Bone soup seasoning cooking preparation device
By using a concentration tank with heating and negative pressure devices in a bone broth seasoning cooking device, combined with a feeding module and a separation module, and utilizing a screw conveyor and guide channel to quickly remove grease, the problem of low processing efficiency in existing technologies is solved, achieving efficient grease removal and ice recycling.
Patent Information
- Application Number
- CN202411060420.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-05
- Publication Date
- 2026-01-06
- Estimated Expiration
- 2044-08-05
AI Technical Summary
Existing bone broth seasoning cooking equipment requires a settling and separation process to remove grease, which prolongs the processing cycle and reduces processing efficiency.
The concentration tank, which uses a heating device and a negative pressure device, combined with a feeding module, a screw conveyor, a guide channel and a separation module, achieves rapid removal of grease by adding ice to the bone broth and using the screw conveyor to remove the ice with attached grease, and then using the separation module to peel off the grease.
The processing cycle of bone broth seasoning is shortened, processing efficiency is improved, and ice can be recycled, saving preparation time and enhancing the practicality of the device.
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Figure CN118614635B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of food processing equipment technology, and in particular to a bone broth seasoning preparation apparatus. Background Technology
[0002] Bone broth seasoning is a condiment used to enhance the flavor of food. It is typically made from raw materials such as beef bones, chicken bones, and pork bones through a simmering and concentration process. This type of seasoning is rich in protein, minerals, and other nutrients, and can add a rich meaty aroma and umami flavor to dishes.
[0003] In the prior art, Chinese utility model patent with authorization announcement number CN218793887U proposes a bone broth seasoning simmering and extraction preparation device. The technical solution is as follows: a rotating shaft is fixedly connected to the lower end of a drive motor; vertical strips are integrally formed on the outer wall of the rotating shaft; a spice placement part is fixedly connected to the lower end of the rotating shaft; a liquid outlet hole is opened on the outer wall of the spice placement part; a stirring and pressing assembly is sleeved on the outer wall of the rotating shaft; the stirring and pressing assembly includes a connecting part, inclined stirring blades, and a pressing plate; a sliding groove is opened on the connecting part, corresponding to the rotating shaft and vertical strips; the stirring blades are welded to the outside of the connecting part; and the pressing plate is welded to the lower end of the connecting part. When the drive motor drives the stirring and pressing assembly to rotate, the inclined stirring blades provide downward pressure during stirring, and since the stirring and pressing assembly is sliding, the pressing plate can press the spices in the spice placement part, thereby allowing the flavor of the spices to be released more quickly and effectively, reducing the amount of spices used.
[0004] Bone broth seasonings produce a large amount of oil during the simmering process. For the aforementioned bone broth seasoning simmering and extraction preparation device, it is usually necessary to let the bone broth stand for a period of time until the oil and broth separate into layers before separating and removing the upper layer of oil. This will significantly extend the processing cycle of bone broth seasonings, thereby reducing the processing efficiency of the device. Summary of the Invention
[0005] To address the technical problem of low processing efficiency in existing technologies, this invention provides a bone broth seasoning cooking and preparation apparatus, including a concentration tank equipped with a heating device and a negative pressure device, and a top cover, and further comprising: a feeding module, a screw conveyor, a guide channel, and a separation module;
[0006] The concentration tank contains pre-stored bone broth awaiting processing;
[0007] The top cover is located at the top port of the concentration tank and is used to seal the top port of the concentration tank;
[0008] The feeding module is located on the top cover and is used to add ice to the bone broth;
[0009] A screw conveyor is installed on the top cover to retrieve ice cubes that have absorbed oil from the bone broth;
[0010] The separation module is installed on the concentration tank to remove the grease adsorbed by the ice.
[0011] The guide channel is fixedly installed on the top of the cover. The input end of the guide channel is connected to the screw conveyor, and the output end of the guide channel is connected to the separation module for conveying ice blocks.
[0012] Furthermore, the feeding module includes: a feeding hopper, a feeding valve, a buffer hose, a first winding device, and a first traction rope;
[0013] The feeding funnel is fixedly installed on the top of the top cover, and the output end of the feeding funnel passes through the top cover and communicates with the inner cavity of the concentration tank for conveying ice blocks;
[0014] The feeding valve is located at the output end of the feeding funnel and is used to control the opening and closing of the output end of the feeding funnel;
[0015] A buffer hose is fixedly installed at the output end of the feeding funnel, and the top end of the buffer hose is connected to the output end of the feeding funnel to transport ice blocks;
[0016] The first winding device is fixedly installed on the top cover and is located in the inner cavity of the concentration tank;
[0017] One end of the first traction rope is fixedly connected to the bottom end of the buffer hose, and the other end of the first traction rope is connected to the first winding device for pulling the bottom end of the buffer hose.
[0018] Furthermore, the screw conveyor includes: an outer conveying cylinder, several inlet ports, several outlet ports, an auger, an assembly assembly, and a drive assembly;
[0019] The outer conveyor cylinder is rotatably mounted on the top cover. The outer conveyor cylinder is vertically mounted, and the top end of the outer conveyor cylinder protrudes from the top surface of the top cover.
[0020] Several inlets are opened on the circumferential side wall of the outer conveying cylinder, and several inlets are located at the bottom of the outer conveying cylinder. Any one of the inlets connects the concentrator and the inner cavity of the outer conveying cylinder.
[0021] Several output ports are opened on the circumferential side wall of the outer conveying cylinder, and several output ports are located at the top of the outer conveying cylinder. Any one of the output ports penetrates the outer wall of the outer conveying cylinder and communicates with the inner cavity of the outer conveying cylinder.
[0022] The auger is installed inside the outer conveying cylinder. The bottom end of the auger is rotatably connected to the bottom wall of the inner cavity of the outer conveying cylinder. The auger and the outer conveying cylinder share the same central axis and are used to convey ice blocks.
[0023] The assembly components are mounted on the top cover, and their positions are matched with the top of the outer conveyor cylinder;
[0024] The drive assembly is mounted on the assembly assembly. The drive assembly connects the outer conveyor cylinder and the conveyor auger and is used to drive the outer conveyor cylinder and the auger to rotate in opposite directions.
[0025] Furthermore, the assembly assembly includes: a first assembly housing, a first discharge port, a second assembly housing, and a second discharge port;
[0026] The first assembly housing is fastened to the top of the conveying outer cylinder, the bottom of the first assembly housing is fixedly connected to the top cover, and the outer contour shape of the first assembly housing is a cylinder.
[0027] The first discharge port is located on the circumferential side wall of the first assembly housing. The first discharge port is connected to the inner cavity of the first assembly housing. When the screw conveyor outputs ice blocks, the position of the first discharge port matches that of one of the output ports.
[0028] The second assembly housing is fitted onto the first assembly housing. The bottom of the second assembly housing is rotatably connected to the top cover. The inner cavity shape of the second assembly housing matches the outer contour shape of the first assembly housing. The inner surface of the second assembly housing is in close contact with the outer surface of the first assembly housing.
[0029] The second discharge port is located on the circumferential side wall of the second assembly housing. The second discharge port passes through the outer wall of the second assembly housing and communicates with the inner cavity of the second assembly housing. When the screw conveyor outputs ice blocks, the position of the second discharge port matches that of the first discharge port, and the second discharge port is connected to the input end of the guide channel.
