Yellow peach green juice and coconut water composite beverage production device and technology
Through the design of a dual-axis stirring system and a premixing and constant volume mechanism, the problems of low enzymatic hydrolysis efficiency and uneven mixing in the production of yellow peach juice and coconut water compound beverages were solved, efficient enzymatic hydrolysis and uniform mixing were achieved, and production time was shortened.
Patent Information
- Application Number
- CN202510790679.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-13
- Publication Date
- 2025-09-16
AI Technical Summary
In the existing production of yellow peach juice and coconut water compound beverages, the enzymatic hydrolysis reaction efficiency is low and the mixing is uneven, resulting in prolonged homogenization time.
It adopts a double-shaft stirring system and a pre-mixing constant volume mechanism. Through the reverse rotation of the stirring shaft and the stirring sleeve shaft and the reversing bevel gear design, combined with the revolution and linear motion of the liquid discharge head, diversified stirring and uniform mixing are achieved.
The enzymatic reaction efficiency is improved, material stratification is avoided, mixing time is shortened, and production efficiency is improved.
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Figure CN120644113A_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of compound beverage production, and in particular to a device and process for producing a compound beverage of yellow peach green juice and coconut water. Background Art
[0002] Compound beverages refer to beverages made by scientifically combining two or more natural ingredients (such as fruit juice, plant water, dairy products, herbal extracts, etc.) and complementing each other in flavor, nutrition or function. Its core value lies in the synergistic effect of 1+1>2, which can not only meet diversified consumer needs, but also create differentiated products. Among them, the compound beverage of yellow peach juice and coconut water is a healthy drink that combines the sweetness of yellow peach and the refreshing taste of coconut water, with both nutrition and flavor. The current compound beverage production process mainly uses homogenization to mix different raw materials. Due to the high energy consumption of homogenization equipment, pre-mixing will be carried out during the volume setting process before homogenization. The different raw materials will be mixed by stirring first. This can reduce the homogenization time and reduce energy consumption. For example, the Chinese invention application with publication number CN106387562A discloses a turnip and rhodiola rosea compound beverage, which uses turnip and rhodiola rosea as raw materials, processes them separately to obtain turnip extract and rhodiola rosea extract, and then adds sugar, stevia, fructose syrup and citric acid to prepare the compound beverage. The process of blending before homogenization is adopted. For the preparation of yellow peach green juice, it is also necessary to enzymatically hydrolyze the yellow peach puree to prepare the green juice. However, the current preparation of the yellow peach green juice and coconut water compound beverage has the following defects:
[0003] When enzymatic hydrolysis of yellow peach juice is carried out, enzyme preparations need to be added to the original pulp and stirred to speed up the enzymatic hydrolysis reaction. However, the stirring structure of the current enzymatic hydrolysis tank is relatively ordinary, and the stirring direction is single, resulting in low reaction efficiency. When mixing yellow peach juice and coconut water before homogenization, the two raw materials are directly placed in a fixed volume bin for mixing. However, their densities are different, and direct addition will cause the two materials to stratify and the mixing effect to be poor. This will take longer time for homogenization, which is not conducive to use.
[0004] To this end, we propose a composite beverage production device and process for yellow peach green juice and coconut water to solve the above problems. Summary of the Invention
[0005] The object of the present invention is to provide a device and process for producing a composite beverage of yellow peach juice and coconut water, so as to solve the problems raised in the above background technology.
