drilling rig

The excavator's innovative design allows for easy insertion and removal of the slip ring into the center joint by using a rotating arm base and widened space between the upper arm and center joint, addressing the disassembly challenges and improving operational efficiency.

JP7734937B2Active Publication Date: 2025-09-08キョンウォンテック カンパニーリミテッド +1
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Patent Information

Application Number
JP2024538296
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2022-04-06
Filing Date
2022-12-14
Publication Date
2025-09-08
Estimated Expiration
2042-12-14

AI Technical Summary

Technical Problem

Existing excavators face difficulties in easily inserting a slip ring into the center joint without disassembling the lower arm, rotating arm base, and upper arm, which delays work schedules and deteriorates the working environment due to the need for extensive dismantling of articulated arms and hydraulic lines.

Method used

The excavator design includes a rotating arm base positioned on the lower arm, an upper arm with a guide hole, and a center joint exposed through both, allowing the slip ring to be easily inserted or removed without disassembling these components, with a widened space between the upper arm and center joint to accommodate hydraulic lines.

Benefits of technology

This design facilitates easy insertion and removal of the slip ring, reducing downtime and improving the working environment by minimizing the need for extensive disassembly, thus enhancing operational efficiency.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The drilling device according to the present invention includes a lower arm having a width that gradually increases from one end to the other end and having a fixing hole on an outer circumferential surface from the other end; a rotating arm base located on the other end of the lower arm, formed in a disk shape, and rotatably fixed to the lower arm; an upper arm located on the rotating arm base, fixed to the rotating arm base, and having a guide hole on an outer circumferential surface on the rotating arm base; a center joint surrounded by the lower arm, the rotating arm base, and the upper arm, and exposed to the outside through the fixing hole of the lower arm and the guide hole of the upper arm; and a slip ring that is inserted into the center joint through the guide hole of the upper arm or separated from the center joint.
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Description

[Technical Field]

[0001] The present invention relates to an excavator having a bucket, a lower arm, a rotating arm base, an upper arm, and a boom that are sequentially arranged toward a driver's seat at a work site and rotatably coupled to one another, and a bucket cylinder and an arm cylinder that are positioned around the lower arm and the boom, respectively, and rotatably coupled to the bucket and the upper arm. [Background technology]

[0002] Generally, excavators improve work efficiency by reducing the number of workers required despite an increase in the load and volume of the work object at a construction site, a waste collection site, or a demolition site. For this purpose, the first excavator 160 shown in Fig. 1 is often used to transport wood, stone, and waste concrete at a construction site, a waste collection site, or a demolition site by attaching a bucket 120 and a clamp 140 to articulated arms 10, 20, and 40, and engaging the clamp 140 with the bucket 120 while a bucket cylinder 90 and a clamp cylinder 130 move around the arms 10, 20, and 40.

[0003] 1, the bucket 120 is rotatably fixed to one end of the arm 10, 20, 40 of the first excavator 160, and the other end of the arm 10, 20, 40 is rotatably fixed to a boom (not shown) of the first excavator 160. Therefore, the recessed entrance of the bucket 120 opens toward the operator's seat of the first excavator 160 or opens in a direction away from the operator's seat of the first excavator 160 during relative rotation of the arm 10, 20, 40 with respect to the boom.

[0004] Here, the arms 10, 20, 40 are composed of a lower rotating arm 10, a rotation driver 20, and an upper rotating arm 40, which are sequentially stacked to form a column. The rotation driver 20 rotates the lower rotating arm 10 relative to the upper rotating arm 40. In addition, the first excavator 160 includes a link structure 100 and a tilt link 110 between the lower rotating arm 10 and the bucket 120, thereby connecting the bucket 120 to the lower rotating arm 10 via the link structure 100 and the tilt link 110.

[0005] The tilt link 110 is connected to the bucket 120 together with the link structure 100, and rotates the bucket 120 around the end of the lower rotating arm 10. As a result, the rotation of the articulated arm and the rotation of the tilt link 110 are different from the movement of the link structure 100, and the opening direction of the recessed inlet of the bucket 120 can be continuously and freely changed during the relative rotation of the articulated arms 10, 20, 40 with respect to the boom. Meanwhile, the lower rotating arm 10, rotation driver 20, and upper rotating arm 40 surround the center joint 60 and slip ring 80, considering Figures 2 and 3.

[0006] As shown in Figures 2 and 3, the center joint 60 has a joint housing 54 and a joint shaft 58. The joint shaft 58 rotates relative to the joint housing 54. The joint housing 54 and the joint shaft 58 are exposed to the outside through the first hole 5 of the lower rotating arm 10 and the second hole 35 of the upper rotating arm 40, as shown in Figures 1 and 3. The slip ring 80 has an input end 74 and an output end 78, as shown in Figure 2. The slip ring 80 exposes the input end 74 and the output end 78 to the outside through the first hole 5 of the lower rotating arm 10 and the second hole 35 of the upper rotating arm 40.

[0007] The input end 74 receives power from the first excavator 160, and the output end 78 is connected to an electronic device (e.g., a level, not shown) to supply power from the input end 74 to the electronic device. However, when the output end 78 of the slip ring 80 is inserted into the center joint 60, the width between the upper rotating arm 40 and the joint shaft 60 at the second hole 35 of the upper rotating arm 40 in FIG. 3 is smaller than the diameter of one hydraulic line C, making it difficult to directly insert the slip ring 80 into the second hole 35 from the outside.

[0008] Therefore, in the event of a malfunction of the electronic device or a break in the input end 74 or output end of the slip ring 80, the previously used slip ring 80 must be removed from the center joint 60, and a new slip ring 80 inserted into the center joint 60 must be disassembled from the lower rotating arm 10 and the upper rotating arm 40 from the rotary driver 20. Disassembly of the lower rotating arm 10 and the upper rotating arm 40 from the rotary driver 20 is also achieved by removing the hydraulic lines C from the center joint 60 and repeatedly changing the state of the screws B connecting the lower rotating arm 10 and the rotary driver 20 from a fastened state to a loosened state.

[0009] Therefore, inserting a new slip ring 80 into the center joint 60 requires a lot of effort from the drilling worker in relation to dismantling the articulated arms 10, 20, 40 and dismantling the center joint 60 from the multiple hydraulic lines C, which delays the work schedule at the drilling site and deteriorates the environment at the drilling site.

[0010] 4 shows a second excavator 1084 having a first bucket 1014, a first bucket cylinder 1044, a first articulated link 1054, and a first boom 1074 around a first arm 1022. The first bucket 1014 is axially connected to an end of the first arm 1022 at one edge. The first arm 1022 is axially connected to a first boom 1074 through a first boom connecting hole 1020, a first arm cylinder (not shown) through a first arm cylinder connecting hole 1021, and a first bucket cylinder 1044.

[0011] The first bucket cylinder 1044 includes a first rod 1031, a first piston (see reference numeral 1034 in FIG. 6), and a first cylinder 1032, and the first cylinder 1032 has a first head cover (see reference numeral 1037 in FIG. 6) that is connected to a first tube (see reference numeral 1036 in FIG. 6) on the opposite side of the first rod 1031, and a first connecting ring (see reference numeral 1038 in FIG. 6), and has a first rod cover (see reference numeral 1035 in FIG. 6) that is connected to the first tube near the first rod 1031.

[0012] Here, the first bucket cylinder 1044 is axially coupled to the first arm 1022 by inserting a shaft into the first connecting ring. The first articulated link 1054 is axially coupled to the first arm 1022 and the first rod 1031 together with the other edge of the first bucket 1014. The first bucket 1014 rotates around the first arm 1022 in the same manner as in FIG. 7 through shape deformation of the first articulated link 1054 in response to operation of the first bucket cylinder 1044, and the first arm 1022 rotates around the first boom 1074 in the same manner as in FIG. 7 in response to operation of the first arm cylinder.

