locking means are in locking engagement with one another, characterised in that at least one sensor unit (217) on the implement (200) and at least one detection
unit (117) on the implement attachment means (100) is adapted to send implement identifying
information.
2. A system according to Claim 1, characterised in that at least one sensor unit (202, 210, 217) is mounted on the implement and at least
one detection unit (109, 110, 116, 117) is mounted on the implement attachment means
(100).
3. A system according to Claim 1 or 2, characterised in that at least one sensor unit (202) and at least one detection unit (109) is adapted to
send information to the effect that the implement attachment means (100) and the implement
(102) are positioned relative to one another in a predetermined positioning area.
4. A system according to Claim 3, characterised in that the implement attachment means (100) includes capturing means (104) and the implement
(200) includes gripping means (202) adapted for co-action with the capturing means;
in that either the capturing means (104) or the gripping means (202) include a first sensor
unit (202) which is adapted to send information to a first detection unit (109) when
the capturing means (104) is in engagement with the gripping means (202); and in that a second sensor unit (210) is disposed in a determined angular position on the periphery
of either the capturing means or the gripping means (202) and functions to send information
to a second detection unit (110) when the implement attachment means (100) and the
implement (200) occupy a predetermined position of rotation relative to one another
about a pivot axle defined by the capturing means or the gripping means.
5. A system according to Claim 4, characterised in that the capturing means (104) includes at least one claw-like element (104) and the gripping
means (202) includes at least one rod element (202) or vice versa, wherein said pivot
axle is defined by the rod element (202).
6. A system according to Claim 5, characterised in that said second sensor unit (210) is disposed on the rod element (202).
7. A system according to any one of claims 1 - 6, characterised in that at least one sensor unit (115) and at least one detection unit (116) is adapted to
send information to the effect that the first and second drive coupling means are
coupled together.
8. A system according to any one of claims 1 - 7, characterised in that at least one sensor unit (115) and at least one detection unit (116) is adapted to
send information relating to implement working conditions.
9. A system according to any one of claims 1 - 8, characterised in that the system includes control means for governing the measures or steps involved in
coupling together the implement attachment means (100) and the implement (200) in
response to said information, and/or for governing the measures or steps involved
in manoeuvring the implement.
10. A system according to any one of claims 1 - 9, characterised by a microprocessor (121) which is adapted to receive and process received information
and to deliver control signals when applicable.
11. A working machine equipped with the system according to any of claims 1-10.
12. The use of a system according to any one of claims 1 - 11 for connecting a working
implement to an implement attachment means.
1. System umfassend ein Anbaugerätebefestigungsmittel (100), das ausgelegt ist, an einer
Arbeitsmaschine angebracht zu sein, und ferner umfassend mindestens ein Anbaugerät
(200), wobei das Anbaugerätebefestigungsmittel (100) erste Arretierungsmittel (105)
und erste Antriebskupplungsmittel umfasst, wobei das Anbaugerät (200) zweite Arretierungsmittel
(203) und zweite Antriebskupplungsmittel umfasst und wobei die ersten und zweiten
Arretierungsmittel (203) für ein gegenseitiges Zusammenwirken bei einem lösbaren Arretieren
des Anbaugeräts (200) an dem Anbaugerätebefestigungsmittel (100) ausgelegt sind, und
die ersten und zweiten Antriebskupplungsmittel für ein gegenseitiges Zusammenwirken
bei einem lösbaren Verbinden der Antriebskupplungsmittel aneinander ausgelegt sind,
wobei das System ferner Sensormittel (115, 202, 210, 217) und Detektionsmittel (109,
110, 116, 117) umfasst, die für das Übertragen von Informationen von den Sensormitteln
zu den Detektionsmitteln ausgelegt sind, wobei die Sensormittel (115, 202, 210, 217)
mindestens eine Sensoreinheit umfassen, die entweder an dem Anbaugerätebefestigungsmittel
oder dem Anbaugerät montiert sind, und wobei die Detektionsmittel (109, 110, 116,
117) mindestens eine Detektionseinheit umfassen, die an dem anderen des Anbaugerätebefestigungsmittels
oder des Anbaugeräts montiert sind, wobei mindestens eine Sensoreinheit (115) und
mindestens eine Detektionseinheit (116) ausgelegt ist, Informationen zu dem Zweck
zu senden, dass die ersten (105) und die zweiten (203) Arretierungsmittel in Arretierungseingriff
miteinander sind, dadurch gekennzeichnet, dass mindestens eine Sensoreinheit (217) an dem Anbaugerät (200) und mindestens eine Detektionseinheit
(117) an dem Anbaugerätebefestigungsmittel (100) ausgelegt ist, Anbaugerätidentifizierungsinformationen
zu senden.