[0006] To achieve the above-mentioned object, the present invention provides the following technical scheme: a composite beverage production device of yellow peach juice and coconut water, comprising an enzymatic hydrolysis mechanism and a premixing and volume-fixing mechanism, the enzymatic hydrolysis mechanism comprising a casing, the top surface of the casing being fixedly connected to a driving bin, the center of the inner bottom surface of the casing being vertically rotatably connected to the bottom end of a stirring shaft, the top end of the stirring shaft being rotatably provided with a stirring sleeve shaft, the circumference of the stirring shaft being evenly fixed with a plurality of lower main stirring blades, the circumference of the stirring sleeve shaft being evenly fixed with a plurality of upper main stirring blades, the top end of the stirring sleeve shaft passing through the top surface of the casing is located in the driving bin, the top end of the stirring shaft is vertically fixedly connected to the driving shaft, the stirring sleeve shaft is rotatably sleeved on the outside of the driving shaft, the top end of the driving shaft passes through the top end of the stirring sleeve shaft and is located in the driving bin, the top of the driving shaft is fixedly sleeved with an upper bevel gear, the top end of the stirring sleeve shaft is fixedly connected with a lower bevel gear, two reversing bevel gears are rotatably connected at positions between the upper bevel gear and the lower bevel gear in the driving bin, and the reversing bevel gears are meshed and connected with the upper bevel gear and the lower bevel gear on both sides;
[0007] The premixing and constant volume mechanism includes a constant volume bin, a feeding assembly is provided at the upper position inside the constant volume bin, a stirring assembly is provided at the lower position inside the constant volume bin, a feeding pipe is vertically fixedly sleeved on the center of the top surface of the constant volume bin, the bottom end of the feeding pipe is located in the constant volume bin and is fixedly connected and connected to a high-speed joint, the feeding assembly includes an arm and a ring body, the ring body is fixed at the edge of the top surface inside the constant volume bin, one end of the arm is slidably provided on the bottom surface of the ring body, the other end of the arm is fixedly connected to the end rod, the top surface of the end rod is fixedly connected to the riser, the top end of the riser is fixedly connected and rotatably connected to the high-speed joint, a through groove is provided on the arm, the through groove is horizontally slidably connected to the carrying block, the liquid outlet head is vertically fixedly sleeved on the carrying block, and the side wall of the riser and the top of the liquid outlet head are fixedly connected and connected to a corrugated hose.
[0008] Preferably, the stirring assembly includes a plate body, which is located below the end of the end rod, and a plurality of horizontal support rods are fixed between the side wall of the plate body and the inner side wall of the constant volume bin, and a plurality of vertical support rods are vertically fixed to the top surface of the plate body, and the top ends of the plurality of vertical support rods are fixed to a reducer, and the output shaft of the reducer is fixed to the bottom surface of the end rod end.
[0009] Preferably, the stirring assembly also includes a lower main shaft and a hollow main shaft, the bottom end of the lower main shaft is rotatably connected to the center of the bottom surface inside the constant volume bin, the top end of the lower main shaft is fixedly connected to the sleeve column, and the bottom end of the hollow main shaft is rotatably connected to the sleeve column. A plurality of stirring blades are fixedly connected to the circumference of the lower main shaft and the hollow main shaft, the middle part of the plate body is fixedly connected to the outer ring of the first bearing, the inner ring of the first bearing is vertically slidably connected to the driving long shaft, the lower part of the driving long shaft is located inside the hollow main shaft, the bottom surface of the constant volume bin is fixedly connected to the driving motor, and the rotating shaft end of the driving motor is fixedly connected to the bottom end of the lower main shaft.