[0013] 4, the first bucket cylinder 1044 has a first length L1 between the center of the first connecting ring and the end of the first rod 1031. The first arm 1022 has a second length L2 between the center of the first boom connecting hole 1020 and the end of the first arm 1022. The first arm 1022 rotates the first bucket 1014 in response to the operation of the first bucket cylinder 1044, and therefore is larger in proportion to the length of the first bucket cylinder 1044.

[0014] 4, the second excavator 1084 has an end of the first rod 1031 on an extension line X1 that passes vertically through the first arm cylinder coupling hole 1021. The second excavator 1084 moves the first bucket 1014 only around the first arm 1022.

[0015] 5 shows a third excavator 1088 that includes a second bucket 1018, a second bucket cylinder 1048, a second articulated link 1058, a rotating arm 1065, and a second boom 1078 around a second arm 1029. The second bucket 1018, second arm 1029, second bucket cylinder 1048, second articulated link 1058, and second boom 1078 perform functions similar to those of the first bucket 1014, first arm 1022, first bucket cylinder 1044, first articulated link 1054, and first boom 1074 in FIG.

[0016] In order for the third excavator 1088 to have a different function from the second excavator 1084, the second arm 1029 is subdivided into a second lower arm 1024 and a second upper arm 1028, and the rotating arm table 1065 is located between the second lower arm 1024 and the second upper arm 1028 to rotate the second lower arm 1024 relative to the second upper arm 1028. Here, the second bucket cylinder 1048 maintains the same structure as the first bucket cylinder 1044.

[0017] 6, the second bucket cylinder 1048 has a second rod 1033, a second piston 1034, and a second cylinder 1039. The second cylinder 1039 has a second rod cover 1035, a second tube 1036, a second head cover 1037, and a second connecting ring 1038. The second bucket cylinder 1048 is formed by shortening the length of the second tube 1036 compared to the length of the first tube of the first bucket cylinder 1044 in order to position the rotating arm base 1065 between the second lower arm 1024 and the second upper arm 1028 while maintaining the same length as the first bucket cylinder 1044.

[0018] Therefore, the second bucket cylinder 1048 has a third length L3 between the center of the second connecting ring 1038 and the end of the second rod 1033 that is shorter than the first length L1 of the first bucket cylinder 1044. Also, the second arm 1029 is formed such that its length is shorter than the length of the first arm 1022 in accordance with the length of the second bucket cylinder 1044. Therefore, the second arm 1029 has a fourth length L4 between the center of the second boom connecting hole 1026 and the end of the second lower arm 1024 that is even shorter than the second length L2 of the first arm 1022.

[0019] With the third excavator 1088 having the third length L3 corresponding to the second bucket cylinder 1048 and the fourth length L4 corresponding to the second arm 1029 as shown in FIG. 5, during operation of the third excavator 1088, in FIG. 7, the second bucket 1018 performs a first semicircular motion (radius D1) relative to the second lower arm 1024, and the second arm 1029, together with the rotating arm base 1065, performs a second semicircular motion (radius D2) relative to the boom 1078.

[0020] However, because the second bucket 1018 maintains a predetermined small distance 1019 from the ground 1005, the operator of the third excavator 1088 must frequently raise the second arm 1029 in the upward direction M via the boom 1078 while the third excavator 1088 is in operation, out of concern for abnormal contact between the second bucket 1018 and the ground 1005. Meanwhile, in the third excavator 1088, when the second rod 1033 is minimally exposed from the second rod cover 1035, the end of the second rod 1033 is located on an extension line X2 that passes vertically through the second arm cylinder coupling hole 1027, as shown in FIGS.

[0021] In addition, the second lower arm 1024 and the rotating arm base 1065 have a center joint 1023 therein, and the center joint 1023 is exposed to the outside through a second slip entrance hole 1025 in the second upper arm 1028. The center joint 1023 and the slip entrance hole 1025 are spaced apart from the extension line X2 in the second upper arm 1028. Considering the shape of the third excavator 1088 as a whole in FIGS. 5 and 7, the third excavator 1088 has many difficulties in further mounting an attachment between the second bucket 1018 and the second lower arm 1024. Summary of the Invention [Problem to be solved by the invention]

[0022] The present invention has been devised to solve the problems of the conventional art, and aims to provide an excavation device suitable for easily inserting a slip ring into the center joint without disassembling the lower arm, rotating arm base, and upper arm, while the center joint is surrounded by the lower arm, rotating arm base, and upper arm.

[0023] The present invention has been devised to solve the problems of the prior art, and aims to provide an excavation device suitable for increasing the margin of excavation work by applying a rotary arm base to an arm, dividing the arm based on the rotary arm base, and then having a lower arm below the rotary arm base and an upper arm above the rotary arm base, and by changing the shape of the upper arm to reduce the length of the upper arm along the longitudinal direction of the arm, and by changing the structure of the bucket cylinder rotatably connected to the lower arm to reduce the length of the lower arm along the longitudinal direction of the arm. [Means for solving the problem]

[0024] a rotating arm base positioned on the other end of the lower arm, the rotating arm base being formed in a disk shape, and rotatably fixed to the lower arm; an upper arm positioned on the rotating arm base, the rotating arm base being fixed to the rotating arm base, the upper arm having a guide hole on its outer periphery; a center joint surrounded by the lower arm, the rotating arm base, and the upper arm, and exposed to the outside through the fixing hole of the lower arm and the guide hole of the upper arm; and a slip ring inserted into the center joint through the guide hole of the upper arm or separated from the center joint, wherein the width of a central space between the upper arm and the center joint, measured from the top end of the center joint in the guide hole of the upper arm, is larger than the diameter of two hydraulic lines.

[0025] The rotating arm base may include a lower rotating table and an upper rotating table stacked in sequence on the lower arm, and a drive motor unit that rotates the lower rotating table relative to the upper rotating table, and may be connected to the lower arm and the upper arm via the lower rotating table and the upper rotating table, respectively.

[0026] When the lower arm has a seating hole on a surface perpendicular to the longitudinal direction of the lower arm, and the rotating arm base has a lower rotating base and an upper rotating base that are stacked in sequence, and a through hole that passes through the central regions of the lower rotating base and the upper rotating base, the center joint may include a joint housing that is inserted into the seating hole of the lower arm and fixed to the lower rotating base of the rotating arm base, and a joint shaft that is inserted into the joint housing, rotates relative to the joint housing, and protrudes toward the upper arm through the through hole of the rotating arm base.

[0027] The slip ring may have a fixed portion located outside the center joint, a rotating portion fitted to the fixed portion and located outside the center joint, and rotating relative to the fixed portion, an input end starting from the rotating portion and extending toward one side of the rotating portion, and an output end starting from the rotating portion and extending toward the other side of the rotating portion.

[0028] The center joint may include a joint housing and a joint shaft inserted into the joint housing, and when the slip ring is inserted into the joint housing and the joint shaft while separated from the center joint, the output end of the slip ring may be inserted into the guide hole of the upper arm, pass sequentially through the joint shaft and the joint housing, be exposed to the fixing hole of the lower arm, and then be pulled from the fixing hole of the lower arm toward the outside, the fixed portion and the rotating portion of the slip ring may be guided toward the guide hole of the upper arm during the pulling of the output end and be partially inserted into the joint shaft, and the input end of the slip ring may be guided together with the fixed portion and the rotating portion toward the guide hole of the upper arm during the pulling of the output end and extend from the rotating portion toward the outside through the guide hole of the upper arm.

[0029] The center joint may include a joint housing and a joint shaft inserted into the joint housing, and when the slip ring is separated from the joint housing and the joint shaft while coupled to the center joint, the input end of the slip ring may be pulled from the guide hole of the upper arm toward the outside, the fixed portion and the rotating portion of the slip ring may be separated from the joint shaft and guided from the guide hole of the upper arm toward the outside while the input end is being pulled, and the output end of the slip ring may pass through the joint housing and the joint shaft sequentially and be separated from the joint shaft while the input end is being pulled.

