Table type efficient compressing and packing device
The tabletop high-efficiency compression and packaging device automatically compresses life rafts by combining a frame, compression bags, straps, and a drive mechanism, solving the problem of low efficiency in manual compression and achieving highly efficient automated compression and positioning.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-14
- Publication Date
- 2026-03-27
AI Technical Summary
In existing technologies, the compression and packing of life rafts mainly relies on manual labor, which is inefficient.
The system employs a tabletop high-efficiency compression and packaging device, which includes a frame, compression bags, straps, mounting rods, compression rollers, and a drive mechanism. The drive mechanism drives the mounting rods and compression rollers to move in coordination, automatically completing the compression of the life raft.
It improved the efficiency of life raft compression and packaging, reduced manual operation, and achieved automated compression and positioning, thereby increasing production efficiency.
Smart Images

Figure CN224045543U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The application relates to the field of life raft packing equipment, in particular to a table type efficient compression packing device. BACKGROUND
[0002] A life raft is a lifesaving facility and equipment provided on a ship for emergency escape from a dangerous area or emergency evacuation from a sinking ship. The inflatable life raft has the advantages of small storage volume, light weight and strong wind and wave resistance of flexible structure. The pressure release device is a trigger device of the inflatable life raft. When the ship sinks to a certain depth underwater, the pressure release device will automatically trigger the knife to cut the fixing rope between the inflatable life raft and the ship body under the action of water pressure, and then the life raft will float to the water surface and automatically inflate and form.
[0003] In the prior art, the life raft needs to be compressed after being wound up during the production and processing of the life raft so as to facilitate subsequent packaging. However, the common life raft packaging mainly relies on manual compression, and the manual compression of the life raft has low packaging efficiency and needs to be improved. CONTENT OF THE INVENTION
[0004] In order to improve the efficiency of compressing and packaging the life raft, the application provides a table type efficient compression packing device.
[0005] The table type efficient compression packing device provided by the application adopts the following technical scheme:
[0006] A table type efficient compression packing device, comprising a rack, a compression bag and two mounting rods, two groups of cross-bound belts are fixedly connected to the two sides of the compression bag, two connecting plates are fixedly connected to the rack, two horizontal sliding holes are respectively formed in the two connecting plates;
[0007] Two groups of the cross-bound belts are respectively sleeved on the two mounting rods, the two ends of the two mounting rods are respectively slidably installed in the two sliding holes, and a first driving mechanism for driving the two mounting rods to move close to or away from each other is fixedly installed on the rack;
[0008] A plurality of compression rollers are slidably installed on the rack, the plurality of compression rollers are located outside the compression bag, and a second driving mechanism for driving the plurality of compression rollers to slide towards or away from the compression bag is fixedly connected to the rack.
[0009] By adopting the above technical scheme, in the actual production and processing process, the operator can spread the compression bag, place the uninflated life raft on the top of the compression bag after preliminary winding, then the operator can cross the two groups of binding belts on the two sides of the compression bag, and then insert the two installation rods into the two groups of binding belts, then the operator can transfer the compression bag wrapped with the life raft to the rack, so that the compression bag is placed in the middle of the plurality of compression rollers, and the two ends of the two installation rods are respectively inserted through the transverse sliding hole and connected with the first driving mechanism; after the connection of the installation rod is completed, the first driving mechanism drives the two installation rods to slide away from each other, at the same time, the second driving mechanism drives the plurality of compression rollers to slide towards the center, and the two groups of mutually crossed binding belts are tightened, so that the life raft in the compression bag is compressed, and the two groups of binding belts are fixed, so that the compression operation of the life raft is completed, which is more efficient than the manual compression of the life raft.
[0010] Preferably, the two sides of the rack are respectively fixedly connected with two vertical plates, two connection seats are respectively slidably connected on the two vertical plates, a first shaft rod is fixedly connected on the connection seat, two connection arms are rotatably connected on the first shaft rod, and over rod holes for the installation rod to pass through are respectively formed in the ends of the two connection arms away from the connection seat.
[0011] The first driving mechanism comprises two telescopic cylinders, the cylinder bodies of the two telescopic cylinders are fixedly installed on the rack, and the cylinder shafts of the two telescopic cylinders are respectively fixedly connected with the two connection seats.