[0010] Preferably, a first spline groove is provided on the inner side of the sleeve column, the bottom end of the driving long shaft is fixedly connected to the first spline, the first spline is vertically slidably sleeved in the first spline groove, the upper position inside the hollow main shaft is fixedly sleeved in the first spline sleeve, the driving long shaft is located below the first spline sleeve and fixedly sleeved in the second spline, a locking block is provided at the lower position of the plate body, the bottom surface of the locking block is fixedly connected to the third spline, the top end of the hollow main shaft is fixedly sleeved in the second spline sleeve, the third spline is plugged into the second spline sleeve, the locking block and the middle of the third spline are fixedly sleeved in the outer ring of the second bearing, and the second shaft The inner ring of the bearing is fixedly sleeved on the driving long shaft, and a plurality of sliding rods are vertically fixed to the bottom surface of the plate body, and a plurality of sliding holes are vertically opened on the locking block corresponding to the positions of the plurality of sliding rods, and the sliding holes are slidably sleeved on the sliding rods, and the input end of the reducer is fixedly connected to the shaft block, and a second spline groove is opened at the bottom end of the shaft block, and the top end of the driving long shaft is fixedly connected to the fourth spline, and the fourth spline is slidably inserted into the second spline groove, and the top surface of the plate body is fixedly connected to the small electric push rod, and the top end of the output end of the small electric push rod is fixedly connected to the lifting plate, and the end of the lifting plate is fixedly sleeved on the outer ring of the third bearing, and the inner ring of the third bearing is fixedly sleeved on the driving long shaft.
[0011] The top end of the upper gear is fixedly connected to the gear box, and the bottom end of the lower gear is fixedly connected to the gear box, and the bottom end of the lower gear is fixedly connected to the gear box.
[0012] Preferably, the top surface of the drive bin is fixedly connected to the reduction drive motor, the bottom end of the reduction drive motor's rotating shaft is located inside the drive bin and fixedly connected to the rotating plate, the top end of the drive shaft is located inside the drive bin and fixedly connected to the driven gear, the bottom surface inside the drive bin is rotatably connected to the driving gear, the driving gear is meshed and connected to the driven gear, the bottom surface of the rotating plate is fixedly connected to the end of the pull rod, the top end of the driving gear's rotating shaft is fixedly fixed to the end of the force-receiving rod, the free end of the pull rod is rotatably connected to one end of the connecting rod, and the other end of the connecting rod is rotatably connected to the free end of the force-receiving rod.
[0013] Preferably, a power slide groove is opened on one side of the through groove, and the power slide groove is horizontally slidably connected to the power slider. A guide slide groove is opened on the other side of the through groove, and the guide slide groove is horizontally slidably connected to the guide slider. The power slider and the guide slider are fixed on both sides of the mounting block. The power slide groove is horizontally rotatably connected to the reciprocating screw rod, the power slider is fixed with a threaded sleeve, the reciprocating screw rod is threadedly connected to the threaded sleeve, the guide slide groove is horizontally fixed with a guide rod, and a guide hole is horizontally opened on the guide slider, and the guide rod is slidably sleeved into the guide hole.
[0014] Preferably, a T-shaped ring groove is provided on the bottom surface of the ring body, and the top surface of the arm end is fixedly connected to the T-shaped slider, and the T-shaped slider is slidably connected to the T-shaped ring groove. The T-shaped slider and the end position of the arm are vertically rotated and sleeved on the vertical shaft, and the top of the vertical shaft is fixedly connected to the driving gear, and the top surface of the T-shaped ring groove is provided with a top ring groove, and the side wall of the top ring groove is fixedly connected to the inner ring gear, and the driving gear is meshed with the inner ring gear, and the bottom end of the vertical shaft is located inside the plate body and fixedly connected to the first bevel gear, and the inside of the end of the plate body is horizontally rotated and connected to the horizontal shaft, and the end of the reciprocating screw is fixedly connected to the short shaft, and the short shaft is fixedly connected to the second bevel gear near one end of the horizontal shaft, and the third bevel gear and the fourth bevel gear are fixedly sleeved on the horizontal shaft, and the first bevel gear is meshed and connected to the third bevel gear, and the fourth bevel gear is meshed and connected to the second bevel gear.