[0030] The excavator further includes a fragment cover on the guide hole of the upper arm, the upper arm having a round peripheral portion on the center joint of the guide hole of the upper arm and a plurality of connecting rings positioned on the round peripheral portion, the fragment cover having connecting holes and screw members that align with the connecting rings on the round peripheral portion, and the fragment cover can be screwed to the upper arm by inserting screw members into the connecting holes of the fragment bar and the connecting rings on the round peripheral portion.

[0031] The excavator further includes a fragment cover on the guide hole of the upper arm, the upper arm having a round peripheral portion on the center joint of the guide hole of the upper arm and a plurality of fitting grooves located on the round peripheral portion, the fragment cover having a fitting protrusion that aligns with the fitting groove of the round peripheral portion, and the fragment cover can be fitted to the upper arm by inserting the fitting protrusion of the fragment cover into the fitting groove of the round peripheral portion.

[0032] The excavator further includes a debris cover on the guide hole of the upper arm, the upper arm having a round peripheral portion on the center joint in the guide hole of the upper arm and two auxiliary hinges on the round peripheral portion, the debris cover having a main hinge and a hinge pin aligned with the two auxiliary hinges on the round peripheral portion, and the debris cover can be hingedly connected to the upper arm by inserting the hinge pin into the individual auxiliary hinges on the round peripheral portion and the main hinge of the debris cover.

[0033] The excavator further includes a debris cover on the guide hole of the upper arm, the upper arm having a round peripheral portion on the center joint of the guide hole of the upper arm, two auxiliary hinges located in a central region of the round peripheral portion, and two magnets located on both edges of the round peripheral portion, the debris cover having a main hinge and a hinge pin aligned with the two auxiliary hinges of the round peripheral portion, and the debris cover can be hinged to the upper arm by inserting the hinge pin into the individual auxiliary hinges of the round peripheral portion and the main hinge of the debris cover, and can be attracted by the magnetic force of the individual magnets of the round peripheral portion.

[0034] When the upper arm has a rounded peripheral portion located on the center joint at a guide hole on one side of the upper arm and an angular peripheral portion located on the center joint at a guide hole on the other side of the upper arm, the guide hole at the rounded peripheral portion may open larger on the upper arm between the center joint and the upper arm based on the top end of the center joint than the guide hole at the angular peripheral portion.

[0035] When the upper arm has a rounded peripheral portion located on the center joint in a guide hole on one side of the upper arm and an angular peripheral portion located on the center joint in a guide hole on the other side of the upper arm, the rounded peripheral portion may be located deeper than the angular peripheral portion in the upper arm based on the top end of the center joint and may have the same curvature as a ceiling facing the center joint.

[0036] The excavator may further include a bucket cylinder and a clamp cylinder located on one side and the other side of the lower arm, respectively, and rotatably fixed to the other end of the lower arm, a link structure located at the one end of the lower arm and rotatably fixed to the lower arm and the bucket cylinder, a tilt link located below the link structure and rotatably fixed to the link structure, a bucket below the tilt link and rotatably fixed to the tilt link, and a clamp located at the one end of the lower arm and rotatably fixed to the lower arm and the clamp cylinder.

[0037] In addition, the excavator according to the present invention includes a bucket, a lower arm, a rotating arm base, an upper arm, and a boom that are sequentially arranged toward a driver's seat at a work site and rotatably coupled to one another, and the upper arm has a boom coupling hole and an arm cylinder coupling hole that are sequentially positioned on the rotating arm base so as to include a bucket cylinder and an arm cylinder that are respectively positioned around the lower arm and the boom and rotatably coupled to the bucket and the upper arm, and the lower arm is positioned on a central axis of the upper arm that passes perpendicularly through the arm cylinder coupling hole of the upper arm and overlaps with at least half of the length of the lower arm, and the upper arm protrudes the boom coupling hole further than the rotating arm base from directly above the rotating arm base toward a side of the upper arm, and the bucket cylinder is rotatably attached to the lower arm via both sides of the bucket cylinder.

[0038] When an articulated link is provided between the bucket, the lower arm, and the bucket cylinder, the lower arm can be axially connected to the bucket and the articulated link in sequence along the longitudinal direction of the lower arm immediately adjacent to the central axis of the upper arm.

[0039] The bucket cylinder has a rod, a piston, and a cylinder, and the cylinder has a head cover located directly below the rotating arm base, a tube connected to the head cover, a rod cover connected to the tube on the opposite side of the head cover, and a hanger that rotatably connects the tube to the lower arm, the rod is located inside and outside the tube and is surrounded by the rod cover so as to move relative to the cylinder, and the piston is located inside the tube and can move together with the rod.

[0040] When the lower arm has multi-joint links located on both sides thereof and axially connected to the lower arm, the rod can be axially connected to the multi-joint link and minimally exposed from the rod cover around the lower arm, thereby moving away from the central axis of the upper arm together with the multi-joint link, or can be maximally exposed from the rod cover and approaching the central axis of the upper arm together with the multi-joint link.

[0041] When the rod is minimally exposed from the rod cover, the rod, the rod cover, the tube, and the head cover can gradually move away from the central axis of the upper arm in the order of the rod, the rod cover, the tube, and the head cover.

[0042] When the rod is maximally exposed from the rod cover, the rod, the rod cover, the tube, and the head cover can gradually move away from each other in the order of the rod, the rod cover, the tube, and the head cover, while positioning the rod on the central axis of the upper arm.

[0043] When the lower arm has brackets on both sides of the tube, the hanger can include a support portion having a cylindrical protrusion that surrounds the tube and extends toward the bracket, and a locking portion that surrounds the protrusion in a curved manner together with the bracket on the bracket and screws into the bracket.

[0044] When the rod is minimally exposed from the rod cover, the multi-joint link may be rotatably connected to the bucket, the lower arm, and the bucket cylinder, and the multi-joint link may be axially connected to the lower arm immediately adjacent to the central axis of the upper arm, axially connected to the bucket at a position farther from the central axis of the upper arm than the lower arm is, and axially connected to the rod of the bucket cylinder at a position farther from the central axis of the upper arm than the bucket is.

[0045] When the rod is maximally exposed from the rod cover, the bucket, the lower arm, and the bucket cylinder have an articulated link that is rotatably connected to the bucket, the lower arm, and the bucket cylinder, and the articulated link is located immediately adjacent to the central axis of the upper arm on the left and right sides of the central axis of the upper arm to be axially connected to the lower arm and the rod, and can be axially connected to the bucket at a position farther away from the central axis of the upper arm than the lower arm.

[0046] The rotating arm base may include a lower rotating table and an upper rotating table stacked in sequence between the lower arm and the upper arm, the lower rotating table and the upper rotating table being fixed to the lower arm and the upper arm, respectively, and rotating the lower rotating table relative to the upper rotating table. The rotating arm base may include a center joint passing through the lower rotating table and the upper rotating table together with the lower arm, and the center joint may be located on the central axis of the upper arm.

[0047] When the upper arm has a slip inlet / outlet hole, the boom connection hole, and the arm cylinder connection hole at its lower, middle, and upper sides, and the lower arm and the rotating arm base have a center joint on the central axis of the upper arm, the slip inlet / outlet hole of the upper arm exposes the center joint to the outside on the central axis of the upper arm, thereby guiding the connection of the slip to or separation of the slip from the center joint.

[0048] When the upper arm has a slip entrance / exit hole portion, the boom connecting hole portion, and the arm cylinder connecting hole portion on the lower side, middle side, and upper side of the upper arm, the slip entrance / exit hole portion of the upper arm can be located on the central axis of the upper arm and at the same level as the boom connecting hole portion in a direction perpendicular to the central axis of the upper arm.

[0049] When the upper arm has a slip in / out hole portion, the boom connecting hole portion, and the arm cylinder connecting hole portion on the lower side, middle side, and upper side of the upper arm, the slip in / out hole portion and the arm cylinder connecting hole portion of the upper arm can be positioned on the central axis of the upper arm.