[0030] Furthermore, the drive assembly includes: a baffle, an internal gear ring, a drive gear, a driven gear, and a motor;
[0031] The baffle is fixedly installed at the top of the auger;
[0032] The internal gear ring is fixedly installed on the inner wall of the outer conveying cylinder. The internal gear ring is the same as the central axis of the outer conveying cylinder. The internal gear ring is located between the baffle and the top wall of the inner cavity of the first assembly housing, and is used to drive the outer conveying cylinder to rotate.
[0033] The drive gear is rotatably mounted on the top wall of the inner cavity of the first assembly housing. The bottom of the drive gear passes through the baffle and is fixedly connected to the top of the auger to drive the auger to rotate.
[0034] The motor is fixedly mounted on the top of the first assembly housing, and the output end of the motor passes through the outer wall of the first assembly housing and is connected to the drive gear to drive the drive gear to rotate.
[0035] The driven gear is rotatably mounted on the top wall of the inner cavity of the first assembly housing. The driven gear meshes with the driving gear and with the internal gear ring, and is used to drive the internal gear ring to rotate in the opposite direction to the driving gear.
[0036] Furthermore, the screw conveyor also includes: a salvage assembly, a drive shaft, and several agitators;
[0037] The retrieval assembly is installed inside the concentration tank and is connected to the top cover and the outer conveying cylinder. It is used to retrieve ice from the bone broth.
[0038] The drive shaft is fixedly installed at the bottom of the outer conveying cylinder, and the drive shaft is the same as the central axis of the outer conveying cylinder;
[0039] Several stirring paddles are fixedly mounted on the circumferential sidewall of the drive shaft, with any one of the stirring paddles positioned radially along the concentration tank for stirring the bone broth.
[0040] Furthermore, the salvage assembly includes: a salvage plate, assembly holes, several screen holes, several second winding devices, several second traction ropes, several guide protrusions, and several guide grooves;
[0041] The retrieval plate is movably installed inside the concentrator. The retrieval plate is conical in shape, and its circumferential edge curves upward toward the top port of the concentrator. The difference between the outer diameter of the retrieval plate and the inner diameter of the concentrator is smaller than the outer diameter of the ice block.
[0042] Several sieve holes are evenly distributed on the scooping plate, and the inner diameter of any sieve hole is smaller than the outer diameter of the ice block.
[0043] The assembly hole is located in the center of the retrieval plate, and the retrieval plate is movably fitted onto the outer conveying cylinder through the assembly hole;
[0044] Several second winding devices are fixedly installed on the top cover, and several second winding devices are located in the inner cavity of the concentration tank;
[0045] One end of several second traction ropes is connected to several second winding devices, and the other end of several second traction ropes is fixedly connected to the circumferential edge of the salvage plate for hoisting the salvage plate;
[0046] Several guide protrusions are fixedly installed on the circumferential side wall of the outer conveying cylinder. The top of any guide protrusion is located below several inlets, the top of any guide protrusion is located above the surface of the bone broth, the bottom of any guide protrusion is located below the surface of the bone broth, and any guide protrusion is spirally arranged along the circumferential direction of the outer conveying cylinder.
[0047] Several guide grooves are formed on the circumferential edge of the retrieval plate. One of the guide grooves is slidably connected to one of the guide protrusions. When the guide groove is at the top of the guide protrusion, the retrieval plate is connected to several input ports.
[0048] Furthermore, the separation module includes: a feeding hopper, a conveying pipe, and a stripping assembly;
[0049] The ice cubes are spherical.
[0050] The feeding funnel is fixedly installed on the circumferential side wall of the concentration tank, and the input end of the feeding funnel is connected to the output end of the guide channel;
[0051] The conveying pipe is fixedly installed on the circumferential side wall of the concentrator. The inlet end of the conveying pipe is connected to the outlet end of the discharge funnel. The outlet end of the conveying pipe is located below the inlet end of the conveying pipe. The conveying pipe is spirally arranged around the concentrator.
[0052] The stripping assembly is installed on the delivery pipe to strip the grease adsorbed by the ice.
[0053] Furthermore, the stripping assembly includes: a first screen plate, several elastic ropes, an oil distribution tank, a conveying chamber, an oil storage chamber, a ventilation chamber, a separation window, a second screen plate, a ventilation window, an air pump, an input port, an output port, and a material bin;
[0054] The first screen plate is fixedly installed on the inner wall of the conveying pipe. The first screen plate divides the inner cavity of the conveying pipe into a stripping chamber and a guiding chamber. The guiding chamber is located below the stripping chamber. The stripping chamber is used to transport ice blocks.
[0055] Several elastic ropes are set in the peeling chamber. One end of the elastic rope is fixedly connected to the inner wall of the conveying pipe, and the other end of the elastic rope is fixedly connected to the first sieve plate. The distance between any elastic rope and the inner wall of the conveying pipe is less than the outer diameter of the ice block. The distance between any elastic rope and the first sieve plate is less than the outer diameter of the ice block. The central axes of any adjacent elastic ropes are not coplanar. This is used to peel off the grease adsorbed by the ice block.
[0056] The oil distribution tank is located at the output end of the delivery pipe;
[0057] The conveying chamber is located inside the oil separator and is used to convey ice blocks;
[0058] The oil storage chamber is located inside the oil distributor tank, below the transmission chamber;
[0059] The ventilation chamber is located inside the oil separator and is situated on one side of the oil storage chamber;
[0060] The separation window is located on the bottom wall of the inner cavity of the transfer cavity, and the separation window is connected to the oil storage cavity;
[0061] The second sieve plate is embedded in the separation window;
[0062] The ventilation window is located on the inner wall of the ventilation cavity and is connected to the top of the inner cavity of the oil storage cavity.
[0063] The air pump is fixedly installed on the outer wall of the oil separator. The air pump's suction end penetrates the outer wall of the oil separator and communicates with the ventilation chamber, thus drawing air from the ventilation chamber.
[0064] The input port is located on one side wall of the oil separator, and is connected to one end of the conveying chamber and the output end of the conveying pipe.
[0065] The output port is located on one side wall of the oil separator, and the output port is connected to the other end of the transmission chamber. The output port is set opposite to the input port.
[0066] The feed hopper is located on the outside of the concentration tank. The top opening of the feed hopper is connected to the output port. The feed hopper is pre-filled with aqueous solution to collect ice.
[0067] Furthermore, this device also includes: freezing equipment and several ice-making molds;
[0068] The freezing equipment is located outside the concentration tank;
[0069] Several ice-making molds are stacked inside the freezing equipment to produce ice blocks.
[0070] Furthermore, the ice-making mold includes: a first carrier, several first receiving grooves, a sealing groove, an assembly boss, a second carrier, several second receiving grooves, a sealing strip, an assembly groove, and several pairs of guide holes;
[0071] When the ice-making mold is in the closed state, the second carrier covers the top of the first carrier, and the bottom surface of the second carrier abuts against the top surface of the first carrier.
[0072] Several first receiving slots are formed on the top of the first carrier, and the inner cavity of the first receiving slot is hemispherical;
[0073] A sealing groove is formed on the top of the first carrier. The sealing groove is an annular groove, and several first receiving grooves are located inside the sealing groove.
[0074] The mounting boss is located at the bottom of the first carrier and is used to support the first carrier;
[0075] Several second receiving slots are formed at the bottom of the second carrier. When the ice-making mold is in the closed state, the positions of several second receiving slots correspond one-to-one with those of several first receiving slots. The shape of the second receiving slots is hemispherical.
[0076] The sealing strip is fixedly installed at the bottom of the second carrier. The shape of the sealing strip matches the sealing groove. The sealing strip is an annular protrusion. Several second receiving grooves are located inside the sealing strip. When the ice-making mold is in the closed state, the sealing strip is inserted into the sealing groove to form a seal between the first carrier and the second carrier.
