Field of the Invention
[0001] The present invention relates to a linkage mechanism of a work implement that is
available in a loading vehicle such as a shovel-loader or the like, and more particularly
to a linkage mechanism of a work implement in which improvements are made in an attitude
of a bucket connected in a forwardly and backwardly tiltable manner to a tip end of
a lift arm whose base end is pivotably supported from a vehicle body and which can
rotate up and down about the aforementioned pivotable support point.
Background of the Invention
[0002] In Fig. 1 is shown a side view of a work implement in a heretofore known shovel-loader.
In this figure, a lift arm d pivotably supported at a pivotal support section i of
the lift arm on the side of a vehicle body a in an upwardly and downwardly rotatable
manner, rotates upwards when a lift cylinder e extends, and a bucket c pivotably supported
in a forwardly and backwardly tiltable manner at a bucket pivotable support section
i at the tip end of the lift arm d, is tilted backwardly via a bellcrank f and a tilt
rod h when a tilt cylinder is extended. Reference character'b designates a tire. The
state of the backet shown at c in this figure is a state upon excavation of earth
and sand, and a bucket bottom surface k is nearly parallel to a ground surface GL
(horizontal). And, a vehible body connecting pivotable support section of the tilt
cylinder g is designated by reference character ℓ, a connecting pivotable support
section on the side of the bellcrank f by character m, a connecting pivotable support
section to the lift arm d of the bellcrank f by character n, a connecting pivotable
support section between the bellcrank f and the tilt rod h by character p, a connecting
pivotable support section between the tilt rod h and the bucket c by character g,
a connecting pivotable support section on the side of the vehicle body of the lift
cylinder e by character r, and a connecting pivotable support section on the side
of the lift and d thereof by character s.
[0003] Thus, after excavation has been finished, a loading work starts, and when the lift
cylinder e and the tilt cylinder g are extended in a desired manner, the bucket becomes
the state shown at c
1. If the centers of the above-described respective pivotable support sections when
the bucket has moved from c to c
1 are represented by movements of reference characters for simplicity of explanation,
they are indicated by s → s
1, i →i
1 , m → m
1, n → n
1, p → p
1, g → g
1 and k → k
1.
[0004] Then, if the lift and d is further rotated upwards by operating the lift cylinder
e and the bucket pivotable support section j is raised up to the highest position
j
2, the bucket comes to a position c2, and the respective pivotable support sections
would come respectively to the positions designated by the same characters but having
a suffix 2 (for instance, m → m
2). Under this condition, if the tilt cylinder g is contracted in order to forwardly
tilt the bucket, the respective pivotable support sections would come respectively
to the positions designated by the same characters but having a suffix 3 (for instance,
m
2 → m
3, but the positions of the sections n
2, s
2 and j
2 would not change), and the bucket takes the state shown at c
3.
[0005] This linkage mechanism in the prior art shown in Fig. 1 is a linkage generally called
"Z-bar linkage", in which when the bucket takes the state shown at c in Fig. 1, if
the tilt cylinder g is extended, the bucket bottom surface k would rotate in the direction
shown by an arrow K, and at this time a hydraulic pressure in the bottom side pressure
receiving chamber gb of the tilt cylinder g acts, and therefore, this linkage is that
generally used in a loading vehicle which necessitates a large excavation force.
[0006] Though this linkage is designed so as to maintain a backwardly tilted state (designed
for reducing tilt angle variations under a tilted state) so that loaded articles may
not spill out even if the lift arm is rotated up and donw with the bucket held backwardly
tilted (the state shown at c
1 in Fig. 1) because it is mainly used for loading of earth and sand, it does not have
a structure for eliminating tilt angle variations under a horizontal state of the
bucket.
[0007] More particularly, one example of the operation when the bucket is held in parallel
to the ground surface (held horizontal) as shown at c in Fig. 1 and the lift arm d
is rotated upwards with the length of the tilt cylinder g at that time (the distance
between t and m in that figure) maintained, is shown by a dash-line R in Fig. 4, in
which at a certain instance at tilt angle 0 with respect to the ground of the bucket
bottom surface k changes by about 20°.
[0008] Consequently, in order to maintain a horizontal state of the bucket, upon rotating
the lift arm the operation of extending and/or contracting the tilt cylinder is necessitated,
and thus there was a disadvantage that the operation is troublesome and also a maneuverability
was poor.
Summary of the Invention
[0009] The present invention has been worked out in view of the above-described circumstance
of the art, and one object of the invention is to provide a linkage mechanism of a
work implement which preserves the functions of the Z-bar linkage in the prior art,
and yet which can vertically move a bucket while maintaining it at a horizontal state
without operating a tilt cylinder.
[0010] In order to achieve the above-mentioned object, according to one feature of the present
invention, there is provided a linkage mechanism of a work implement in a loading
vehicle such as a shovel-loader or the like, including a lift arm having one end pivotably
supported from a vehicle body and the other end extended forwards and adapted to be
rotated up and down in the vertical direction about the pivotable support point on
one side, a forwardly and backwardly tiltable bucket having a lower portion of its
rear surface pivotably supported from the front end portion of the above-mentioned
lift arm, a bellcrank having its nearly middle portion in the lengthwise direction
pivotably supported from the above-mentioned lift arm, a tilt rod pivotably connected