2. System nach Anspruch 1, dadurch gekennzeichnet, dass mindestens eine Sensoreinheit (202, 210, 217) an dem Anbaugerät montiert ist und
mindestens eine Detektionseinheit (109, 110, 116, 117) an dem Anbaugerätebefestigungsmittel
(100) montiert ist.
3. System nach Anspruch 1 oder 2, dadurch gekennzeichnet, dass mindestens eine Sensoreinheit (202) und mindestens eine Detektionseinheit (109) ausgelegt
ist, Informationen zu dem Zweck zu senden, dass das Anbaugerätebefestigungsmittel
(100) und das Anbaugerät (102) in einem vorbestimmten Positionierungsbereich relativ
zueinander positioniert sind.
4. System nach Anspruch 3, dadurch gekennzeichnet, dass das Anbaugerätebefestigungsmittel (100) ein Erfassungsmittel (104) umfasst und das
Anbaugerät (200) ein Greifmittel (202) umfasst, das für ein Zusammenwirken mit dem
Erfassungsmittel ausgelegt ist; dass entweder das Erfassungsmittel (104) oder das
Greifmittel (202) eine erste Sensoreinheit (202) umfasst, die ausgelegt ist, Informationen
an eine erste Detektionseinheit (109) zu senden, wenn das Erfassungsmittel (104) in
Eingriff mit dem Greifmittel (202) ist; und dass eine zweite Sensoreinheit (210) in
einer bestimmten Winkelstellung am Umfang entweder des Erfassungsmittels oder des
Greifmittels (202) angeordnet ist und dazu dient, Informationen an eine zweite Detektionseinheit
(110) zu senden, wenn das Anbaugerätebefestigungsmittel (100) und das Anbaugerät (200)
eine vorbestimmte Drehstellung relativ zueinander um eine Drehachse einnehmen, die
durch das Erfassungsmittel oder das Greifmittel definiert ist.
5. System nach Anspruch 4, dadurch gekennzeichnet, dass das Erfassungsmittel (104) mindestens ein klauenähnliches Element (104) umfasst und
das Greifmittel (202) mindestens ein Stabelement (202) umfasst oder umkehrt, wobei
die Drehachse durch das Stabelement (202) definiert ist.
6. System nach Anspruch 5, dadurch gekennzeichnet, dass die zweite Sensoreinheit (210) an dem Stabelement (202) angeordnet ist.
7. System nach einem der Ansprüche 1-6, dadurch gekennzeichnet, dass mindestens eine Sensoreinheit (115) und mindestens eine Detektionseinheit (116) ausgelegt
ist, Informationen zu dem Zweck zu senden, dass die ersten und zweiten Antriebskupplungsmittel
miteinander gekoppelt sind.
8. System nach einem der Ansprüche 1-7, dadurch gekennzeichnet, dass mindestens eine Sensoreinheit (115) und mindestens eine Detektionseinheit (116) ausgelegt
ist, Informationen in Bezug auf Anbaugerätarbeitsbedingungen zu senden.
9. System nach einem der Ansprüche 1-8, dadurch gekennzeichnet, dass das System Steuermittel zum Steuern der Maßnahmen oder Schritte, die beim miteinander
Koppeln der Anbaugerätebefestigungsmittel (100) und des Anbaugeräts (200) involviert
sind, in Reaktion auf die Informationen und/oder zum Steuern der Maßnahmen oder Schritte,
die beim Manövrieren des Anbaugeräts involviert sind, umfasst.
10. System nach einem der Ansprüche 1-9, gekennzeichnet durch einen Mikroprozessor (121), der ausgelegt ist, empfangene Informationen zu empfangen
und zu verarbeiten und bei Bedarf Steuersignale zu liefern.
11. Arbeitsmaschine, die mit dem System nach einem der Ansprüche 1-10 ausgestattet ist.
12. Verwendung eines Systems nach einem der Ansprüche 1-11 zum Verbinden eines Anbaugeräts
mit einem Anbaugerätebefestigungsmittel.