[0077] The assembly slot is located on the top of the second carrier. The shape of the assembly slot matches that of the assembly boss. In the two stacked ice-making molds, the assembly boss of one ice-making mold is inserted into the assembly slot of the other ice-making mold.
[0078] Several pairs of guide holes are formed on the bottom wall of the inner cavity of the assembly slot. Any pair of guide holes penetrates the outer wall of the second carrier and communicates with the inner cavity of one of the second receiving slots. In any pair of guide holes, one of the guide holes communicates with the top of the inner cavity of the receiving slot.
[0079] The bone broth seasoning cooking and preparation apparatus according to an embodiment of the present invention has the following beneficial effects:
[0080] 1. This device utilizes the principle of pre-cooling and solidification of animal fat. Ice cubes are added to the bone broth through the feeding module, and the ice cubes are promptly removed from the bone broth through a screw conveyor. This device can remove the oil from the bone broth without allowing it to stand, thus shortening the processing cycle of the bone broth seasoning, improving processing efficiency, and solving the problem of low processing efficiency in existing technologies.
[0081] 2. This device separates the grease adhering to the surface of the ice cubes through a separation module, so as to facilitate the recycling and reshaping of the ice cubes, greatly saving the ice cube preparation time and enhancing the practicality of the device.
[0082] 3. The retrieval component of this device, by setting guide protrusions and guide grooves, enables the retrieval plate to complete the retrieval action while simultaneously driving the retrieval plate. After each retrieval action is completed, the guide protrusions continuously oscillate the guide grooves, causing the retrieval plate to vibrate. This causes the irregularly shaped ice blocks retrieved by the retrieval plate to roll towards the inlet of the outer conveying cylinder, thus ensuring that the ice blocks put into the concentration tank are retrieved in a timely manner. This prevents the ice blocks from melting excessively, which would cause a significant drop in the temperature of the bone broth, and further improves the processing efficiency of this device.
[0083] It should be understood that both the foregoing general description and the following detailed description are exemplary and intended to provide further illustration of the claimed technology. Attached Figure Description
[0084] Figure 1 This is a perspective view according to an embodiment of the present invention;
[0085] Figure 2 This is a schematic diagram of the internal structure according to an embodiment of the present invention (the salvage plate is rendered with a perspective effect).
[0086] Figure 3 This is an overall cross-sectional view of the screw conveyor according to an embodiment of the present invention (retrieval components are hidden).
[0087] Figure 4 for Figure 3 A magnified view of a portion of region A in the middle;
[0088] Figure 5 This is an exploded view of the structure of the screw conveyor according to an embodiment of the present invention (retrieval components are hidden).
[0089] Figure 6 for Figure 5 A magnified view of a portion of region B in the middle;
[0090] Figure 7 for Figure 2 A magnified view of a portion of region C in the middle;
[0091] Figure 8 This is a schematic diagram of the internal structure of the delivery pipe according to an embodiment of the present invention;
[0092] Figure 9 This is a schematic diagram of the internal structure of the oil separator tank according to an embodiment of the present invention;
[0093] Figure 10 This is an assembly diagram of multiple ice-making molds in a stacked storage state according to the present invention;
[0094] Figure 11 This is an exploded view of the structure of an ice-making mold according to an embodiment of the present invention;
[0095] Figure 12 for Figure 11 A magnified view of a portion of region D in the middle;
[0096] Figure 13 This is an overall cross-sectional view of an ice-making mold according to an embodiment of the present invention.
[0097] Explanation of reference numerals in the attached diagram:
[0098] 1-Concentration tank, 11-Top cover, 4-Guide flow channel.
[0099] 2-Feeding module: 21-Feeding funnel, 22-Feeding valve, 23-Buffer hose, 24-First traction rope.
[0100] 3-Screw Conveyor: 31-Outer Conveyor Cylinder, 32-Inlet, 33-Outlet, 34-Auger, 35-Assembly Components (351-First Assembly Housing, 352-First Discharge Port, 353-Second Assembly Housing, 354-Second Discharge Port), 36-Drive Components (361-Baffle, 362-Internal Gear Ring, 363-Drive Gear, 364-Driven Gear, 365-Motor), Retrieval Components {371-Retrieval Plate, 3711-Screen Hole, 3712-Guide Slide, 372-Second Winding Device, 373-Second Traction Rope, 374-Guide Protrusion}, 38-Drive Shaft, 39-Agitator Paddle.
[0101] 5-Separation Module: 51-Feeding Hopper, 52-Conveying Pipe, 521-Stripping Chamber, 522-Guiding Chamber, Stripping Assembly (531-First Screen Plate, 532-Elastic Rope, 533-Oil Distribution Tank, 5331-Transfer Chamber, 5332-Oil Storage Chamber, 5333-Ventilation Chamber, 5334-Second Screen Plate, 5335-Ventilation Window, 5336-Air Pump, 5337-Input Port, 5338-Output Port, 534-Material Box).
[0102] 6-Ice-making mold: 61-First carrier, 62-First receiving groove, 63-Sealing groove, 64-Assembly boss, 65-Second carrier, 66-Second receiving groove, 67-Sealing strip, 68-Assembly groove, 69-Guide hole. Detailed Implementation
[0103] The preferred embodiments of the present invention will be described in detail below with reference to the accompanying drawings, further illustrating the present invention.
[0104] The foregoing and other technical contents, features, and effects of the present invention will be clearly presented in the following detailed description of the embodiments with reference to the accompanying drawings. The directional terms mentioned in the following embodiments, such as up, down, left, right, front, or back, are only for reference to the directions in the accompanying drawings. Therefore, the directional terms used are for illustrative purposes and not for limiting the present invention. Furthermore, in all embodiments, the same reference numerals denote the same elements.
[0105] First, combine Figures 1-13 The present invention describes a bone broth seasoning simmering and preparation apparatus, which is used for simmering and concentrating bone broth seasoning and has a wide range of applications.
[0106] like Figure 1 As shown, the bone broth seasoning cooking and preparation device of this invention includes a concentration tank 1 equipped with a heating device (not shown in the figure) and a negative pressure device (not shown in the figure) and a top cover 11, and also includes: a feeding module 2, a screw conveyor 3, a guide channel 4 and a separation module 5.
[0107] Specifically, such as Figure 1 As shown, the concentration tank 1 is pre-stored with bone broth to be processed; the top cover 11 is located at the top port of the concentration tank 1 to seal the top port of the concentration tank 1; the feeding module 2 is located on the top cover 11 to add ice cubes to the bone broth; the screw conveyor 3 is located on the top cover 11 to retrieve ice cubes with adsorbed oil from the bone broth; the separation module 5 is located on the concentration tank 1 to peel off the oil adsorbed by the ice cubes; the guide channel 4 is fixedly located on the top of the top cover 11, the input end of the guide channel 4 is connected to the screw conveyor 3, and the output end of the guide channel 4 is connected to the separation module 5 for transporting ice cubes.