[0012] By adopting the above technical scheme, after the operator places the compression bag in the plurality of compression rollers, the end of the installation rod extending out of the sliding hole is connected with the connection arm. By extending the cylinder shafts of the two telescopic cylinders, the connection seat is driven to slide upwards, and the two installation rods and the two groups of binding belt ends are driven to slide away from each other by rotating the connection arm installed on the connection seat. At the same time, the second driving mechanism synchronously drives the plurality of compression rollers to move towards the center, so as to compress the life raft in the compression bag while tightening the compression bag by the two installation rods, thereby achieving the technical effect of automatically compressing the life raft.
[0013] Preferably, a longitudinal sliding hole is formed in the vertical plate in the axial direction, the two first shaft rods are respectively slidably installed in the two longitudinal sliding holes, and the end of the first shaft rod extending out of the longitudinal sliding hole is fixedly connected with an anti-disengagement part.
[0014] By adopting the above technical scheme, the first shaft rod is slidably installed in the longitudinal sliding hole, so that the sliding track of the first shaft rod and the connection seat is limited, thereby improving the stability of the sliding action of the connection seat.
[0015] Preferably, the mounting seat is fixedly connected to the rack, the mounting seat comprises two side plates, a first disc and a second disc are rotatably installed on the outer sides of the two side plates respectively, the first disc and the second disc are oppositely arranged, a plurality of connecting holes are formed through the first disc and the second disc respectively, the plurality of connecting holes are rotationally symmetrically arranged, and the second shaft rods at the two ends of the compression roller are slidably installed in the connecting holes respectively.
[0016] The second driving mechanism comprises a servo motor and a transmission rod, the transmission rod is rotatably installed on the two side plates, driving wheels are fixedly connected to the two ends of the transmission rod respectively, the body of the servo motor is fixedly installed on the inner wall of the side plate, a driving wheel is installed at the end of the driving shaft of the servo motor through a shaft coupling, a first synchronous belt is connected between the driving wheel and the driving wheel, a second synchronous belt is connected between the driving wheel and the first disc, and a third synchronous belt is connected between the driving wheel and the second disc.
[0017] By adopting the above technical scheme, in the process of compressing the life raft, the servo motor drives the driving wheel and the first synchronous belt to drive the driving wheel to rotate, the driving wheel can synchronously drive the transmission rod and the driven wheel to rotate, and then the first disc and the second disc can be driven to rotate through the second synchronous belt and the third synchronous belt, the first disc and the second disc rotate to drive the compression roller to move centripetally along the connecting hole, and the compression roller compresses the life raft in the compression bag. When the compression process is completed, the servo motor drives the first disc and the second disc to reverse, drives the compression roller to move centrifugally, releases the compression bag, and facilitates the operator to take the compression bag from the rack.
[0018] Preferably, the binding belt is fixedly connected with a fixing cloth, and a plug hole is formed between the fixing cloth and the binding belt, and a locking steel wire is inserted in the plug hole.
[0019] By adopting the above technical scheme, the two groups of binding belts can be positioned after the compression process of the life raft is completed through the locking steel wire, so that the operator is prevented from positioning the life raft in the compression bag through bundling or other methods.
[0020] Preferably, one end of the locking steel wire is integrally formed with a bending portion, and a holding portion is fixedly connected to the end of the bending portion.
[0021] By adopting the above technical scheme, the holding portion on the bending portion can facilitate the subsequent process of extracting the locking steel wire in the process of separating the compression bag.
[0022] In summary, the desktop efficient compression and packaging device has at least one of the following beneficial technical effects:
[0023] 1. In the actual production process, the operator can spread the compression bag, place the uninflated life raft on the top of the compression bag after preliminary winding, then the operator can cross the two groups of belts on both sides of the compression bag, and then insert the two installation rods into the two groups of belts, then the operator can move the compression bag wrapped with the life raft to the rack, so that the compression bag is placed in the middle of the plurality of compression rollers, and the two ends of the two installation rods are respectively inserted through the transverse sliding hole and connected with the first driving mechanism; after the connection of the installation rod is completed, the first driving mechanism drives the two installation rods to slide away from each other, at the same time, the second driving mechanism drives the plurality of compression rollers to slide towards the center, and the two groups of crossed belts are tightened, so that the life raft in the compression bag is compressed, and the two groups of belts are fixed, that is, the compression operation of the life raft is completed, which is more efficient than the manual compression of the life raft.
[0024] 2. By locking the steel wire, the two groups of belts can be positioned after the compression treatment of the life raft is completed, so that the operator can position the life raft in the compression bag by lashing. BRIEF DESCRIPTION OF DRAWINGS
[0025] Figure 1 is a schematic view of the overall structure of the compression and packaging device according to the embodiment of the present application.