[0015] Preferably, the outer side of the casing is fixedly sleeved with the outer shell cover, the outer shell cover is fixedly connected with the electric heating tube, the top surface of the casing is fixedly connected and connected to the first feed port, the top surface of the casing is fixedly connected and connected to the enzyme feed pump, the input end of the enzyme feed pump is fixedly connected and connected to the enzyme liquid pipe, the bottom of the casing is fixedly connected and connected to the first discharge pipe, the first discharge pipe is fixedly connected and connected to the first valve, the top surface of the constant volume bin is fixedly connected to the feed pump, the feed pump is fixedly connected and connected to the material receiving pipe and the elbow, the elbow is fixedly connected and connected to the top of the feed pipe, the side wall of the constant volume bin is fixedly connected with a pH sensor, the top side wall of the constant volume bin is fixedly connected and connected to the second feed port, the middle part of the side wall of the constant volume bin is fixedly connected to a circulation pump, the circulation pump is fixedly connected and connected to two circulation pipes, one of the circulation pipes is fixedly connected and connected to the lower part of the constant volume bin, the other circulation pipe is fixedly connected to the upper part of the constant volume bin, the bottom side wall of the constant volume bin is fixedly connected to the second discharge port, and the second discharge port is fixedly connected and connected to the second valve.
[0016] The present invention also provides a production process for a composite beverage production device of yellow peach green juice and coconut water, comprising the following steps:
[0017] Step 1: preparing the puree: peeling and pitting the yellow peaches, squeezing the juice to obtain the yellow peach puree and storing it at low temperature;
[0018] Step 2: Enzymolysis: Add the yellow peach puree into the housing through the first feed port, start the reduction drive motor for stirring, and heat the electric heating tube at the same time, maintain the temperature at 40-45°C, pump the enzyme preparation into the enzyme pump, and the enzymolysis time is 30-100 minutes. After completion, heat to 85°C and continue the reaction for 1-2 minutes to inactivate the enzyme to obtain crude juice;
[0019] Step 3: Ultrafiltration concentration: The obtained crude juice enters the working tank of the ultrafiltration equipment, and the ultrafiltration pump pumps the crude juice into the ultrafiltration membrane stack for displacement filtration. The filtered clear juice enters the clear juice tank and then enters the working tank. It continues to be pumped into the ultrafiltration membrane stack by the ultrafiltration pump to form a cycle of ultrafiltration production. The cycle of ultrafiltration production lasts for 19.5-20.5 hours. The filtered juice is in the working tank and enters a primary concentration state. The material in the working tank is rapidly concentrated. After the primary concentration is completed, it enters a dialysis state. Pure water is added to the working tank for dialysis. After the water intake is completed, secondary concentration is performed. After completion, decolorized green juice is obtained.
[0020] Step 4: Premixing: Add the decolorized green juice obtained into the constant volume bin through the second feed port, and then pump the coconut water into the feed pipe through the feed pump. Start the drive motor to drive the lower main shaft to stir. At this time, the driving long shaft is in a low position, and the second spline is kept below the first spline sleeve. The third spline is inserted into the second spline sleeve. At this time, only the lower main shaft rotates and stirs. At the same time, the liquid discharge head in the feed assembly slowly adds coconut water, and then stops adding. After stirring for -min, the liquid discharge head continues to add coconut water. At the same time, the driving long shaft is lifted, the second spline is inserted into the first spline sleeve, and the third spline leaves the second spline sleeve. In this way, the hollow main shaft will also rotate and stir. The circulation pump is started to continuously exchange the mixed liquid inside the constant volume bin until the pH sensor detects that the pH value is 4.1, stops adding coconut water, constant volume, and continues stirring for 20-30min to obtain a premixed liquid;
[0021] Step 5: Homogenization: Add the obtained premixed liquid into a high-pressure homogenizer for homogenization. After completion, filter it once through a filtering device, sterilize it at high temperature at 130°C, then filter it twice, and finally fill it to obtain a finished beverage.