[0108] Furthermore, such as Figure 1 , 2 As shown, the feeding module 2 includes: a feeding funnel 21, a feeding valve 22, a buffer hose 23, a first winding device (not shown in the figure), and a first traction rope 24; the feeding funnel 21 is fixedly installed on the top of the top cover 11, and the output end of the feeding funnel 21 passes through the top cover 11 and communicates with the inner cavity of the concentration tank 1 for conveying ice blocks; the feeding valve 22 is installed at the output end of the feeding funnel 21 and is used to control the opening and closing of the output end of the feeding funnel 21; the buffer hose 23 is fixedly installed at the output end of the feeding funnel 21, and the top end of the buffer hose 23 is connected to the output end of the feeding funnel 21 for conveying ice blocks, preferably, the buffer hose 23 is made of cotton fabric; the first winding device is fixedly installed on the top cover 11 and is located in the inner cavity of the concentration tank 1; one end of the first traction rope 24 is fixedly connected to the bottom end of the buffer hose 23, and the other end of the first traction rope 24 is connected to the first winding device for pulling the bottom end of the buffer hose 23.
[0109] Preferably, the first winding device includes: a first bearing seat (not shown in the figure), a first I-beam wheel (not shown in the figure), and a first torsion spring (not shown in the figure); the first bearing seat is fixedly mounted on the top cover 11 and is located in the inner cavity of the concentration tank 1; the first I-beam wheel is rotatably mounted on the first bearing seat, and one end of the first traction rope 24 is wound around the first I-beam wheel; the first torsion spring is mounted on the first bearing seat, one end of the first torsion spring is connected to the first bearing seat, and the other end of the first torsion spring is connected to the first I-beam wheel, for driving the first I-beam wheel to rotate and reset.
[0110] Furthermore, such as Figures 1-6As shown, the screw conveyor 3 includes: an outer conveying cylinder 31, several inlet ports 32, several outlet ports 33, an auger 34, an assembly assembly 35, and a drive assembly 36; the outer conveying cylinder 31 is rotatably mounted on the top cover 11, the outer conveying cylinder 31 is vertically positioned, and the top end of the outer conveying cylinder 31 protrudes from the top surface of the top cover 11; several inlet ports 32 are opened on the circumferential sidewalls of the outer conveying cylinder 31, and several inlet ports 32 are located at the bottom end of the outer conveying cylinder 31, with any one inlet port 32 connecting the concentration tank 1 and the inner cavity of the outer conveying cylinder 31; several outlet ports 33 are opened on the circumferential sidewalls of the outer conveying cylinder 31, and several outlet ports 33... Located at the top of the outer conveying cylinder 31, any one of the output ports 33 penetrates the outer wall of the outer conveying cylinder 31 and communicates with the inner cavity of the outer conveying cylinder 31; the auger 34 is set in the inner cavity of the outer conveying cylinder 31, the bottom end of the auger 34 is rotatably connected to the bottom wall of the inner cavity of the outer conveying cylinder 31, the auger 34 and the outer conveying cylinder 31 have the same central axis, and are used to convey ice blocks; the assembly assembly 35 is set on the top cover 11, and the position of the assembly assembly 35 matches the top of the outer conveying cylinder 31; the drive assembly 36 is set on the assembly assembly 35, and the drive assembly 36 connects the outer conveying cylinder 31 and the auger 34, and is used to drive the outer conveying cylinder 31 and the auger 34 to rotate in opposite directions.
[0111] Furthermore, such as Figures 3-5 As shown, the assembly component 35 includes: a first assembly housing 351, a first discharge port 352, a second assembly housing 353, and a second discharge port 354; the first assembly housing 351 is fastened to the top of the conveying outer cylinder 31, and the bottom of the first assembly housing 351 is fixedly connected to the top cover 11. The outer contour of the first assembly housing 351 is cylindrical; the first discharge port 352 is opened on the circumferential side wall of the first assembly housing 351, and the first discharge port 352 communicates with the inner cavity of the first assembly housing 351. When the screw conveyor 3 outputs ice blocks, the position of the first discharge port 352 matches one of the output ports 33; the second assembly housing 353 is sleeved on the first assembly housing 351, and the bottom of the second assembly housing 353 is rotatably connected to the top cover 11. The inner cavity shape of 53 matches the outer contour shape of the first assembly housing 351, and the inner surface of the second assembly housing 353 is in close contact with the outer surface of the first assembly housing 351. The second discharge port 354 is opened on the circumferential side wall of the second assembly housing 353. The second discharge port 354 penetrates the outer wall of the second assembly housing 353 and communicates with the inner cavity of the second assembly housing 353. When the screw conveyor 3 outputs ice blocks, the position of the second discharge port 354 matches that of the first discharge port 352, and the second discharge port 354 is connected to the input end of the guide channel 4. When the screw conveyor 3 outputs ice blocks, the position of the second discharge port 354 does not match that of the first discharge port 352. The second assembly housing 353 is used to seal the first discharge port 352 to maintain pressure inside the concentration tube.
[0112] Preferred, such as Figures 3-6 As shown, the drive assembly 36 includes: a baffle 361, an internal gear ring 362, a drive gear 363, a driven gear 364, and a motor 365; the baffle 361 is fixedly mounted on the top of the auger 34; the internal gear ring 362 is fixedly mounted on the inner wall of the outer conveying cylinder 31, and the central axis of the internal gear ring 362 is the same as that of the outer conveying cylinder 31. The internal gear ring 362 is located between the baffle 361 and the top wall of the inner cavity of the first assembly housing 351, and is used to drive the outer conveying cylinder 31 to rotate; the drive gear 363 is rotatably mounted on the top wall of the inner cavity of the first assembly housing 351, and the bottom of the drive gear 363 is... The end of the through baffle 361 is fixedly connected to the top of the auger 34 to drive the auger 34 to rotate; the motor 365 is fixedly installed on the top of the first assembly housing 351, and the output end of the motor 365 passes through the outer wall of the first assembly housing 351 and is connected to the drive gear 363 to drive the drive gear 363 to rotate; the driven gear 364 is rotatably installed on the top wall of the inner cavity of the first assembly housing 351, and the driven gear 364 meshes with the drive gear 363 and meshes with the internal gear ring 362 to drive the internal gear ring 362 to rotate in the opposite direction to the drive gear 363.
[0113] This device drives the auger 34 and the outer conveying cylinder 31 to rotate in opposite directions simultaneously via the drive assembly 36. The outer conveying cylinder 31 drives the transmission shaft 38 and the stirring paddle 39 to rotate, thereby stirring the bone broth. At the same time, the reverse rotation of the auger 34 and the outer conveying cylinder 31 is controlled to enhance the conveying efficiency of the screw conveyor 3. Compared with the existing technology that sets multiple power sources to drive the auger 34, the outer conveying cylinder 31 and the transmission shaft 38 to rotate respectively, the drive scheme adopted by this drive assembly 36 achieves the expected beneficial effects while saving the assembly space of the drive assembly 36 of this device.
[0114] Furthermore, such as Figure 2 As shown, the spiral conveyor 3 also includes: a retrieval assembly, a drive shaft 38, and several agitators 39; the retrieval assembly is installed in the inner cavity of the concentration tank 1, and is connected to the top cover 11 and the outer conveying cylinder 31, and is used to retrieve ice from the bone broth; the drive shaft 38 is fixedly installed at the bottom of the outer conveying cylinder 31, and the drive shaft 38 and the outer conveying cylinder 31 have the same central axis; several agitators 39 are fixedly installed on the circumferential sidewall of the drive shaft 38, and any one agitator 39 is arranged radially along the concentration tank 1, and is used to stir the bone broth.
