BACKGROUND OF THE INVENTION
Field of the Invention
[0001] The present invention relates to an adjustable socket structure that is capable of
simplifying related components and assembling process.
Description of the Prior Art
[0002] A conventional adjustable socket structure disclosed in
US Pat. No. 6,622,598 contains a sleeve head, a sleeve body, and a set of pawls. The sleeve head is coupled
on the bottom with the sleeve body, and both of them can rotate freely. The sleeve
body has multiple slide rails distributed on its inner wall evenly the pawls slide
in these slide rails, and the shafts on the top of these pawls extrude to the space
designed between the sleeve head and the sleeve body. Connected to the shafts are
corresponding connecting rods, which have corresponding pins fixed onto the sleeve
head. When the sleeve head rotates, it drives the pawls through the connecting rods
to open/close simultaneously. In this way, when the operator turns the sleeve barrel
clockwise/anti-clockwise, the pawls will screw a nut down/up together, which is convenient
and practical.
[0003] However, such a conventional socket structure is not strong enough to rotate a screwing
element with a large torque.
[0004] Likewise, the conventional socket structure is complicated without being assembled
easily.
[0005] In addition, when operating the conventional socket, a noise makes because the retaining
ring 30 and a shoulder 210 crashes easily.
[0006] The present invention has arisen to mitigate and/or obviate the afore-described disadvantages.
SUMMARY OF THE INVENTION
[0007] The primary object of the present invention is to provide an adjustable socket structure
that is capable of simplifying related components and assembling process.
[0008] Further object of the present invention is to provide an adjustable socket structure
in which the disk portion is prevented from crashing other components to achieve a
noise proof purpose.
[0009] Another Further object of the present invention is to provide an adjustable socket
structure that is capable of obtaining a strong structure
[0010] An adjustable socket structure provided by the present invention contains:
a body including a first groove disposed on a rear surface thereof, a second groove
with a smaller diameter fixed on a bottom end of the first groove, a first notch formed
on the first groove, a number of slots radially arranged on a front end of the body
and communicating with the second groove;
a plurality of paws, each including a sliding block to be movably retained in the
slot, and the sliding block including a first hole formed on a rear side thereof;
a number of connecting rods, each being movably fixed in the second groove and including
a first axial shank disposed on one side thereof to be rotably inserted in the first
hole and a second axial shank fixed on another side thereof;
a driving shaft including an axial portion and a disk portion located at a front end
of the axial portion, wherein the axial portion includes a square bore, and the disk
portion is rotated in the first groove and includes an outer diameter which is larger
that the axial portion and three second holes to insert the second axial shanks of
the connecting rods so that the driving shaft is rotated to actuate the paws to move
in the slots respectively by using the connecting rods;
a retaining ring being helical and retained in the first notch to abut against a rear
end of the disk portion of the driving shaft.
BRIEF DESCRIPTION OF THE DRAWINGS
[0011]
Fig. 1 is a perspective view showing the exploded components of an adjustable socket
structure in accordance with a preferred embodiment of the present invention;
Fig. 2 is another perspective view showing the exploded components of then adjustable
socket structure in accordance with the preferred embodiment of the present invention;
Fig. 3 is a perspective view showing the assembly of the adjustable socket structure
in accordance with the preferred embodiment of the present invention;
Fig. 4 is a front side plan view showing the assembly of the adjustable socket structure
in accordance with the preferred embodiment of the present invention;
Fig. 5 is a cross sectional view taken along the line A-A of Fig. 4;
Fig. 6 is a plan view showing the operation of the adjustable socket structure in
accordance with the preferred embodiment of the present invention;
Fig. 7 is another plan view showing the operation of the adjustable socket structure
in accordance with the preferred embodiment of the present invention;
Fig. 8 is also another plan view showing the operation of the adjustable socket structure
in accordance with the preferred embodiment of the present invention;
Fig. 9 is another plan view showing the operation of the adjustable socket structure
in accordance with the preferred embodiment of the present invention.