[0050] When the system includes the bucket and a rotating link connected to the lower arm, the bucket cylinder located on one side of the lower arm and connected to the lower arm, the clamp cylinder located on the other side of the lower arm and connected to the lower arm, a clamp located at an end of the lower arm and connected to the lower arm, and a multi-joint link connected to the lower arm, the bucket and the rotating link, and the bucket cylinder, the bucket and the rotating link rotate around the central axis of the upper arm by extending and contracting the multi-joint link in response to operation of the bucket cylinder, and the clamp is axially connected to the lower arm near the central axis of the upper arm, and can move relative to the lower arm in response to operation of the clamp cylinder, pivoting up and down. [Effects of the Invention]

[0051] The drilling rig according to the present invention comprises: The arm is provided with a lower arm, a rotating arm base, and an upper arm that are stacked in order to form a multi-joint arm, a fixing hole located in the lower arm directly below the rotating arm base, a guide hole located in the upper arm directly above the rotating arm base, and a center joint inserted into the lower arm, the rotating arm base, and the upper arm. The joint housing of the center joint is exposed in the fixing hole of the lower arm, and the joint shaft of the center joint is exposed in the guide hole of the upper arm. The width of the central space between the joint shaft and the upper arm based on the top end of the center joint in the guide hole of the upper arm is larger than the diameters of the two hydraulic lines. While the center joint is surrounded by the lower arm, the rotating arm base, and the upper arm, the slip ring can be easily inserted into the center joint without disassembling the lower arm, the rotating arm base, and the upper arm.

[0052] The drilling rig according to the present invention comprises: A rotary arm base is applied to the arm, and the arm is divided based on the rotary arm base, and then a lower arm is provided below the rotary arm base and an upper arm is provided above the rotary arm base; reducing the shape of the upper arm toward the swivel arm base along the longitudinal direction of the arm while making the upper arm larger than the swivel arm base in a direction perpendicular to the longitudinal direction of the arm; The connecting ring is removed from the bucket cylinder, and the tube is rotatably coupled to the lower arm base via the outer circumferential surface of the tube. The rotation of the bucket due to the minimum and maximum exposed lengths of the rod from the rod cover of the cylinder around the lower arm is appropriately reflected, The shape of the upper arm can be changed to reduce the length of the upper arm along the longitudinal direction of the arm, and the structure of the bucket cylinder rotatably connected to the lower arm can be changed to reduce the length of the lower arm along the longitudinal direction of the arm, thereby increasing the margin of error during excavation work. [Brief explanation of the drawings]

[0053] [Figure 1] FIG. 1 is a partial side view of a first prior art excavator. [Figure 2] 2 is an image showing the connection relationship between the center joint and the slip ring in the first excavator of FIG. 1. [Figure 3] 2 is an image showing a lower rotary arm, a rotary driver, and a center joint (slip ring not shown) located on an upper rotary arm in the first excavator of FIG. 1. [Figure 4] FIG. 1 is a side view showing a second excavator according to an embodiment of the prior art. [Figure 5] FIG. 10 is a side view showing a third excavator according to another embodiment of the prior art. [Figure 6] FIG. 6 is a side view schematically showing a bucket cylinder in the third excavator of FIG. 5. [Figure 7] 6 is a schematic diagram showing the operation of the third excavator of FIG. 5. [Figure 8] 1 is a side view partially showing a first drilling device according to the present invention; [Figure 9] FIG. 9 is an exploded perspective view partially showing the first excavation device of FIG. 8. [Figure 10] 9 is an image showing an enlarged view of each region of the lower arm, the drive motor unit, and the center joint located on the upper arm in the first excavation device of FIG. 8. [Figure 11] 11 is an image showing the positional relationship between the upper arm and the center joint in FIG. 10. [Figure 12] 12 is an image showing the fragment cover located on the upper arm of FIG. 11. [Figure 13] 13 is a first modification of the upper arm and fragment cover of FIG. [Figure 14] 13 is a second variation of the upper arm and fragment cover of FIG. [Figure 15] 13 is a third variation of the upper arm and fragment cover of FIG. [Figure 16] FIG. 2 is a side view showing a second drilling device according to the present invention. [Figure 17]FIG. 17 is a partially enlarged side view of the second excavation device of FIG. 16. [Figure 18] FIG. 17 is a partially enlarged perspective view of the second excavation device of FIG. 16. [Figure 19] FIG. 19 is a partially enlarged perspective view of the bucket cylinder of FIG. 18. [Figure 20] FIG. 20 is a schematic diagram showing the rods in the bucket cylinder of FIG. 19 that are maximally exposed from the cylinder. [Figure 21] FIG. 20 is a schematic diagram showing the rods in the bucket cylinder of FIG. 19 that are minimally exposed from the cylinder. [Figure 22] 17 is a side view showing a rotating link, a clamp, and a clamp cylinder further attached to the second excavation device of FIG. 16. DETAILED DESCRIPTION OF THE INVENTION

[0054] DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS Preferred embodiments of the present invention will now be described in detail with reference to the accompanying drawings so that those skilled in the art can easily carry out the present invention.

[0055] FIG. 8 is a side view partially showing a first excavation device according to the present invention, FIG. 9 is an exploded perspective view partially showing the first excavation device of FIG. 8, and FIG. 10 is an image showing an enlarged view of the lower arm, the drive motor unit, and the center joint located on the upper arm in the first excavation device of FIG. 8 by region.

[0056] FIG. 11 is an image showing the positional relationship between the upper arm and the center joint in FIG. 10, and FIG. 12 is an image showing the fragment cover positioned on the upper arm in FIG.

[0057] Here, FIGS. 8 to 12, together with the following FIGS. 13 to 15, show an improved configuration of the first excavator of FIGS. 1 to 3. FIG.

[0058] 8 to 12, the first drilling device 410 according to the present invention includes a lower arm 210, a rotating arm base 230, an upper arm 250, a center joint 270, and a slip ring 289 in Fig. 8. Generally, the lower arm 210 has a width that gradually increases from one end to the other end in Figs. 8 to 10, and has a fixing hole 208 on the outer circumferential surface at the other end.

[0059] 8 to 10, the rotating arm base 230 is formed in a disk shape and located on the other end of the lower arm 210, and is rotatably fixed to the lower arm 210. The upper arm 250 is located on the rotating arm base 230 and fixed to the rotating arm base 230, and has a guide hole 244 on the outer circumferential surface on the rotating arm base 230, in FIGS.

[0060] 8 to 10, the center joint 270 is surrounded by the lower arm 210, the rotating arm base 230, and the upper arm 250, and is exposed to the outside through the fixing hole 208 of the lower arm 210 and the guide hole 244 of the upper arm 250. Considering FIG. 10, the slip ring 289 is either directly inserted into the center joint 270 from the outside through the guide hole 244 of the upper arm 250, or is directly separated from the center joint 270 toward the outside.

[0061] The center joint 270 and the slip ring 289 have the same shapes as the center joint 60 and the slip ring 80 in Fig. 2. Here, the width of the central space between the upper arm 250 and the center joint 270, based on the top end of the center joint 270 in the guide hole 244 of the upper arm 250, is larger than the diameter of the two hydraulic lines E in appearance in Figs.

[0062] Explaining in more detail, in Figures 8 to 10, the rotating arm base 230 has a lower rotating base 223 and an upper rotating base 226 stacked sequentially on the lower arm 210, and a drive motor unit 229 that rotates the lower rotating base 223 relative to the upper rotating base 226, and is connected to the lower arm 210 and the upper arm 250 via the lower rotating base 223 and the upper rotating base 226, respectively.

[0063] In Figure 9, the lower arm 210 has a seating hole 204 on a surface perpendicular to the longitudinal direction of the lower arm 210, and when the rotating arm base 230 has a lower rotating base 223 and an upper rotating base 226 stacked in sequence in Figure 9, and a through hole 225 passing through the central regions of the lower rotating base 223 and the upper rotating base 226, the center joint 270 includes a joint housing 264 and a joint shaft 268 in Figures 8 to 10.