[0115] Furthermore, such as Figure 2 , 7As shown, the retrieval assembly includes: a retrieval plate 371, an assembly hole (not shown in the figure), several screen holes 3711, several second winding devices 372, several second traction ropes 373, several guide protrusions 374, and several guide grooves 3712. The retrieval plate 371 is movably disposed in the inner cavity of the concentration tank 1. The retrieval plate 371 is conical in shape, and its circumferential edge curves upward toward the top port of the concentration tank 1. The difference between the outer diameter of the retrieval plate 371 and the inner diameter of the concentration tank 1 is less than the outer diameter of the ice. Several screen holes 3711 are evenly distributed on the retrieval plate 371, and the inner diameter of any screen hole 3711 is less than the outer diameter of the ice. The assembly hole is located at the center of the retrieval plate 371, and the retrieval plate 371 is movably fitted onto the outer conveying cylinder 31 through the assembly hole. Several second winding devices 372 are fixedly disposed on the top cover 11 and are located in the inner cavity of the concentration tank 1. In the middle, one end of several second traction ropes 373 is connected to several second winding devices 372 respectively, and the other end of several second traction ropes 373 is fixedly connected to the circumferential edge of the retrieval plate 371 for hoisting the retrieval plate 371; several guide protrusions 374 are fixedly installed on the circumferential side wall of the conveying outer cylinder 31, the top of any guide protrusion 374 is located below several input ports 32, the top of any guide protrusion 374 is located above the surface of the bone broth, the bottom of any guide protrusion 374 is located below the surface of the bone broth, and any guide protrusion 374 is spirally arranged along the circumferential side of the conveying outer cylinder 31; several guide grooves 3712 are opened on the circumferential edge of the retrieval plate 371, one of the guide grooves 3712 is slidably connected to one of the guide protrusions 374, and when the guide groove 3712 is located at the top of the guide protrusion 374, the retrieval plate 371 is connected to several input ports 32.
[0116] Preferably, the second winding device 372 includes: a second bearing seat (not shown in the figure), a second I-beam wheel (not shown in the figure), and a second torsion spring (not shown in the figure); the second bearing seat is fixedly mounted on the top cover 11 and is located in the inner cavity of the concentration tank 1; the second I-beam wheel is rotatably mounted on the second bearing seat, and one end of the second traction rope 373 is wound around the second I-beam wheel; the second torsion spring is mounted on the second bearing seat, one end of the second torsion spring is connected to the second bearing seat, and the other end of the second torsion spring is connected to the second I-beam wheel, for driving the second I-beam wheel to rotate and reset.
[0117] Furthermore, such as Figure 1As shown, the separation module 5 includes: a feeding funnel 51, a conveying pipe 52, and a stripping assembly; the ice is spherical ice; the feeding funnel 51 is fixedly installed on the circumferential side wall of the concentration tank 1, and the input end of the feeding funnel 51 is connected to the output end of the guide channel 4; the conveying pipe 52 is fixedly installed on the circumferential side wall of the concentration tank 1, and the input end of the conveying pipe 52 is connected to the output end of the feeding funnel 51, the output end of the conveying pipe 52 is located below the input end of the conveying pipe 52, and the conveying pipe 52 is spirally arranged around the concentration tank 1; the stripping assembly is installed on the conveying pipe 52 and is used to strip the grease adsorbed by the ice.
[0118] Furthermore, such as Figure 1 , 8As shown in Figure 9, the peeling assembly includes: a first screen plate 531, several elastic ropes 532, an oil distribution tank 533, a conveying chamber 5331, an oil storage chamber 5332, a ventilation chamber 5333, a separation window (not shown in the figure), a second screen plate 5334, a ventilation window 5335, an air pump 5336, an input port 5337, an output port 5338, and a material box 534; the first screen plate 531 is fixedly installed on the inner wall of the conveying pipe 52, and the first screen plate 531 divides the inner cavity of the conveying pipe 52 into a peeling chamber 521 and a guide chamber 522. The guide chamber 522 is located below the peeling chamber 521, and the peeling chamber 521 is used to convey ice blocks; several elastic ropes 533... 32 is installed in the stripping chamber 521. One end of the elastic rope 532 is fixedly connected to the inner wall of the conveying pipe 52, and the other end of the elastic rope 532 is fixedly connected to the first sieve plate 531. The distance between any elastic rope 532 and the inner wall of the conveying pipe 52 is less than the outer diameter of the ice block, and the distance between any elastic rope 532 and the first sieve plate 531 is less than the outer diameter of the ice block. The central axes of any adjacent elastic ropes 532 are not coplanar. This is used to strip the grease adsorbed by the ice block. The oil separator 533 is installed at the output end of the conveying pipe 52. The conveying chamber 5331 is installed inside the oil separator 533 for conveying ice blocks. The oil storage chamber 5332 is installed inside the oil separator 533. The oil storage chamber 5332 is located below the conveying chamber 5331; the ventilation chamber 5333 is located inside the oil separator 533 and is located on one side of the oil storage chamber 5332; the separation window is opened on the bottom wall of the inner cavity of the conveying chamber 5331 and communicates with the oil storage chamber 5332; the second screen plate 5334 is embedded in the separation window; the ventilation window 5335 is opened on the inner wall of the ventilation chamber 5333 and communicates with the top of the inner cavity of the oil storage chamber 5332; the air pump 5336 is fixedly installed on the outer wall of the oil separator 533, and the suction end of the air pump 5336 penetrates through the outer wall of the oil separator 533 and communicates with the ventilation chamber 5333. Air is drawn from the ventilation chamber 5333; the input port 5337 is located on one side wall of the oil separator 533, and is connected to one end of the conveying chamber 5331 and the output end of the conveying pipe 52; the output port 5338 is located on one side wall of the oil separator 533, and is connected to the other end of the conveying chamber 5331, and is positioned opposite to the input port 5337; the material box 534 is located outside the concentration tank 1, and the top opening of the material box 534 is connected to the output port 5338. The material box 534 is pre-filled with an aqueous solution for receiving ice.
[0119] Furthermore, such as Figure 10 As shown, the device also includes: a freezing device (not shown in the figure) and several ice-making molds 6; the freezing device is located outside the concentration tank 1, and the freezing device includes, but is not limited to, a freezer; several ice-making molds 6 are stacked inside the freezing device for preparing ice blocks.
[0120] Furthermore, such as Figures 10-13 As shown, the ice-making mold 6 includes: a first carrier 61, several first receiving grooves 62, a sealing groove 63, an assembly boss 64, a second carrier 65, several second receiving grooves 66, a sealing strip 67, an assembly groove 68, and several pairs of guide holes 69. When the ice-making mold 6 is in the closed state, the second carrier 65 covers the top of the first carrier 61, and the bottom surface of the second carrier 65 abuts against the top surface of the first carrier 61. Several first receiving grooves 62 are formed on the top of the first carrier 61, and the inner cavity of the first receiving groove 62 is hemispherical. The sealing groove 63 is formed on the top of the first carrier 61, and the sealing groove 63 is an annular groove, with several first receiving grooves 62 located inside the sealing groove 63. The assembly boss 64 is located at the bottom of the first carrier 61 and is used to support the first carrier 61. Several second receiving grooves 66 are formed at the bottom of the second carrier 65. When the ice-making mold 6 is in the closed state, the positions of the several second receiving grooves 66 and the several first receiving grooves 62 are... The second receiving groove 66 is hemispherical in shape and is in one-to-one correspondence with the first carrier 65. The sealing strip 67 is fixedly set at the bottom of the second carrier 65. The shape of the sealing strip 67 matches that of the sealing groove 63. The sealing strip 67 is an annular protrusion. Several second receiving grooves 66 are located inside the sealing strip 67. When the ice mold 6 is in the closed state, the sealing strip 67 is inserted into the sealing groove 63 to form a seal between the first carrier 61 and the second carrier 65. The assembly groove 68 is set at the top of the second carrier 65. The shape of the assembly groove 68 matches that of the assembly boss 64. In the two stacked ice molds 6, the assembly boss 64 of one ice mold 6 is inserted into the assembly groove 68 of the other ice mold 6. Several pairs of guide holes 69 are opened on the bottom wall of the inner cavity of the assembly groove 68. Any pair of guide holes 69 penetrates the outer wall of the second carrier 65 and communicates with the inner cavity of one of the second receiving grooves 66. In any pair of guide holes 69, one guide hole 69 communicates with the top of the inner cavity of the receiving groove.