[0026] Figure 2 is a schematic view of the connection structure between the driven wheel and the second disc according to the embodiment of the present application.
[0027] Figure 3 is a schematic view of the overall structure of the connecting seat according to the embodiment of the present application.
[0028] Figure 4 is Figure 2 is an enlarged schematic view of position A in FIG. 6, mainly used to show the mounting structure of the locking steel wire.
[0029] BRIEF DESCRIPTION OF DRAWINGS 1. rack; 11, connecting plate; 12, transverse sliding hole; 13, compression roller; 131, second shaft; 14, vertical plate; 141, longitudinal sliding hole; 15, connecting seat; 151, first shaft; 152, connecting arm; 16, mounting seat; 161, side plate; 17, first disc; 171, connecting hole; 18, second disc; 2, compression bag; 21, belt; 22, fixing cloth; 3, installation rod; 4, first driving mechanism; 41, telescopic cylinder; 5, second driving mechanism; 51, servo motor; 52, transmission rod; 53, driving wheel; 54, driven wheel; 55, first synchronous belt; 56, second synchronous belt; 57, third synchronous belt; 6, locking steel wire; 61, holding part. DETAILED DESCRIPTION
[0030] The following will be described in detail Figures 1-4The application is further described in detail.
[0031] Embodiment
[0032] The embodiment of the application discloses a desktop efficient compression packaging device. Figures 1-4 , comprising a rack 1, a compression bag 2 and two mounting rods 3, two groups of mutually intersecting binding belts 21 are fixedly connected on the two sides of the compression bag 2, two connecting plates 11 are fixedly connected on the rack 1, and two transverse sliding holes 12 are respectively formed in the two connecting plates 11.
[0033] The two groups of binding belts 21 are respectively sleeved on the two mounting rods 3, the two ends of the two mounting rods 3 are respectively slidably installed in the two sliding holes, and a first driving mechanism 4 for driving the two mounting rods 3 to move close to or away from each other is fixedly installed on the rack 1.
[0034] A plurality of compression rollers 13 are slidably installed on the rack 1, the plurality of compression rollers 13 are located outside the compression bag 2, and a second driving mechanism 5 for driving the plurality of compression rollers 13 to slide towards the direction close to or away from the compression bag 2 is fixedly connected on the rack 1.
[0035] In the actual production and processing process, the operator can spread the compression bag 2, place the un-inflated life raft on the compression bag 2 after preliminary winding, then the operator can cross the two groups of binding belts 21 on the two sides of the compression bag 2, and then insert the two mounting rods 3 into the two groups of binding belts 21, then the operator can transfer the compression bag 2 wrapped with the life raft to the rack 1, so that the compression bag 2 is located in the middle of the plurality of compression rollers 13, the two ends of the two mounting rods 3 are respectively inserted through the transverse sliding holes 12 and connected with the first driving mechanism 4; after the connection of the mounting rod 3 is completed, the first driving mechanism 4 drives the two mounting rods 3 to slide towards the direction away from each other, at the same time, the second driving mechanism 5 drives the plurality of compression rollers 13 to slide towards the center, the two groups of mutually intersecting binding belts 21 are tightened, so that the life raft in the compression bag 2 is compressed, and the two groups of binding belts 21 are fixed, so that the compression operation of the life raft is completed, and the efficiency is higher than that of the manual compression of the life raft.
[0036] Refer to Figure 1 , Figure 2 and Figure 3The left and right sides of the rack 1 are respectively fixedly connected with two vertical plates 14, two connecting seats 15 are respectively slidably connected on the two vertical plates 14, a first shaft rod 151 is fixedly connected on the connecting seat 15, two connecting arms 152 are rotatably connected on the first shaft rod 151, the ends of the two connecting arms 152 away from the connecting seat 15 respectively penetrate through a through rod hole for the installation rod 3 to pass through, and the ends of the installation rod 3 penetrating through the sliding hole are respectively detachably installed in the through rod hole; the first driving mechanism 4 comprises two telescopic cylinders 41, the cylinder bodies of the two telescopic cylinders 41 are fixedly installed on the left and right sides of the rack 1, and the cylinder shafts of the two telescopic cylinders 41 are respectively fixedly connected with the two connecting seats 15.