1. Système comprenant un moyen de fixation d'outil (100) conçu pour être fixé à une machine
de travail et comprenant en outre au moins un outil de travail (200), dans lequel
le moyen de fixation d'outil (100) comprend un premier moyen de verrouillage (105)
et un premier moyen d'accouplement de transmission, dans lequel l'outil (200) comprend
un second moyen de verrouillage (203) et un second moyen d'accouplement de transmission
et dans lequel les premier et second moyens de verrouillage (203) sont conçus pour
une coaction mutuelle lors d'un verrouillage libérable de l'outil (200) au moyen de
fixation d'outil (100) et les premier et second moyens d'accouplement de transmission
sont conçus pour une coaction mutuelle lors d'un raccordement libérable desdits moyens
d'accouplement de transmission l'un à l'autre, lequel système comprend en outre des
moyens de capteur (115, 202, 210, 217) et des moyens de détection (109, 110, 116,
117) conçus pour le transfert d'informations des moyens de capteur aux moyens de détection,
dans lequel les moyens de capteur (115, 202, 210, 217) comprennent au moins une unité
de capteur montée soit sur le moyen de fixation d'outil, soit sur l'outil de travail
et dans lequel les moyens de détection (109, 110, 116, 117) comprennent au moins une
unité de détection montée sur l'autre desdits moyen de fixation d'outil ou outil de
travail, grâce à quoi au moins une unité de capteur (115) et au moins une unité de
détection (116) sont conçues pour envoyer des informations voulant que le premier
(105) et le second (203) moyen de verrouillage soient en prise par verrouillage l'un
avec l'autre, caractérisé en ce qu'au moins une unité de capteur (217) sur l'outil (200) et au moins une unité de détection
(117) sur le moyen de fixation d'outil (100) sont conçues pour envoyer des informations
d'identification d'outil.
2. Système selon la revendication 1, caractérisé en ce qu'au moins une unité de capteur (202, 210, 217) est montée sur l'outil et qu'au moins
une unité de détection (109, 110, 116, 117) est montée sur le moyen de fixation d'outil
(100).
3. Système selon la revendication 1 ou 2, caractérisé en ce qu'au moins une unité de capteur (202) et au moins une unité de détection (109) soient
conçues pour envoyer des informations voulant que le moyen de fixation d'outil (100)
et l'outil (102) sont positionnés l'un par rapport à l'autre dans une zone de positionnement
prédéterminée.
4. Système selon la revendication 3, caractérisé en ce que le moyen de fixation d'outil (100) comprend un moyen de capture (104) et l'outil
(200) comprend un moyen de préhension (202) conçu pour une coaction avec le moyen
de capture ; en ce que soit le moyen de capture (104), soit le moyen de préhension (202) comprend une première
unité de capteur (202) qui est conçue pour envoyer des informations à une première
unité de détection (109) lorsque le moyen de capture (104) est en prise avec le moyen
de préhension (202) ; et en ce qu'une seconde unité de capteur (210) est disposée dans une position angulaire déterminée
sur la périphérie soit du moyen de capture, soit du moyen de préhension (202) et a
pour fonction d'envoyer des informations à une seconde unité de détection (110) lorsque
le moyen de fixation d'outil (100) et l'outil (200) occupent une position de rotation
prédéterminée l'un par rapport à l'autre autour d'un axe de pivot défini par le moyen
de capture ou le moyen de préhension.
5. Système selon la revendication 4, caractérisé en ce que le moyen de capture (104) comprend au moins un élément semblable à une griffe (104)
et le moyen de préhension (202) comprend au moins un élément de tige (202) ou vice
versa, dans lequel ledit axe de pivot est défini par l'élément de tige (202) .
6. Système selon la revendication 5, caractérisé en ce que ladite seconde unité de capteur (210) est disposée sur l'élément de tige (202).
7. Système selon l'une quelconque des revendications 1 à 6, caractérisé en ce qu'au moins une unité de capteur (115) et au moins une unité de détection (116) sont
conçues pour envoyer des informations voulant que les premier et second moyen d'accouplement
de transmission soient couplés ensemble.
8. Système selon l'une quelconque des revendications 1 à 7, caractérisé en ce qu'au moins une unité de capteur (115) et au moins une unité de détection (116) sont
conçues pour envoyer des informations se rapportant à des conditions de travail d'outil.
9. Système selon l'une quelconque des revendications 1 à 8, caractérisé en ce que le système comprend des moyens de commande pour déterminer les mesures ou étapes
impliquées lors du couplage l'un à l'autre du moyen de fixation d'outil (100) et de
l'outil (200) en réponse auxdites informations et/ou pour déterminer les mesures ou
étapes impliquées dans la manoeuvre de l'outil.
10. Système selon l'une quelconque des revendications 1 à 9, caractérisé par un microprocesseur (121) qui est conçu pour recevoir et traiter des informations
reçues et pour émettre des signaux de commande lorsqu'ils sont applicables.
11. Machine de travail équipée du système selon l'une quelconque des revendications 1
à 10.
12. Utilisation d'un système selon l'une quelconque des revendications 1 à 11 pour raccorder
un outil de travail à un moyen de fixation d'outil.