[0121] When the equipment is running, the concentration tank 1 boils the bone broth inside. At the same time, the motor 365 drives the drive gear 363 to rotate forward, and the internal gear ring 362, driven by the power transmission of the driven gear 364, drives the outer conveying cylinder 31 to rotate in the opposite direction. During the reverse rotation of the outer conveying cylinder 31, the outer conveying cylinder 31 drives several stirring paddles 39 to rotate in the opposite direction around the drive shaft 38 through the drive shaft 38, thereby stirring the bone broth and the raw materials mixed in the bone broth. When it is necessary to remove the grease on the surface of the bone broth, the user puts several ice cubes into the feeding funnel 21, and then the feeding valve 22 is opened. The ice cubes in the feeding funnel 21 slide into the bone broth through the buffer hose 23. During the process of the ice cubes sliding into the bone broth through the buffer hose 23, the gravity of the ice cubes will act on the first winding device through the first traction rope 24. The first winding device releases the first traction rope 24, thereby reducing the height of the bottom end of the buffer hose 23. At the same time, the friction between the buffer hose 23 and the ice blocks reduces the kinetic energy of the ice blocks sliding down, thus achieving the purpose of buffering the ice blocks. After the ice blocks slide into the broth, the grease on the surface of the broth will condense into a grease layer on the surface of the ice blocks and adhere to them. During the process of adding ice blocks into the broth, the outer conveying cylinder 31 continuously drives several stirring paddles 39 to rotate in opposite directions around the drive shaft 38 to agitate the broth, causing the broth to form a vortex inside the concentration tube, thereby moving the ice blocks added to the broth and preventing the ice blocks added to the broth from stagnating near the bottom end of the buffer hose 23, thus reducing the probability of collision between the ice blocks added to the broth first and the ice blocks added later.
[0122] During the reverse rotation of the outer conveying cylinder 31, the outer conveying cylinder 31 drives several guide protrusions 374 to rotate clockwise. This utilizes the sliding assembly relationship between the guide protrusions 374 and the guide groove 3712 to drive the retrieval plate 371 to move downwards until the guide groove 3712 disengages from the guide protrusions 374, allowing the retrieval plate 371 to sink into the broth, preventing it from colliding with the ice blocks added to the broth. After all the ice blocks in the feeding funnel 21 are added to the broth, the feeding valve 22 closes. Simultaneously, the motor 365 drives the drive gear 363 to rotate in the reverse direction. The drive gear 363 drives the auger 34 to rotate in the reverse direction. Under the power transmission of the driven gear 364, the internal gear ring 362 drives the outer conveying cylinder 31 to rotate forward. During this forward rotation, the outer conveying cylinder 31 drives several guide protrusions 374 to rotate counterclockwise. This utilizes the sliding assembly relationship between the guide protrusions 374 and the guide groove 3712 to drive the retrieval plate 371 upwards. The ice blocks are displaced until the guide groove 3712 disengages from the guide protrusion 374, thereby quickly retrieving the ice blocks from the bone broth. Since the retrieval plate 371 is conical, the ice blocks retrieved by the retrieval plate 371 will converge towards the inlet 32 under gravity until the ice blocks enter the inner cavity of the outer conveying cylinder 31 through the inlet 32. Furthermore, after the guide groove 3712 disengages from the corresponding guide protrusion 374, each guide protrusion 374 will continuously oscillate across several guide grooves 3712. The vibration of the retrieval plate promotes the irregularly shaped ice blocks caused by the collision to roll toward the inlet 32. After the ice blocks enter the inner cavity of the outer conveying cylinder 31 through the inlet 32, they are then conveyed by the auger 34 to the top of the inner cavity of the outer conveying cylinder 31. The ice blocks conveyed to the top of the inner cavity of the outer conveying cylinder 31 will eventually roll into the guide channel 4 through the outlet 33, the first discharge port 352 and the second discharge port 354, and then roll down into the discharge funnel 51 through the peeling chamber 521 of the guide channel 4.
[0123] The ice blocks in the feeding hopper 51 eventually flow sequentially through the conveying pipe 52 and the oil distribution tank 533, rolling into the material bin 534. During this process, the air pump 5336 is activated to extract air from the oil distribution tank 533 and the conveying pipe 52, promoting the rolling of the ice blocks in the feeding hopper 51 and the guide pipe towards the output end of the conveying pipe 52. As the ice blocks are transported through the conveying pipe 52, the elastic ropes 532 undergo elastic deformation under the pressure of the ice blocks as they pass by each elastic rope 532. Afterwards, the elastic rope 532 returns to its original shape. During this process, several elastic ropes 532 will peel off the grease layer that has solidified and adhered to the outer surface of the ice. After the grease is peeled off, the solid grease will gradually melt into liquid and flow into the oil distribution tank 533 through the guide cavity 522 of the conveying pipe 52. When there is no ice passing by the side of the elastic rope 532, the elastic rope 532 will be slightly vibrated by the airflow flowing through the conveying pipe 52 to shake off the solid grease adhering to the elastic rope 532 as much as possible.
[0124] During the startup of air pump 5336, air pump 5336 draws air from the inner cavity of ventilation chamber 5333, causing the air in delivery pipe 52 to flow sequentially through input port 5337, delivery chamber 5331, second screen plate 5334, oil storage chamber 5332, and ventilation window 5335 into ventilation chamber 5333, forming a first airflow. Meanwhile, outside air flows sequentially through output port 5338, delivery chamber 5331, second screen plate 5334, oil storage chamber 5332, and ventilation window 5335 into ventilation chamber 5333, forming a second airflow. The grease flowing into the oil distribution tank 533 from the output end of the delivery pipe 52 will flow sequentially through the input port 5337, the conveying chamber 5331, and the second screen plate 5334 into the oil storage chamber 5332 and be stored there. The ice blocks flowing into the oil distribution tank 533 from the output end of the delivery pipe 52 will flow sequentially through the input port 5337, the conveying chamber 5331, and the output port 5338 before rolling into the material box 534. When the ice blocks flowing through the conveying chamber 5331 pass through the second screen plate 5334, the second airflow will create resistance to the ice blocks to reduce their kinetic energy.
[0125] As ice cubes melt during recycling, their volume gradually decreases, and their shape changes due to external factors. Significant shape changes lead to poorer ice flowability. Ice cubes with significant volume changes result in a less effective removal of the grease layer adhering to the surface of the ice by the elastic rope 532 installed in the conveying pipe 52. To ensure that the volume and shape of the ice cubes recycled by this device are within a certain range, users need to replace the ice cubes after a certain number of recycling cycles and use the ice-making equipment and ice-making mold 6 to reshape ice cubes that exceed the specifications.