[0064] 9 and 10, the joint housing 264 is inserted into the seating hole 204 of the lower arm 210 and fixed to the lower rotating base 223 of the rotating arm base 230. The joint shaft 268 is inserted into the joint housing 264 and rotates relative to the joint housing 264, and protrudes toward the upper arm 250 through the through-hole 225 of the rotating arm base 230, as shown in FIG.

[0065] 9 to 11, slip ring 289 has a fixed portion 282 located outside center joint 270, a rotating portion 284 fitted to fixed portion 282 and located outside center joint 270, and rotating relative to fixed portion 282, an input end 286 starting from rotating portion 284 and extending toward one side of rotating portion 284, and an output end 288 starting from rotating portion 284 and extending toward the other side of rotating portion 284.

[0066] 9 and 10, the center joint 270 has a joint housing 264 and a joint shaft 268 inserted into the joint housing 264. When the slip ring 289 is inserted into the joint housing 264 and the joint shaft 268 in a state separated from the center joint 270 in FIGS. 9 and 10, the output end 288 of the slip ring 289 is inserted into the guide hole 244 of the upper arm 250, passes through the joint shaft 268 and the joint housing 264 in that order, is exposed to the fixing hole 208 of the lower arm 210, and is then pulled outward from the fixing hole 208 of the lower arm 210, as shown in FIGS. 9 to 11.

[0067] 9 to 11, the fixed portion 282 and the rotating portion 284 of the slip ring 289 are guided toward the guide hole 244 of the upper arm 250 while the output end 288 is being pulled, and are partially inserted into the joint shaft 268. Referring to FIGS. 9 to 11, the input end 286 of the slip ring 289 is guided toward the guide hole 244 of the upper arm 250 together with the fixed portion 282 and the rotating portion 284 while the output end 288 is being pulled, and extends from the rotating portion 284 toward the outside through the guide hole 244 of the upper arm 250.

[0068] In contrast, the center joint 270 has a joint housing 264 and a joint shaft 268 inserted into the joint housing 264 in Figures 9 and 10, and when the slip ring 289 is separated from the joint housing 264 and the joint shaft 268 while being coupled to the center joint 270 in Figures 9 and 10, the input end 286 of the slip ring 289 is pulled outward from the guide hole 244 of the upper arm 250 in Figures 9 to 11.

[0069] 9 to 11, the fixed part 282 and the rotating part 284 of the slip ring 289 are separated from the joint shaft 268 when the input end 286 is pulled, and are guided outward through the guide hole 244 of the upper arm 250. Referring to FIGS. 9 to 11, the output end 288 of the slip ring 289 passes through the joint housing 264 and the joint shaft 268 in sequence when the input end 286 is pulled, and is separated from the joint shaft 268.

[0070] 11 and 12, the first excavation device 410 further includes a fragment cover 300 on the guide hole 244 of the upper arm 250. Here, the upper arm 250 has a round peripheral portion R on the center joint 270 of the guide hole 244 of the upper arm 250 in FIGS. 10 and 11, and a plurality of coupling rings 242 positioned on the round peripheral portion R. In consideration of FIGS. 10 to 12, the fragment cover 300 has a coupling hole 294 and a screw member 298 aligned with the coupling ring 242 of the round peripheral portion R, and is screwed to the upper arm 250 by inserting the screw member 298 into the coupling hole 294 of the fragment cover 300 and the coupling ring 242 of the round peripheral portion R.

[0071] 8, 10 and 11, when the upper arm 250 has a rounded peripheral portion R located on the center joint 270 of the guide hole 244 on one side of the upper arm 250 and an angular peripheral portion S located on the center joint 270 of the guide hole 248 on the other side of the upper arm 250, the guide hole 244 of the rounded peripheral portion R opens more widely into the upper arm 250 than the guide hole 248 of the angular peripheral portion S between the center joint 270 and the upper arm 250, based on the top end of the center joint 270.

[0072] 8, 10 and 11, when the upper arm 250 has a rounded peripheral portion R located on the center joint 270 of the guide hole 244 on one side of the upper arm 250 and an angular peripheral portion S located on the center joint 270 of the guide hole 248 on the other side of the upper arm 250, the rounded peripheral portion R is located deeper than the angular peripheral portion S on the upper arm 250 with respect to the top end of the center joint 270, and has the same curvature as the ceiling facing the center joint 270.

[0073] 8, the first excavator 410 includes a bucket cylinder 350, a link structure 360, a tilt link 370, a bucket 380, a clamp cylinder 390, and a clamp 400. The bucket cylinder 350 and the clamp cylinder 390 are respectively located on one side and the other side of the lower arm 210 and are rotatably fixed to the other end of the lower arm 210. The link structure 360 ​​is located at one end of the lower arm 210 and is rotatably fixed to the lower arm 210 and the bucket cylinder 350.

[0074] In addition, the tilt link 370 is located below the link structure 360 ​​and is rotatably fixed to the link structure 360. The bucket 380 is rotatably fixed to the tilt link 370 below the tilt link 370. The clamp 400 is located at one end of the lower arm 210 and is rotatably fixed to the lower arm 210 and a clamp cylinder 390.

[0075] FIG. 13 is a first variation of the upper arm and fragment cover of FIG.

[0076] 13, the upper arm 253 and the fragment cover 320 according to the first modified example of the present invention have a different structure from the upper arm 250 and the fragment cover 300 in FIGS. 10 to 12. More specifically, the first excavation device 410 further includes a fragment cover 320 on the guide hole 249 of the upper arm 253.

[0077] 11 and 13, the upper arm 253 has a round peripheral portion R on the center joint 270 of the guide hole 249 of the upper arm 253, and a plurality of fitting grooves 244 located on the round peripheral portion R. The fragment cover 320 has fitting protrusions 315 aligned with the fitting grooves 244 of the round peripheral portion R in FIG. 9, and is fitted to the upper arm 253 by inserting the fitting protrusions 315 of the fragment cover 320 into the fitting grooves 244 of the round peripheral portion R.

[0078] FIG. 14 is a second variation on the upper arm and fragment cover of FIG.

[0079] 14, the upper arm 256 and the fragment cover 340 according to the second modified example of the present invention have a different structure from the upper arm 250 and the fragment cover 300 of FIGS. 10 to 12. More specifically, the first excavation device 410 further includes a fragment cover 340 on the guide hole 249 of the upper arm 256.

[0080] 11 and 14, the upper arm 256 has a round periphery R on a center joint 270 in a guide hole 249 of the upper arm 256, and has two auxiliary hinges 246 on the round periphery R. The fragment cover 340 has a main hinge 334 and a hinge pin 338 that are aligned with the two auxiliary hinges 246 on the round periphery R in FIG. 14, and is hingedly connected to the upper arm 256 by inserting the hinge pin 338 into the individual auxiliary hinges 246 on the round periphery R and the main hinge 334 of the fragment cover 340.

[0081] That is, the fragment cover 340 is hinged to the upper arm 256 and fixed to the upper arm 256 in a rotatable manner (R1).

[0082] FIG. 15 is a third variation on the upper arm and fragment cover of FIG.

[0083] 15, the upper arm 259 and the fragment cover 340 according to the third modified example of the present invention have a different structure from the upper arm 250 and the fragment cover 300 of FIGS. 10 to 12. More specifically, the first excavation device 410 further includes a fragment cover 340 on the guide hole 249 of the upper arm 259.

[0084] 11 and 15, the upper arm 259 has a round peripheral portion R located on a center joint 270 in a guide hole 249 of the upper arm 259, two auxiliary hinges 246 located in the central region of the round peripheral portion R, and two magnets 247 located on both edges of the round peripheral portion R. The fragment cover 340 has a main hinge 334 and a hinge pin 338 aligned with the two auxiliary hinges 246 of the round peripheral portion R in FIG. 15, and is hinged to the upper arm 259 by inserting the hinge pin 338 into the individual auxiliary hinges 246 of the round peripheral portion R and the main hinge 334 of the fragment cover 340, and is attracted by the magnetic force of the individual magnets 247 of the round peripheral portion R.