[0037] After the operator places the compression bag 2 in the plurality of compression rollers 13, the end of the installation rod 3 extending out of the sliding hole can be connected with the connecting arm 152. By extending the cylinder shaft of the two telescopic cylinders 41, the connecting seat 15 can be driven to slide upwards, and by rotating the connecting arm 152 installed on the connecting seat 15, the two installation rods 3 and the two groups of binding belts 21 can be driven to slide in the direction away from each other, at the same time, the second driving mechanism 5 synchronously drives the plurality of compression rollers 13 to move towards the center, so that the life raft in the compression bag 2 can be compressed, and at the same time, the compression bag 2 can be tightened by the two installation rods 3, thereby realizing the technical effect of automatically compressing the life raft.
[0038] Referring to Figure 1 With Figure 2 The vertical plate 14 penetrates an axial direction to form a longitudinal sliding hole 141, the two first shaft rods 151 are respectively slidably installed in the two longitudinal sliding holes 141, and the ends of the first shaft rods 151 extending out of the longitudinal sliding holes 141 are all fixedly connected with anti-dropping parts.
[0039] The first shaft rod 151 is slidably installed in the longitudinal sliding hole 141, so that the sliding track of the first shaft rod 151 and the connecting seat 15 is limited, thereby improving the stability of the sliding action of the connecting seat 15.
[0040] Referring to Figure 1 With Figure 2 The rack 1 is fixedly connected with a mounting seat 16, the mounting seat 16 comprises two side plates 161, the outer sides of the two side plates 161 are respectively rotatably installed with a first disc 17 and a second disc 18, the first disc 17 and the second disc 18 are oppositely arranged, and a plurality of connecting holes 171 are respectively penetrated through the first disc 17 and the second disc 18, the plurality of connecting holes 171 are rotationally symmetrically arranged, and the second shaft rods 131 at the two ends of the compression roller 13 are respectively slidably installed in the connecting holes 171.
[0041] The second driving mechanism 5 comprises a servo motor 51 and a transmission rod 52. The transmission rod 52 is rotatably installed on the two side plates 161. The two ends of the transmission rod 52 are fixedly connected with a driving wheel 53 and a driven wheel 54, respectively. The body of the servo motor 51 is fixedly installed on the inner wall of the side plate 161. The driving shaft end of the servo motor 51 is installed with a driving wheel through a shaft coupling. The driving wheel and the driving wheel 53 are connected with a first synchronous belt 55. The driving wheel 53 and the first disc 17 are connected with a second synchronous belt 56. The driven wheel 54 and the second disc 18 are connected with a third synchronous belt 57.
[0042] The servo motor 51 is arranged close to the first disc 17. The cylinder body of the servo motor 51 is installed on the side of the side plate 161 away from the vertical plate.
[0043] During the compression of the life raft, the servo motor 51 drives the driving wheel, the first synchronous belt 55, the driving wheel 53, the transmission rod 52, the driven wheel 54, the second synchronous belt 56, the first disc 17, the third synchronous belt 57, the second disc 18, the compression roller 13, and the compression bag 2 to rotate. When the compression is completed, the servo motor 51 drives the first disc 17 and the second disc 18 to reverse, drives the compression roller 13 to move in a centrifugal manner, releases the compression bag 2, and facilitates the operator to take the compression bag 2 off the rack 1.
[0044] It should be noted that in the embodiment, six connecting holes are arranged on the first disc and the second disc, respectively. The six connecting holes are rotationally symmetric about the center of the first disc or the second disc, and the axis of the connecting hole deviates from the centripetal axis of the first disc or the second disc.
[0045] Referring to Figure 2 With Figure 4 The fixing cloth 22 and the binding belt 21 are both formed with a plug hole. The locking steel wire 6 is inserted in the plug hole.
[0046] Through the locking steel wire 6, the two groups of binding belts 21 can be positioned after the compression of the life raft is completed, so that the operator can position the life raft in the compression bag 2 through bundling or other methods.
[0047] Referring to Figure 4 One end of the locking steel wire 6 is integrally formed with a bending portion. The end of the bending portion is fixedly connected with a holding portion 61. Through the holding portion 61 on the bending portion, the locking steel wire 6 can be extracted in the subsequent process of separating the compression bag 2.