[0126] The ice reshaping process is as follows: The user takes out ice cubes that have been recycled a certain number of times from the material box 534 and places them into several first receiving slots 62 of the first carrier 61. Then, the user covers the top of the first carrier 61 with the second carrier 65 and presses the second carrier 65 to fully insert the sealing strip 67 into the sealing slot 63. Next, the user introduces an aqueous solution into the assembly slot 68, allowing the aqueous solution to flow through the guide hole 69 into the cavity between the first receiving slot 62 and the second receiving slot 66 until the cavities of all the first receiving slots 62 and the second receiving slot 66 are filled with aqueous solution. After the user fills all the ice-making molds 6 with ice cubes and aqueous solution, the user puts the ice-making molds 6 into the ice-making equipment for freezing to achieve the purpose of preparing ice cubes that meet the specifications.
[0127] Above, refer to Figures 1-13 A bone broth seasoning preparation apparatus according to an embodiment of the present invention is described, which has the following beneficial effects:
[0128] 1. This device utilizes the principle of pre-cooling and solidification of animal fat. Ice cubes are added to the bone broth through the feeding module, and the ice cubes are promptly removed from the bone broth through a screw conveyor. This device can remove the oil from the bone broth without allowing it to stand, thus shortening the processing cycle of the bone broth seasoning, improving processing efficiency, and solving the problem of low processing efficiency in existing technologies.
[0129] 2. This device separates the grease adhering to the surface of the ice cubes through a separation module, so as to facilitate the recycling and reshaping of the ice cubes, greatly saving the ice cube preparation time and enhancing the practicality of the device.
[0130] 3. The retrieval component of this device, by setting guide protrusions and guide grooves, enables the retrieval plate to complete the retrieval action while simultaneously driving the retrieval plate. After each retrieval action is completed, the guide protrusions continuously oscillate the guide grooves, causing the retrieval plate to vibrate. This causes the irregularly shaped ice blocks retrieved by the retrieval plate to roll towards the inlet of the outer conveying cylinder, thus ensuring that the ice blocks put into the concentration tank are retrieved in a timely manner. This prevents the ice blocks from melting excessively, which would cause a significant drop in the temperature of the bone broth, and further improves the processing efficiency of this device.
[0131] It should be noted that, in this specification, the terms "comprising," "including," or any other variations thereof are intended to cover a non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such a process, method, article, or apparatus. Without further limitations, an element defined by the phrase "comprising..." does not exclude the presence of other identical elements in the process, method, article, or apparatus that includes said element.
[0132] Although the present invention has been described in detail through the preferred embodiments above, it should be understood that the above description should not be considered as a limitation of the present invention. Various modifications and substitutions to the present invention will be apparent to those skilled in the art after reading the above description. Therefore, the scope of protection of the present invention should be defined by the appended claims.
Claims
1. A bone soup condiment decocting preparation device, comprising a concentration tank provided with a heating device and a negative pressure device, and a top cover, characterized in that, It also comprises a feeding module, a spiral conveying device, a guide flow channel and a separation module. The inside of the concentration tank is pre-stored with bone soup to be processed. The top cover is arranged at the top port of the concentration tank and is used for closing the top port of the concentration tank. The feeding module is arranged on the top cover and is used for adding ice cubes into the bone soup. The spiral conveying device is arranged on the top cover and is used for fetching the ice cubes with adsorbed oil in the bone soup. The separation module is arranged on the concentration tank and is used for stripping the oil adsorbed by the ice cubes. The guide flow channel is fixedly arranged on the top of the top cover, the input end of the guide flow channel is connected with the spiral conveying device, and the output end of the guide flow channel is connected with the separation module, and the guide flow channel is used for conveying the ice cubes. The separation module comprises a discharging funnel, a conveying pipe and a stripping assembly. The stripping assembly comprises a first sieve plate, a plurality of elastic ropes, an oil separation tank, a conveying cavity, an oil storage cavity, a ventilation cavity, a separation window, a second sieve plate, a ventilation window, an air pump, an input port, an output port and a material tank. The first sieve plate is fixedly arranged on the inner wall of the conveying pipe, the first sieve plate divides the inner cavity of the conveying pipe into a stripping cavity and a guide cavity, the guide cavity is located below the stripping cavity, and the stripping cavity is used for conveying the ice cubes. The plurality of elastic ropes are arranged in the stripping cavity, one end of each elastic rope is fixedly connected with the inner wall of the conveying pipe, the other end of each elastic rope is fixedly connected with the first sieve plate, the distance between any elastic rope and the inner wall of the conveying pipe is less than the outer diameter of the ice cubes, the distance between any elastic rope and the first sieve plate is less than the outer diameter of the ice cubes, the central axes of any adjacent elastic ropes are not coplanar, and the elastic ropes are used for stripping the oil adsorbed by the ice cubes. The oil separation tank is arranged at the output end of the conveying pipe. The conveying cavity is arranged in the oil separation tank and is used for conveying the ice cubes. The oil storage cavity is arranged in the oil separation tank and is located below the conveying cavity. The ventilation cavity is arranged in the oil separation tank and is located on one side of the oil storage cavity. The separation window is arranged on the inner bottom wall of the conveying cavity and is communicated with the oil storage cavity. The second sieve plate is embedded in the separation window. The ventilation window is arranged on the inner wall of the ventilation cavity and is communicated with the inner top of the oil storage cavity. The air pump is fixedly arranged on the outer wall of the oil separation tank, the air suction end of the air pump penetrates through the outer wall of the oil separation tank and is communicated with the ventilation cavity, and the air pump is used for extracting air in the ventilation cavity. The input port is arranged on one side wall of the oil separation tank, the input port is communicated with one end of the conveying cavity, and the input port is communicated with the output end of the conveying pipe. The output port is arranged on one side wall of the oil separation tank, the output port is communicated with the other end of the conveying cavity, and the output port is arranged opposite to the input port. The material box is arranged outside the condensing tank, a top box opening of the material box is connected with the output port, and the inside of the material box is pre-provided with an aqueous solution for receiving the ice blocks.
2. The bone soup condiment cooking preparation apparatus as claimed in claim 1, wherein, The feeding module comprises a feeding funnel, a feeding valve, a buffer hose, a first winding device and a first traction rope. The feeding funnel is fixedly arranged on the top of the top cover, an output end of the feeding funnel penetrates through the top cover and is communicated with the inner cavity of the condensing tank for conveying the ice blocks. The feeding valve is arranged on the output end of the feeding funnel for controlling the opening and closing of the output end of the feeding funnel. The buffer hose is fixedly arranged on the output end of the feeding funnel, a top end of the buffer hose is communicated with the output end of the feeding funnel for conveying the ice blocks. The first winding device is fixedly arranged on the top cover and located in the inner cavity of the condensing tank. One end of the first traction rope is fixedly connected with a bottom end of the buffer hose, and the other end of the first traction rope is connected with the first winding device for pulling the bottom end of the buffer hose.
3. The bone soup condiment cooking preparation apparatus as claimed in claim 1, wherein The spiral conveying device comprises a conveying outer cylinder, a plurality of input ports, a plurality of output ports, an auger, an assembly component and a driving component. The conveying outer cylinder is rotatably arranged on the top cover and vertically arranged, and a top end of the conveying outer cylinder protrudes from a top surface of the top cover. The plurality of input ports are formed on a circumferential sidewall of the conveying outer cylinder and located at a bottom end of the conveying outer cylinder, and each of the input ports is communicated with the condensing tank and an inner cavity of the conveying outer cylinder. The plurality of output ports are formed on the circumferential sidewall of the conveying outer cylinder and located at a top end of the conveying outer cylinder, and each of the output ports is communicated with the inner cavity of the conveying outer cylinder through an outer wall of the conveying outer cylinder. The auger is arranged in the inner cavity of the conveying outer cylinder, a bottom end of the auger is rotatably connected with a bottom wall of the inner cavity of the conveying outer cylinder, and the auger is coaxial with a central shaft of the conveying outer cylinder for conveying the ice blocks. The assembly component is arranged on the top cover and matched with a position of a top portion of the conveying outer cylinder. The driving component is arranged on the assembly component and connected with the conveying outer cylinder and the auger for driving the conveying outer cylinder and the auger to rotate in opposite directions.