between the lower side end portion of the aforementioned bellcrank and an upper portion
of the rear surface of the above-mentioned bucket, and a tilt cylinder pivotably connected
between the aforementioned vehicle body and the other end portion of the above-mehtioned
bellcrank to be operated for tilting the above-mentioned bucket; characterized in
that in the case where the distance from the pivotable support point between the aforementioned
bucket and the above-described lift arm to the pivotable support point between the
aforementioned lift arm and the above-described bellcrank is represented by X, and
the distance from the pivotable support point between the aforementioned lift arm
and the above-mentioned bellcrank to the pivotable support point between the aforementioned
lift arm and the above-described vehicle body is represented by Y, a ratio between
these distances X and Y is set at a (Y/X = a), and that a triangle formed by connecting
the pivotable support point of the aforementioned lift arm from the vehicle body,
the pivotable support point of the aforementioned bellcrank from the lift arm and
the pivotable support point of the aforementioned tilt cylinder from the bellcrank
and a triangle formed by connecting the pivotable support point of the aforementioned
bellcrank from the lift arm, the pivotable support point of the aforementioned lift
from the bucket and the pivotable support point of the aforementioned tilt rod from
the bellcrank, as well as a triangle formed by connecting the pivotable support point
of the aforementioned lift arm from the vehicle body, the pivotable support point
of the aforementioned tilt cylinder from the bellcrank and the pivotable support point
of the aforementioned tilt cylinder from the vehicle body, and a triangle formed by
connecting the pivotable support point of the aforementioned lift arm from the vehicle
body, the pivotable support point of the aforementioned tilt rod from the bellcrank
and the pivotable support point of the aforementioned tilt rod from the bucket, are
respectively in a mutually similar figure relation.
[0011] The advantages of the present invention as featured above are as follows.
[0012] That is, since upon rotation of the lift arm, vertical movement at a horizontal attitude
of the bucket becomes possible without extension nor contraction of the tilt cylinder
while preserving the characteristic of the Z-bar linkage such that a hydraulic pressure
in a bottom side pressure receiving chamber of a tilt cylinder is utilized upon excavation
and that shock upon removal of earth with the boom held at a high position can be
reduced, improvements in a versatility and a maneuvability can be realized.
[0013] The above-mentioned and other objects, features and advantages of the present invention
will become apparent for those skilled in the art from the following description in
which a preferred embodiment conformable to a principle of the present invention is
disclosed as a practical example and the explanation taken in conjunction with the
accompanying drawings.
Brief Description of the Drawings
[0014]
Fig. 1 is a schematic side view for explaining operations relating to a work implement
in a shovel-loader in the prior art;
Fig. 2 is a schematic side view showing one preferred embodiment of the present invention;
Fig. 3 is a diagrammatic view for explaining operations of the preferred embodiment
illustrated in Fig. 2;
Fig. 4 is a diagram comparatively showing bucket tilt angle with respect to the ground
in the preferred embodiment of the present invention and in the example of the prior
art.
Detailed Description of the Preferred Embodiment
[0015] In the following, one preferred embodiment of the present invention will be explained
with reference to Figs. 2 to 4 in the accompanying drawings.
[0016] Fig. 2 shows a side view of a work implement in a shovel-loader according to the
present invention. In this figure, a lift arm 1 pivotably supported at a lift arm
pivotable support portion 0 on the vehicle body side (in the following explanation
and in Figs. 3 and 4, for the purpose of simplicity, for a pivotable support portion
and for its center is used a same reference symbol like in Fig. 2) in a vertically
rotatable manner, would rotate upwards when a lift cylinder 2 extends, and a bucket
3 pivotably supported at a bucket pivotably support portion A at the tip end of the
lift arm 1 in a forwardly and backwardly tiltable manner would be tilted backwards
via a bellcrank 5 and a tilt rod 6 when a tilt cylinder 4 extends.
[0017] Reference numeral 7 designates a tire. Under the state of the bucket 3 shown by solid
lines in Fig. 2, a bucket bottom surface 8 is parallel to the ground surface GL (horizontal).
And a vertical body side connecting pivotable support portion of the tilt cylinder
4 is represented by reference character F, a bellcrank side connecting pivotable support
portion thereof is represented by reference character E, a connecting pivotable support
portion of the bellcrank 5 to the lift arm 1 is repre- setned by reference character
B, a connecting pivotable support portion between the bellcrank 5 and the tilt rod
6 is represented by reference character C, and a connecting pivotable support portion
between the tilt rod 6 and the bucket 3 is represented by reference character D.
[0018] In addition, in the case where the distance from a pivotable coupling portion A between
the lift arm 1 and the bucket 3 to a pivotable coupling portion B between the lift
arm 1 and the bellcrank 5 is represented by reference character X and the distance
from the pivotable coupling portion B between the lift arm 1 and the bellcrank 5 to
a pivotable coupling portion O between a vehicle body 9 and the lift arm 1 is represented
by reference character Y, the ratio between these distances X and Y is set to be equal
to α (Y/X = α), and so that the triangles formed on the side of the vehicle body 9
and on the side of the bucket 3 with respect to the pivotable coupling portion B between
the bellcrank 5 and the lift arm 1 may become similar figures to each other, the following
relations are established:
ΔABC