[0048] The implementation principle of the embodiment of the efficient table type compression and packaging device is as follows: in the actual production and processing process, the operator can spread the compression bag 2, place the un-inflated life raft on the upper side of the compression bag 2 after preliminary winding, then the operator can cross the two groups of binding belts 21 on the two sides of the compression bag 2, and then insert the two mounting rods 3 into the two groups of binding belts 21, then the operator can transfer the compression bag 2 wrapped with the life raft to the rack 1, so that the compression bag 2 is placed in the middle of the plurality of compression rollers 13, and the two ends of the two mounting rods 3 are respectively inserted through the transverse sliding hole 12 and connected with the first driving mechanism 4; after the connection of the mounting rod 3 is completed, the first driving mechanism 4 drives the two mounting rods 3 to slide away from each other, at the same time, the second driving mechanism 5 drives the plurality of compression rollers 13 to slide towards the center, the two groups of cross binding belts 21 are tightened, so that the life raft in the compression bag 2 is compressed, and the two groups of binding belts 21 are fixed, that is, the compression operation of the life raft is completed, which is more efficient than the manual compression of the life raft.
[0049] The above are preferred embodiments of the present application, and are not sequentially limited to the protection scope of the present application, therefore: any equivalent changes made according to the structure, shape and principle of the present application should be covered within the protection scope of the present application.
Claims
1. A benchtop high efficiency compression packing device, characterized in that, Including frame (1), compression bag (2) and two installation rods (3), two sides of the compression bag (2) are fixedly connected with two groups of cross lacing (21), two connecting plates (11) are fixedly connected on the frame (1), two transverse sliding holes (12) are respectively formed in the two connecting plates (11); Two groups of the lacing (21) are respectively sleeved on the two installation rods (3), the two ends of the two installation rods (3) are respectively slidably installed in the two sliding holes, and a first driving mechanism (4) for driving the two installation rods (3) to move close to or away from each other is fixedly installed on the frame (1); A plurality of compression rollers (13) are slidably installed on the frame (1), and the plurality of compression rollers (13) are located outside the compression bag (2), and a second driving mechanism (5) for driving the plurality of compression rollers (13) to slide towards the direction close to or away from the compression bag (2) is fixedly connected on the frame (1).
2. A table top high efficiency compression baling apparatus as claimed in claim 1 wherein, Two vertical plates (14) are respectively fixedly connected on the two sides of the frame (1), a connecting seat (15) is slidably connected on the two vertical plates (14), a first shaft rod (151) is fixedly connected on the connecting seat (15), two connecting arms (152) are rotatably connected on the first shaft rod (151), and a through rod hole is respectively formed in the ends of the two connecting arms (152) away from the connecting seat (15) for the installation rod (3) to pass through, and the ends of the installation rod (3) passing through the sliding hole are detachably installed in the through rod hole. The first driving mechanism (4) comprises two telescopic cylinders (41), the cylinders of the two telescopic cylinders (41) are fixedly installed on the frame (1), and the cylinder shafts of the two telescopic cylinders (41) are fixedly connected with the two connecting seats (15).
3. A table top high efficiency compression baling apparatus as claimed in claim 2, wherein, An axial longitudinal sliding hole (141) is formed in the vertical plate (14), the two first shaft rods (151) are slidably installed in the two longitudinal sliding holes (141), and the ends of the first shaft rods (151) extending out of the longitudinal sliding hole (141) are fixedly connected with anti-disengagement portions.
4. A table top high efficiency compression baling apparatus as claimed in claim 3 wherein, An installation seat (16) is fixedly connected on the frame (1), the installation seat (16) comprises two side plates (161), a first disc (17) and a second disc (18) are rotatably installed on the outer sides of the two side plates (161), the first disc (17) and the second disc (18) are oppositely arranged, a plurality of connecting holes (171) are respectively formed in the first disc (17) and the second disc (18), the plurality of connecting holes (171) are rotationally symmetrically arranged, and second shaft rods (131) at the two ends of the compression roller (13) are slidably installed in the connecting holes (171). The second driving mechanism (5) includes a servo motor (51) and a transmission rod (52), both ends of the transmission rod (52) are fixedly connected with a driving wheel (53) and a driven wheel (54) respectively, the body of the servo motor (51) is fixedly installed on the inner wall of the side plate (161), the driving shaft end of the servo motor (51) is installed with a driving wheel through a shaft coupling, the driving wheel and the driving wheel (53) are connected with a first synchronous belt (55), the driving wheel (53) and the first disc (17) are connected with a second synchronous belt (56), and the driven wheel (54) and the second disc (18) are connected with a third synchronous belt (57).
5. A table top high efficiency compression baling apparatus as claimed in claim 4 wherein, The fixing cloth (22) and the binding belt (21) are formed with a bushing therebetween, and the bushing is inserted with a locking steel wire (6).
6. A table top high efficiency compression baling apparatus as claimed in claim 5 wherein, One end of the locking steel wire (6) is integrally formed with a bending portion, and the end of the bending portion is fixedly connected with a holding portion (61).