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0012] The present invention will be clearer from the following description when viewed
together with the accompanying drawings, which show, for purpose of illustrations
only, the preferred embodiment in accordance with the present invention.
[0013] As shown in Fig. 1-5, an adjustable socket structure according to a preferred embodiment
of the present invention comprises a body 10, three paws 20, three connecting rods
30, a driving shaft 40, and a retaining ring 50.
[0014] The body 10 is formed in a cylinder shape and includes a first groove 11 disposed
on a rear surface thereof, a second groove 12 with a smaller diameter fixed on a bottom
end of the first groove 11, and a first notch 13 formed on the first groove 11. The
body 10 includes three slots 14 radially arranged on a front end of the body 10 and
communicating with the second groove 12, each slot 14 includes two recesses 15 secured
on two walls thereof respectively and two ribs 16 fixed on two front ends of the recesses
15 individually.
[0015] Each paw 20 includes a sliding block 21 to be movably retained in the slot 14, and
the sliding block 21 includes two second notches 22 secured on two sides thereof respectively
to retain the two ribs 16, a first hole 23 formed on a rear side thereof, a V-shaped
locking face 24 to retain with a screwing element 60, and the screwing element 60
is a nut or a screw bolt; the paw 20 also includes an arcuate cutout 25 formed on
a bottom end of the locking face 24, and a plurality of teeth 26 arranged on the locking
face 24 to engage with various screwing elements 60 as illustrated in Fig. 9.
[0016] Each connecting rod 30 is movably fixed in the second groove 12 and includes a first
axial shank 31 disposed on one side thereof to be rotably inserted in the first hole
23 and a second axial shank 32 fixed on another side thereof.
[0017] The driving shaft 40 includes an axial portion 41 and a disk portion 42 located at
a front end of the axial portion 41, wherein the axial portion 41 is formed in a polygonal
column shape (such as a hexagon column) to fit with a wrench and includes a square
bore 43 to retain a wrench or a coupling extension. The disk portion 42 is circular
to be rotated in the first groove 11 and includes an outer diameter which is larger
that the axial portion 41, three second hole 44 used to insert the second axial shanks
32 of the three connecting rods 30 so that the driving shaft 40 is rotated to actuate
the three paws 20 to move in the slots 14 respectively by using the three connecting
rods 30, thus engaging or disengaging the screwing element 60 as shown in Figs. 7
and 9.
[0018] The retaining ring 50 is helical and retained in the first notch 13 to abut against
a rear end of the disk portion 42 of the driving shaft 40 so that the disk portion
42 is limited in the first groove 11.
[0019] Referring to Figs. 6 and 7, when the three second axial shanks 32 are located at
central positions thereof individually (i.e., when the connecting rods 30 align with
the three slots 14), the three paws 20 expends toward a largest range to be retained
with the screwing element 60.
[0020] As shown in Figs. 5, 8, 9, in operation, the driving shaft 40 is rotated in a clockwise
direction, and the second axial shanks 32 are actuated by the disk portion 42 of the
driving shaft 40 in the clockwise direction so that the connecting rods 30 actuate
the paws 20 to move in the slots 14, hence the retaining faces 24 engage with the
screwing element 60. Thereafter, the wrench is rotated in the clockwise direction
as well to actuate the driving shaft 40, and then the paws 20 retain the screwing
element 60 and actuate the screwing element 60 to rotate in the clockwise direction.
[0021] When the driving shaft 40 is rotated in an anti-clockwise direction, the second axial
shanks 32 move back to the central positions of three slots 14 so that the connecting
rods 30 actuate the paws 20 to expand, thus releasing the screwing element 60. Thereafter,
the driving shaft 40 is rotated to further turn the axial shanks 32 in the anti-clockwise
direction so that the connecting rods 30 actuate the paws 20 to move in the slots
14, hence the locking faces 24 retain the screwing element 60. Thereby, the wrench
is capable of rotating the driving shaft 40 in the anti-clockwise direction, and the
paws 20 retain the screwing element 60 and actuate the screwing element 60 to rotate
in the anti-clockwise direction.