ΔOBE (similar figure ratio a)
ΔADC

ΔOFE (similar figure ratio a)
[0019] Next, explaining the operation, assuming now that the bucket 3 is placed with the
bucket bottom surface 8 put on the ground surface GL as shown by solid lines in Fig.
2, then even if the lift arm 1 is rotated upwards without operating the tilt cylinder
4, the relations of ΔABC cn AOBE and ΔADC

ΔOFE would be always established.
[0020] Accordingly, the bucket 3 would rotate while holding the above-mentioned attitude
with respect to the line of the ground surface GL, and the bucket would be always
held horizontal.
[0021] Now this will be proved with reference to Fig. 3.
[0022] Under the condition where the bucket is disposed and held in parallel to the ground
surface (horizontal),
ΔA1B1C1

ΔOB1E1 (similar figure ratio a)
ΔA1D1C1

ΔOFE1 (similar figure ratio a).
[0023] Now, imagining the case where the lift arm has been rotated upwards (without operating
the tilt cylinder), then the relations of:

are always valid. Therefore,

Hence,

On the other hand,

and

are always valid.



[0024] ⑥ and ⑦ show that at any arbitrary lift arm position, two similar quadrilaterals
are jointed at a point B with a constant angle β formed therebetween.
[0025] Accordingly, a relative angle between a pair of corresponding edges of the two similar
quadrilaterals, for instance,

is always constant (B) without depending upon the position of the lift arm.
[0026] OF is a segment fixed to the vehicle.
[0027] Therefore, AD has a constant angle with respect to the vehicle without depending
upon a rotary angle of the lift arm. Accordingly, the bucket keeps its horizontal
attitude even if the position of the lift arm changes.
[0028] Also, a bucket tilt angle 6 with respect to the ground of the bucket bottom surface
11 when the lift arm 4 is rotated up and down in this preferred embodiment, is shown
by a straight line L in Fig. 4. As will be obvious from this figure, while the angle
in the linkage mechanism in the prior art changes by about 20° at the maximum as shown
by a curve R, it is seen that in the linkage mechanism according to the present invention,
a perfectly horizontal operation is effected as shown by the straight line L.
(1) A linkage mechanism of a work inplement in a loading vehicle such as a shovel-loader
or the like, including a lift arm having one end pivotably supported from a vehicle
body and the other end extended forwards and adapted to be rotated up and down in
the vertical direction about the pivotable support point on one side, a forwardly
and backwardly tiltable bucket having a lower portion of its rear surface pivotably
supported from the front end portion of said lift arm, a bellcrank having its nearly
middle portion in the lengthwise direction pivotably supported from said lift arm,
a tilt arm pivotably connected between the lower side end portion of said bellcrank
and an upper portion of the rear surface of said bucket, and a tilt cylinder pivotably
connected between said vehicle body and the other end portion of said bellcrank to
be operated for tilting said bucket; characterized in that in the case where the distance
from the pivotable support point between said bucket and said lift arm to the pivotable
support point between said lift arm and said bellcrank is represented by X, and the
distance from the pivotable support point between said lift arm and said bellcrank
to the pivotable support point between said lift arm and said vehicle body is represented
by Y, a ratio between these distances X and Y is set at a (Y/X = a), and that a first
triangle formed by connecting the pivotable support of said lift arm from the vehicle
body, the pivotable support point of said bellcrank from the lift arm and the pivotable
support point of said tilt cylinder from the bellcrank and a second triangle formed
by connecting the pivotable support point of said lift arm from the bucket and the
pivotable support point of said tilt rod from the bell crank, as well as a third triangle
formed by connecting the pivotable support point of said lift arm from the vehicle
body, the pivotable support point of said tilt cylinder form the bellcrank and the
pivotable support point of said tilt cylinder from the vehicle body, and a fourth
triangle formed by connecting the pivotable support point of said lift arm from the
vehicle body, the pivotable support point of said tilt rod from the bellcrank and
the pivotable support point of said tilt rod from the bucket, are respectively in
a mutually similar figure relation.
(2) A linkage mechanism of a work implement as claimed in claim (1), characterized
in that the similar figure ratios of the respective pairs of said fixed and second
triangles and said third and fourth triangles are a.