[0085] That is, the fragment cover 340 is hinged to the upper arm 259 and fixed to the upper arm 259 in a rotatable manner (R2).

[0086] Figure 16 is a side view showing a second drilling device according to the present invention, Figure 17 is a side view showing a partially enlarged view of the second drilling device of Figure 16, and Figure 18 is a perspective view showing a partially enlarged view of the second drilling device of Figure 16.

[0087] 19 is a partially enlarged perspective view of the bucket cylinder of FIG. 18, and FIG. 20 is a schematic view showing the rods of the bucket cylinder of FIG. 19 that are maximally exposed from the cylinder.

[0088] 21 is a schematic view showing a rod that is minimally exposed from the bucket cylinder of FIG. 19, and FIG. 22 is a side view showing a rotating link, a clamp, and a clamp cylinder that are further attached to the second excavation device of FIG. 16.

[0089] Here, FIGS. 16 to 22 show configurations that improve the second and third excavators of FIGS.

[0090] 16 to 22, the second excavation device 1210 according to the present invention has a bucket 1095, a lower arm 1103, a rotating arm base 1189, an upper arm 1108, and a boom 1195 which are arranged sequentially toward the driver's seat at the work site and which are rotatably connected to each other, and has a bucket cylinder 1160 and an arm cylinder (not shown) which are located around the lower arm 1103 and the boom 1195, respectively, and which are rotatably connected to the bucket 1095 and the upper arm 1108.

[0091] 16 and 17, when the upper arm 1108 has a boom connecting hole 1105 and an arm cylinder connecting hole 1106 positioned sequentially on the rotating arm base 1189, the lower arm 1103 is positioned on the central axis of the upper arm 1108, in FIG. 16, which passes vertically through the arm cylinder connecting hole 1106 of the upper arm 1108 and overlaps more than half of the length of the lower arm 1103.

[0092] 17, the upper arm 1108 has the boom connecting hole 1105 protruding further than the rotating arm base 1189 toward the side of the upper arm 1108 directly above the rotating arm base 1189. The bucket cylinder 1160 is rotatably attached to the lower arm 1103 via both side portions of the bucket cylinder 1160 in FIGS.

[0093] More specifically, when the second excavator 1210 has an articulated link 1175 between the bucket 1095, the lower arm 1103, and the bucket cylinder 1160 as shown in FIG. 16, the lower arm 1103 is axially connected to the bucket 1095 and the articulated link 1175 sequentially along the longitudinal direction of the lower arm 1103 immediately adjacent to the central axis X3 of the upper arm 1108 in FIG. 16.

[0094] 16 to 21, the bucket cylinder 1160 has a rod 1115, a piston 1126, and a cylinder 1155. In FIGS. 16 to 21, the cylinder 1155 has a head cover 1139 located directly below the rotating arm base 1189, a tube 1133 connected to the head cover 1139, a rod cover 1136 connected to the tube 1133 on the opposite side of the head cover 1139, and a hanger 1149 that rotatably connects the tube 1133 to the lower arm 1103.

[0095] 16 to 21, the rod 1115 is located inside and outside the tube 1133, is surrounded by a rod cover 1136, and moves relative to the cylinder 1155. The piston 1126 is located inside the tube 1133 and moves together with the rod 1115 in FIGS. 20 and 21. Here, the bucket cylinder 1160 does not have the second connecting ring 1038 of the second cylinder 1039 disclosed in FIG. 6.

[0096] This is because the second connecting ring 1038 does not contribute to the moving speed of the second piston 1034 in the second cylinder 1039. That is, referring to Figures 20 and 21, the cylinder 1155 manages the uniform and decelerated motion of the piston 1126. Specifically, the uniform motion of the piston 1126 is limited by the size of the tube 1133.

[0097] In addition, the deceleration movement of the piston 1126 is limited by a first adjusting screw 1135 exposed to the first flow path P1 in the rod cover 1136 and a first cushion ring 1123 extending from the piston 1126 to the rod cover 1136, and by a second adjusting screw 1138 exposed to the second flow path P2 in the head cover 1139 and a second cushion ring 1129 extending from the piston 1126 to the head cover 1139.

[0098] When the second drilling device 1210 has an articulated link 1175 located on both sides of the lower arm 1103 and axially connected to the lower arm 1103 as shown in Figures 16 and 18, the rod 1115 is axially connected to the articulated link 1175 as shown in Figures 16 and 18, and is moved away from the central axis X3 of the upper arm 2108 together with the articulated link 1175 by being minimally exposed from the rod cover 1136 around the lower arm 1103 in Figure 21, or is moved closer to the central axis X3 of the upper arm 1108 together with the articulated link 1175 by being maximally exposed from the rod cover 1136 in Figure 20.

[0099] As shown in Figure 21, when the rod 1115 is minimally exposed from the rod cover 1136, the rod 1115, rod cover 1136, tube 1133, and head cover 1139 gradually move away from the central axis X3 of the upper arm 1108 in the order of rod 1115, rod cover 1136, tube 1133, and head cover 1139 in Figures 16 and 21.

[0100] As shown in Figure 20, when the rod 1115 is maximally exposed from the rod cover 1136, the rod 1115, rod cover 1136, tube 1133, and head cover 1139 gradually move away from each other in the order of rod 1115, rod cover 1136, tube 1133, and head cover 1139, positioning the rod 1115 on the central axis X3 of the upper arm 1108, considering Figures 20 and 22.

[0101] 21, when the rod 1115 is minimally exposed from the rod cover 1136, the rod 1115 moves in one direction M2 from the rod cover 1136 toward the head cover 1139. As shown in FIG. 20, when the rod 1115 is maximally exposed from the rod cover 1136, the rod 1115 moves in another direction M1 from the head cover 1139 toward the rod cover 1136.

[0102] As shown in Figure 18, when the lower arm 1103 has brackets 1141 on both sides of the tube 1133, the hanger 1149, in Figures 18 to 21, includes a support portion 1143 having a cylindrical protrusion 1142 that surrounds the tube 1133 and extends toward the bracket B, and a locking portion 1146 that surrounds the protrusion 1142 in a curved manner together with the bracket B on the bracket B and is screwed into the bracket 1141.

[0103] 21, when the rod 1115 is minimally exposed from the rod cover 1136, the second excavation device 1210 has an articulated link 1175 that is rotatably connected to the bucket 1095, the lower arm 1103, and the bucket cylinder 1160 in FIGS. 16 and 18. The articulated link 1175 is axially connected to the lower arm 1103 immediately adjacent to the central axis X3 of the upper arm 1108 in FIG.

[0104] In addition, in FIG. 16 , the articulated link 1175 is axially connected to the bucket 1095 at a position farther from the central axis X3 of the upper arm 1108 than the lower arm 1103 and is axially connected to the bucket 1095, and is axially connected to the rod 1115 of the bucket cylinder 1160 at a position farther from the central axis X3 of the upper arm 1108 than the bucket 1095.

[0105] In contrast, considering Figures 20 and 22, when the rod 1115 is maximally exposed from the rod cover 1136, the second excavator 1210 has an articulated link 1175 that is rotatably connected to the bucket 1095, lower arm 1103, and bucket cylinder 1160 in Figures 16 and 18.

[0106] Considering Figure 22, the articulated link 1175 is located immediately adjacent to the central axis X3 of the upper arm 1108, on the left and right sides of the central axis X3 of the upper arm 1108, and is axially connected to the lower arm 1103 and the rod 1115, and is further away from the central axis X3 of the upper arm 1108 than the lower arm 1103, and is axially connected to the bucket 1095.

[0107] In Figures 16 and 17, the rotating arm base 1189 has a lower rotating base 1183 and an upper rotating base 1186 that are stacked sequentially between the lower arm 1103 and the upper arm 1108, and the lower rotating base 1183 and the upper rotating base 1186 are fixed to the lower arm 1103 and the upper arm 1108, respectively.