[0022] It is to be noted that inner ends of the slots 14 do not communicate with one another,
therefore sectors formed between the slots 14 communicate with the central positions
of the slots 14 to obtain a strong structure. Besides, the first axial shank 31 and
the second axial shank 32 are connected with the paws 20 and the driving shaft 40
to simplify related components and assembling process.
[0023] Furthermore, the retaining ring 50 is biased against the disk portion 42 of the driving
shaft 40 so that the disk portion 42 axially rotates in the first groove 42 without
axially moving so that the disk portion 42 is prevented from crashing other components
to achieve a noise proof purpose.
[0024] Numbers of the paws 20 and the connecting rods 30 are not limited to three, i.e.,
at least two paws 20 and connecting rods 30 are allowable.
[0025] While we have shown and described various embodiments in accordance with the present
invention, it is clear to those skilled in the art that further embodiments may be
made without departing from the scope of the present invention.
1. An adjustable socket structure comprising:
a body (10) including a first groove (11) disposed on a rear surface thereof, a second
groove (12) with a smaller diameter fixed on a bottom end of the first groove (11),
a first notch (13) formed on the first groove (11), a number of slots (14) radially
arranged on a front end of the body (10) and communicating with the second groove
(12);
a plurality of paws (20), each including a sliding block (21) to be movably retained
in the slot (14), and the sliding block (21) including a first hole (23) formed on
a rear side thereof;
a number of connecting rods (30), each being movably fixed in the second groove (12)
and including a first axial shank (31) disposed on one side thereof to be rotably
inserted in the first hole (23) and a second axial shank (32) fixed on another side
thereof;
a driving shaft (40) including an axial portion (41) and a disk portion (42) located
at a front end of the axial portion (41), wherein the axial portion (41) includes
a square bore (43), and the disk portion (42) is rotated in the first groove (11)
and includes an outer diameter which is larger that the axial portion (41) and three
second holes (44) to insert the second axial shanks (32) of the connecting rods (30)
so that the driving shaft (40) is rotated to actuate the paws (20) to move in the
slots (14) respectively by using the connecting rods (30);
a retaining ring (50) being helical and retained in the first notch (13) to abut against
a rear end of the disk portion (42) of the driving shaft (40).
2. The adjustable socket structure as claimed in claim 1, wherein each slot (14) includes
two recesses (15) secured on two walls thereof respectively and two ribs (16) fixed
on two front ends of the recesses (15) individually, the sliding block (21) includes
two second notches (22) secured on two sides thereof respectively to retain the two
ribs (16).
3. The adjustable socket structure as claimed in claim 1, wherein the axial portion (41)
of the driving shaft (40) is formed in a polygonal column shape to fit with a wrench.
4. The adjustable socket structure as claimed in claim 2, wherein the axial portion (41)
of the driving shaft (40) is formed in a polygonal column shape to fit with a wrench.
5. The adjustable socket structure as claimed in claim 3, wherein each paw (20) includes
a V-shaped locking face (24) to retain with a screwing element.
6. The adjustable socket structure as claimed in claim 4, wherein each paw (20) includes
a V-shaped locking face (24) to retain with a screwing element.
7. The adjustable socket structure as claimed in claim 5, wherein the paw (20) includes
a plurality of teeth (26) arranged on the locking face (24).
8. The adjustable socket structure as claimed in claim 6, wherein the paw (20) includes
a plurality of teeth (26) arranged on the locking face (24).
9. The adjustable socket structure as claimed in claim 7, wherein the paw (20) also includes
an arcuate cutout (25) formed on a bottom end of the locking face (24).
10. The adjustable socket structure as claimed in claim 8, wherein the paw (20) also includes
an arcuate cutout (25) formed on a bottom end of the locking face (24).