4. The bone soup condiment cooking preparation apparatus as claimed in claim 3, wherein, The assembly component comprises a first assembly shell, a first discharge port, a second assembly shell and a second discharge port. The first assembly shell is buckled on the top portion of the conveying outer cylinder, a bottom portion of the first assembly shell is fixedly connected with the top cover, and an outer contour of the first assembly shell is a cylindrical body. The first discharge port is formed on a circumferential sidewall of the first assembly shell and communicated with an inner cavity of the first assembly shell, and when the spiral conveying device outputs the ice blocks, the first discharge port is matched with a position of one of the output ports. The second assembly shell is arranged on the top cover and matched with a position of the top portion of the conveying outer cylinder. The second discharge port is formed on a circumferential sidewall of the second assembly shell and communicated with an inner cavity of the second assembly shell, and when the spiral conveying device outputs the ice blocks, the second discharge port is matched with a position of one of the output ports. The second assembly shell is sleeved on the first assembly shell, the bottom of the second assembly shell is rotationally connected with the top cover, the inner cavity of the second assembly shell is shaped to match the outer contour shape of the first assembly shell, and the inner surface of the second assembly shell is tightly attached to the outer surface of the first assembly shell; The second discharge port is arranged on the circumferential sidewall of the second assembly shell, and the second discharge port is in communication with the inner cavity of the second assembly shell through the outer wall of the second assembly shell; when the ice blocks are output by the screw conveying device, the second discharge port is matched with the position of the first discharge port, and the second discharge port is connected with the input end of the guide flow channel.
5. The bone soup seasoning cooking device of claim 3, wherein, The screw conveying device further comprises a fishing assembly, a transmission shaft and a plurality of stirring paddles. The fishing assembly is arranged in the inner cavity of the concentration tank, and the fishing assembly is connected with the top cover and the conveying outer cylinder, and is used for fishing out the ice blocks in the bone soup. The transmission shaft is fixedly arranged at the bottom of the conveying outer cylinder, and the transmission shaft is the same as the central shaft of the conveying outer cylinder. The plurality of stirring paddles are fixedly arranged on the circumferential sidewall of the transmission shaft, and each of the stirring paddles is arranged along the radial direction of the concentration tank, and is used for stirring the bone soup.
6. The bone soup condiment cooking preparation apparatus as claimed in claim 5, wherein, The fishing assembly comprises a fishing plate, an assembly hole, a plurality of sieve holes, a plurality of second winding devices, a plurality of second traction ropes, a plurality of guide protrusions and a plurality of guide sliding grooves. The fishing plate is movably arranged in the inner cavity of the concentration tank, the fishing plate is in the shape of a tapered cylinder, the circumferential edge of the fishing plate is tilted towards the top end of the concentration tank, and the difference between the outer diameter of the fishing plate and the inner diameter of the concentration tank is less than the outer diameter of the ice blocks. The plurality of sieve holes are uniformly arranged on the fishing plate, and the inner diameter of each of the sieve holes is less than the outer diameter of the ice blocks. The assembly hole is arranged at the center of the fishing plate, and the fishing plate is movably sleeved on the conveying outer cylinder through the assembly hole. The plurality of second winding devices are fixedly arranged on the top cover, and the plurality of second winding devices are located in the inner cavity of the concentration tank. One end of each of the plurality of second traction ropes is connected with the plurality of second winding devices, and the other end of each of the plurality of second traction ropes is fixedly connected with the circumferential edge of the fishing plate, and is used for hoisting the fishing plate. The plurality of guide protrusions are fixedly arranged on the circumferential sidewall of the conveying outer cylinder, the top end of each of the guide protrusions is located below the plurality of input ports, the top end of each of the guide protrusions is located above the liquid surface of the bone soup, the bottom end of each of the guide protrusions is located below the liquid surface of the bone soup, and each of the guide protrusions is spirally arranged along the circumferential direction of the conveying outer cylinder. The plurality of guide sliding grooves are arranged on the circumferential edge of the fishing plate, one of the guide sliding grooves is slidably connected with one of the guide protrusions, and when the guide sliding groove is located at the top end of the guide protrusion, the fishing plate is connected with the plurality of input ports.
7. The bone soup seasoning cooking device according to claim 1, wherein: The ice blocks are spherical ice blocks. The discharging funnel is fixedly arranged on the circumferential side wall of the condensing tank, and an input end of the discharging funnel is connected with an output end of the guide flow channel; The conveying pipe is fixedly arranged on the circumferential side wall of the condensing tank, an input end of the conveying pipe is communicated with an output end of the discharging funnel, and an output end of the conveying pipe is located at the lower side of the input end of the conveying pipe, and the conveying pipe is spirally arranged around the condensing tank; The peeling assembly is arranged on the conveying pipe and is used for peeling off the grease adsorbed by the ice blocks.
8. The bone soup seasoning cooking device of claim 1, wherein, Further comprising: a freezing device and a plurality of ice-making molds; The freezing device is arranged outside the condensing tank; The plurality of ice-making molds are arranged in the freezing device in a stacked manner and are used for preparing the ice blocks.
9. The bone soup seasoning cooking device of claim 8, wherein, The ice-making mold comprises a first carrier, a plurality of first accommodating grooves, a sealing groove, an assembly boss, a second carrier, a plurality of second accommodating grooves, a sealing strip, an assembly groove and a plurality of pairs of guide holes. When the ice-making mold is in a closed state, the second carrier covers the top of the first carrier, and the bottom surface of the second carrier abuts against the top surface of the first carrier. The plurality of first accommodating grooves are arranged on the top of the first carrier, and the inner cavity of the first accommodating groove is in a semispherical shape. The sealing groove is arranged on the top of the first carrier, and the sealing groove is an annular groove, and the plurality of first accommodating grooves are located on the inner side of the sealing groove. The assembly boss is arranged on the bottom of the first carrier and is used for bearing the first carrier. The plurality of second accommodating grooves are arranged on the bottom of the second carrier, and when the ice-making mold is in the closed state, the plurality of second accommodating grooves correspond to the plurality of first accommodating grooves one by one, and the second accommodating groove is in a semispherical shape. The sealing strip is fixedly arranged on the bottom of the second carrier, the sealing strip is matched with the sealing groove in shape, the sealing strip is an annular protrusion, the plurality of second accommodating grooves are located on the inner side of the sealing strip, and when the ice-making mold is in the closed state, the sealing strip is inserted into the sealing groove and forms a seal between the first carrier and the second carrier. The assembly groove is arranged on the top of the second carrier, the assembly groove is matched with the assembly boss in shape, and the assembly boss of one of the two stacked ice-making molds is inserted into the assembly groove of the other ice-making mold. The plurality of pairs of guide holes are arranged on the inner cavity bottom wall of the assembly groove, any pair of the guide holes is communicated with the inner cavity of one of the second accommodating grooves through the outer wall of the second carrier, and in any pair of the guide holes, one of the guide holes is communicated with the inner cavity top of the accommodating groove.
Citation Information
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