[0108] 16 and 17, the rotating arm base 1189 rotates the lower rotating base 1183 relatively to the upper rotating base 1186, and has a center joint 1102 that penetrates the lower rotating base 1183 and the upper rotating base 1186 together with the lower arm 1103. The center joint 1102 is located on the central axis X3 of the upper arm 1108 in FIGS.

[0109] In Figures 16 and 17, the upper arm 1108 has a slip inlet / outlet hole 1104, a boom connecting hole 1105, and an arm cylinder connecting hole 1106 on the lower, middle, and upper sides of the upper arm 1108, and when the lower arm 1103 and the rotating arm base 1189 have a center joint 1102 on the central axis X3 of the upper arm 1108 in Figures 16 and 17, the slip inlet / outlet hole 1104 of the upper arm 1108 exposes the center joint 1102 to the outside on the central axis X3 of the upper arm 1108, thereby guiding the connection of a slip (not shown) to the center joint 1102 or the separation of the slip from the center joint 1102.

[0110] Here, the center joint 1102 rotates freely with the rotation of the rotating arm base 1189 while connected to a hydraulic line, and the slip has an electric wire and rotates freely with the rotation of the center joint 1102. That is, the slip prevents the electric wire from twisting when the sensor joint 1102 rotates. The upper arm 1108 has a plug 1107 to minimize the inflow of foreign matter through the slip inlet / outlet hole 1104.

[0111] When the upper arm 1108 has a slip entrance / exit hole 1104, a boom connecting hole 1105, and an arm cylinder connecting hole 1106 on the lower, middle, and upper sides of the upper arm 1108, as shown in Figures 16 and 17, the slip entrance / exit hole 1104 of the upper arm 1108 is located on the central axis X3 of the upper arm 1108 and is located at the same level as the boom connecting hole 1105 in a direction perpendicular to the central axis X3 of the upper arm 1108.

[0112] When the upper arm 1108 has a slip entrance / exit hole 1104, a boom connecting hole 1105, and an arm cylinder connecting hole 1106 on the lower, middle, and upper sides of the upper arm 1108, as shown in Figures 16 and 17, the slip entrance / exit hole 1104 and the arm cylinder connecting hole 1106 of the upper arm 1108 are located on the central axis X3 of the upper arm 1108 in Figures 16 and 17.

[0113] On the other hand, as shown in FIG. 22 , when the second excavator 1210 has a bucket 1095 and a rotating link 1225 connected to the lower arm 1103, a bucket cylinder 1160 located on one side of the lower arm 1103 and connected to the lower arm 1103, a clamp cylinder 1234 located on the other side of the lower arm 1103 and connected to the lower arm 1103, a clamp 1238 located at the end of the lower arm 1103 and connected to the lower arm 1103, and an articulated link 1175 connected to the lower arm 1103, the rotating link 1225, and the bucket cylinder 1160, the bucket 1095 and the rotating link 1225 rotate around the central axis X3 of the upper arm 1108 by extending and contracting the articulated link 1175 in response to the operation of the bucket cylinder 1160, as shown in FIG. 22 .

[0114] 22, the clamp 1238 is axially coupled to the lower arm 1103 near the central axis X3 of the upper arm 1108, and moves relative to the lower arm 1103 in response to the operation of the clamp cylinder 1234, rotating up and down.

Claims

1. a lower arm having a width that gradually increases from one end to the other end and having a fixing hole on an outer circumferential surface from the other end; a rotating arm base formed in a disk shape and positioned on the other end of the lower arm, the rotating arm base being rotatably fixed to the lower arm; an upper arm positioned on the rotating arm base and fixed to the rotating arm base, the upper arm having a guide hole on an outer circumferential surface thereof; a center joint surrounded by the lower arm, the rotating arm base, and the upper arm, and exposed to the outside through the fixing hole of the lower arm and the guide hole of the upper arm; a slip ring that is inserted into the center joint through the guide hole of the upper arm or separated from the center joint; The upper arm and the center joint In appearance, the width of a central space between the upper arm and the center joint in the guide hole of the upper arm, based on the uppermost end of the center joint, is larger than the diameters of two hydraulic lines.

2. The rotating arm base is a lower rotating table and an upper rotating table stacked in sequence on the lower arm; and a drive motor unit that rotates the lower rotating table relative to the upper rotating table, The excavation equipment according to claim 1 , wherein the lower arm and the upper arm are coupled via the lower rotating platform and the upper rotating platform, respectively.

3. The lower arm A seating hole is provided on a surface perpendicular to the longitudinal direction of the lower arm, The rotating arm base is When a lower turntable and an upper turntable are sequentially stacked, and a through hole passing through the central region of the lower turntable and the upper turntable is provided, The center joint is a joint housing inserted into a seating hole of the lower arm and fixed to the lower rotating base of the rotating arm base; 2. The drilling device according to claim 1, further comprising: a joint shaft inserted into the joint housing to rotate relative to the joint housing, and protruding toward the upper arm through the through-hole of the rotating arm base.

4. The slip ring is 2. The drilling rig according to claim 1, comprising: a fixed portion located outside the center joint; a rotating portion fitted to the fixed portion, located outside the center joint, and rotating relatively to the fixed portion; an input end starting from the rotating portion and extending toward one side of the rotating portion; and an output end starting from the rotating portion and extending toward the other side of the rotating portion.

5. The center joint is a joint housing and a joint shaft inserted into the joint housing; The slip ring is When the joint housing and the joint shaft are inserted into the joint housing while separated from the center joint, The output end of the slip ring the upper arm is inserted into the guide hole, passes through the joint shaft and the joint housing, is exposed to the fixing hole of the lower arm, and is then pulled outward from the fixing hole of the lower arm; The fixed portion and the rotating portion of the slip ring are the output end is partially inserted into the joint shaft while being guided toward the guide hole of the upper arm during tensioning; The input end of the slip ring is 5. The excavation equipment according to claim 4, wherein the output end starts from the rotating portion and extends toward the outside through the guide hole of the upper arm while being guided toward the guide hole of the upper arm together with the fixed portion and the rotating portion during pulling of the output end.

6. The center joint is a joint housing and a joint shaft inserted into the joint housing; The slip ring is When the center joint is separated from the joint housing and the joint shaft while being coupled to the center joint, The input end of the slip ring is The upper arm is pulled outward from the guide hole, The fixed portion and the rotating portion of the slip ring are During the pulling of the input end, the input end is separated from the joint shaft and guided toward the outside through the guide hole of the upper arm, The output end of the slip ring is 5. The drilling rig of claim 4, wherein the input end passes through the joint housing and the joint shaft sequentially and separates from the joint shaft during tensioning of the input end.

7. further comprising a fragment cover over the guide hole of the upper arm; The upper arm is The guide hole of the upper arm has a rounded peripheral portion on the center joint, and a plurality of connecting rings positioned on the rounded peripheral portion; The fragment cover is a coupling hole and a threaded member aligned with the coupling ring of the rounded periphery; The excavation equipment according to claim 1 , wherein a screw member is inserted into the coupling hole of the fragment cover and the coupling ring of the round peripheral portion to be screwed onto the upper arm.

8. further comprising a fragment cover over the guide hole of the upper arm; The upper arm is The guide hole of the upper arm has a rounded peripheral portion on the center joint, and a plurality of fitting grooves located on the rounded peripheral portion; The fragment cover is a fitting protrusion aligned with the fitting groove of the rounded periphery; The excavator according to claim 1 , wherein the fragment cover is fitted to the upper arm by inserting the fitting protrusions of the fragment cover into the fitting grooves of the round peripheral portion.

9. further comprising a fragment cover over the guide hole of the upper arm; The upper arm is The upper arm has a rounded periphery on the center joint of the guide hole, and two auxiliary hinges on the rounded periphery; The fragment cover is a primary hinge and hinge pin aligned with the two secondary hinges on the rounded periphery; 2. The excavating rig of claim 1, wherein the round periphery has a separate auxiliary hinge and the fragment cover has a main hinge, and the hinge pin is inserted into the main hinge and the round periphery has a main hinge, and the fragment cover is hinged to the upper arm.

10. further comprising a fragment cover over the guide hole of the upper arm; The upper arm is The upper arm has a rounded peripheral portion on the center joint of the guide hole, two auxiliary hinges located in a central region of the rounded peripheral portion, and two magnets located on both edges of the rounded peripheral portion; The fragment cover is a primary hinge and hinge pin aligned with the two secondary hinges on the rounded periphery; 2. The excavating rig according to claim 1, wherein the hinge pins are inserted into the individual auxiliary hinges of the round periphery and the main hinges of the fragment cover to be hingedly coupled to the upper arm and are attracted by the magnetic force of the individual magnets of the round periphery.

11. The upper arm is The upper arm has a rounded periphery located on the center joint of the guide hole on one side thereof, When the upper arm has an angular peripheral portion located on the center joint of the guide hole on the other side thereof, The guide holes in the round periphery are The excavation equipment according to claim 1 , wherein the guide hole in the angular peripheral portion between the center joint and the upper arm is larger than the guide hole in the angular peripheral portion based on the uppermost end of the center joint.

12. The upper arm is The upper arm has a rounded periphery located on the center joint of the guide hole on one side thereof, When the upper arm has an angular peripheral portion located on the center joint of the guide hole on the other side thereof, The rounded periphery is 2. The excavation equipment according to claim 1, wherein the upper arm is located deeper than the angular peripheral portion relative to the top end of the center joint and has the same curvature as a ceiling facing the center joint.

13. a bucket cylinder and a clamp cylinder located on one side and the other side of the lower arm, respectively, and rotatably fixed to the other end of the lower arm; a link structure located at the one end of the lower arm and rotatably fixed to the lower arm and the bucket cylinder; a tilt link located below the link structure and rotatably fixed to the link structure; a bucket below the tilt link and rotationally fixed to the tilt link; and The excavating rig according to claim 1 , further comprising a clamp located at the one end of the lower arm and rotatably fixed to the lower arm and the clamp cylinder.

14. An excavation device having a bucket, a lower arm, a rotating arm base, an upper arm, and a boom that are sequentially arranged toward a driver's seat at a work site and are rotatably coupled to one another, and having a bucket cylinder and an arm cylinder that are respectively positioned around the lower arm and the boom and are rotatably coupled to the bucket and the upper arm, The upper arm is When the boom connecting hole and the arm cylinder connecting hole are located on the rotating arm base, The lower arm is the arm cylinder coupling hole of the upper arm is perpendicularly passed through the arm cylinder coupling hole of the upper arm and is positioned on the central axis of the upper arm overlapping half or more of the length of the lower arm; The upper arm is the boom coupling hole portion is further protruded beyond the rotating arm base toward the side of the upper arm directly above the rotating arm base, The bucket cylinder is The bucket cylinder is rotatably attached to the lower arm via both sides thereof.

15. When an articulated link is provided between the bucket, the lower arm, and the bucket cylinder, The lower arm is The excavator according to claim 14 , wherein the upper arm is axially connected to the bucket and the articulated link in sequence along the longitudinal direction of the lower arm immediately adjacent to the central axis of the upper arm.

16. The bucket cylinder is It has a rod, a piston, and a cylinder, The cylinder is a head cover positioned directly below the rotating arm base, a tube connected to the head cover, a rod cover connected to the tube on the opposite side of the head cover, and a hanger for rotatably connecting the tube to the lower arm, The rod is a rod cover disposed inside and outside the tube, the rod cover being surrounded by the rod cover and moving relative to the cylinder; The piston is 15. The drilling rig of claim 14 located within the interior of the tube for movement with the rod.

17. When the vehicle has articulated links located on both sides of the lower arm and pivotally connected to the lower arm, The rod is 17. The excavation equipment according to claim 16, wherein the lower arm is axially connected to the articulated link and minimally exposed from the rod cover around the lower arm, thereby moving away from the central axis of the upper arm together with the articulated link, or is maximally exposed from the rod cover and moving closer to the central axis of the upper arm together with the articulated link.

18. The rod is When minimally exposed from the rod cover, The rod, the rod cover, the tube, and the head cover are The excavation equipment according to claim 16, wherein the rod, the rod cover, the tube, and the head cover are gradually moved away from the central axis of the upper arm in this order while the rod is being moved away from the central axis of the upper arm.

19. The rod is When maximally exposed from the rod cover, The rod, the rod cover, the tube, and the head cover are The excavation equipment according to claim 16, wherein the rod, the rod cover, the tube, and the head cover are gradually moved away from each other in this order while the rod is positioned on the central axis of the upper arm.

20. The lower arm When the tube has brackets on both sides, The hanger is a support portion having a cylindrical protruding piece that surrounds the tube and extends toward the bracket; The excavation equipment according to claim 16, further comprising: a locking portion that is bent on the bracket and surrounds the protruding piece together with the bracket, and that is screwed onto the bracket.

21. The rod is When minimally exposed from the rod cover, an articulated link rotatably connected to the bucket, the lower arm, and the bucket cylinder; The articulated link is the upper arm is axially connected to the lower arm immediately adjacent to the central axis; the upper arm is axially connected to the bucket at a position farther from the central axis than the lower arm is; The excavation equipment according to claim 16 , wherein the upper arm is axially connected to the rod of the bucket cylinder at a position farther from the central axis than the bucket is from the bucket cylinder.

22. The rod is When maximally exposed from the rod cover, an articulated link rotatably connected to the bucket, the lower arm, and the bucket cylinder; The articulated link is the upper arm is located immediately adjacent to the central axis of the upper arm, on the left and right sides of the central axis of the upper arm, and is axially connected to the lower arm and the rod; The excavator according to claim 16 , wherein the upper arm is axially connected to the bucket at a position farther from the central axis than the lower arm.

23. The rotating arm base is a lower rotating table and an upper rotating table stacked in order between the lower arm and the upper arm; the lower rotating table and the upper rotating table are fixed to the lower arm and the upper arm, respectively; rotating the lower rotary table relative to the upper rotary table; a center joint that penetrates the lower rotating base and the upper rotating base together with the lower arm; The center joint is The drilling rig of claim 14 located on the central axis of the upper arm.

24. The upper arm is The upper arm has a slip inlet / outlet hole, the boom connecting hole, and the arm cylinder connecting hole on the lower, middle, and upper sides thereof, The lower arm and the rotating arm base are When the upper arm has a center joint on the central axis, The slip inlet / outlet hole portion of the upper arm is The drilling rig according to claim 14 , wherein the center joint is exposed to the outside on the central axis of the upper arm to induce slip joining to or separation from the center joint.

25. The upper arm is When the upper arm has a slip inlet / outlet hole, the boom connecting hole, and the arm cylinder connecting hole on the lower, middle, and upper sides, The slip inlet / outlet hole portion of the upper arm is The excavation equipment according to claim 14, which is located on the central axis of the upper arm and is located at the same level as the boom coupling hole in a direction perpendicular to the central axis of the upper arm.

26. The upper arm is When the upper arm has a slip inlet / outlet hole, the boom connecting hole, and the arm cylinder connecting hole on the lower, middle, and upper sides, The excavation equipment according to claim 14 , wherein the slip inlet / outlet hole portion and the arm cylinder coupling hole portion of the upper arm are positioned on the central axis of the upper arm.

27. When the bucket and the lower arm are connected to a rotating link, the bucket cylinder is located on one side of the lower arm and connected to the lower arm, a clamp cylinder is located on the other side of the lower arm and connected to the lower arm, a clamp is located at an end of the lower arm and connected to the lower arm, and an articulated link is connected to the lower arm, the rotating link, and the bucket cylinder, The bucket and the rotating link are The articulated link is extended and contracted in response to the operation of the bucket cylinder, thereby rotating around the central axis of the upper arm, The clamp is The excavation equipment according to claim 14, wherein the upper arm is axially coupled to the lower arm near the central axis thereof, and moves relative to the lower arm and rotates up and down in response to operation of the clamp cylinder.

Citation Information

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