[0022] Compared with the prior art, the present invention has the following beneficial effects:
[0023] During enzymatic hydrolysis, the present invention adopts a stirring shaft and a stirring sleeve shaft to stir materials at different heights respectively; under the action of a reversing bevel gear, the stirring shaft and the stirring sleeve shaft rotate in opposite directions, making the stirring direction more diverse; when driven by a driving structure in a driving bin, the directions of the stirring shaft and the stirring sleeve shaft themselves also change back and forth, thus making the stirring direction in the casing constantly change, thereby improving the efficiency of the enzymatic hydrolysis reaction; when coconut water is added during constant volume premixing, the liquid outlet head will revolve around the vertical pipe and simultaneously reciprocate linearly on the arm, thus evenly spreading the coconut water over a larger area; stirring is performed immediately after spreading, avoiding stratification, making the mixing more even, and thus reducing the time required for subsequent homogenization. BRIEF DESCRIPTION OF THE DRAWINGS
[0024] Figure 1 Schematic diagram of the structure of the enzymatic hydrolysis mechanism in the first and second embodiments of the present invention;
[0025] Figure 2 Schematic diagram of the structure of the premixing and volume-fixing mechanism in the first and second embodiments of the present invention;
[0026] Figure 3 Schematic diagram of the cross-section structure of the enzymatic hydrolysis mechanism in the first and second embodiments of the present invention;
[0027] Figure 4 Schematic diagram of the cross-section structure of the stirring sleeve shaft in the first and second embodiments of the present invention;
[0028] Figure 5 For the present invention Figure 3 A schematic diagram of the enlarged structure of the structure at point A in the middle;
[0029] Figure 6 Schematic diagram of the cross-section structure of the premixing and volume-fixing mechanism in the first and second embodiments of the present invention;
[0030] Figure 7 Schematic diagram of the cross-section structure of the feed assembly in the first and second embodiments of the present invention;
[0031] Figure 8 This is a schematic diagram of the cross-sectional structure of the arm in the second embodiment of the present invention;
[0032] Figure 9 This is a schematic diagram of the cross-section structure of the hollow main shaft in the second embodiment of the present invention;
[0033] Figure 10 For the present invention Figure 9 Schematic diagram of the enlarged structure at B in the middle;
[0034] Figure 11 This is a schematic diagram of the cross-section structure of the drive compartment in the second embodiment of the present invention.
[0035] In the figure: 1. enzymatic hydrolysis mechanism; 2. premixing and constant volume mechanism; 11. housing; 12. driving chamber; 13. stirring shaft; 14. stirring sleeve shaft; 15. lower main stirring blade; 16. upper main stirring blade; 17. driving shaft; 18. upper bevel gear; 19. lower bevel gear; 110. reversing bevel gear; 111. reduction drive motor; 112. rotating plate; 113. driven gear; 114. driving gear; 115. pull rod; 116. force rod; 117. connecting rod; 118. lower sub-shaft; 119. lower sub-stirring blade; 120. lower ring groove; 121. lower sealing ring; 122. lower inner gear ring; 123. lower gear; 124. upper sub-shaft; 125. upper sub-stirring blade; 126. upper ring groove ; 127, upper sealing ring; 128, upper inner gear ring; 129, upper gear; 130, first feed port; 131, enzyme feed pump; 132, enzyme liquid pipe; 133, first discharge pipe; 134, first valve; 135, outer shell; 136, electric heating pipe; 21, constant volume bin; 22, feed assembly; 23, stirring assembly; 24, feed pipe; 25, feed pump; 26, material receiving pipe; 27, elbow; 28, high-speed connector; 29, second feed port; 210, circulation pump; 211, circulation pipe; 212, second discharge port; 213, second valve; 214, drive motor; 215, pH sensor; 221, arm; 222, end rod; 223, riser; 224, Through slot; 225, carrying block; 226, liquid outlet head; 227, corrugated hose; 228, T-shaped ring groove; 229, T-shaped slider; 2210, power slide; 2211, power slider; 2212, guide slide; 2213, guide slider; 2214, reciprocating screw; 2215, threaded sleeve; 2216, vertical shaft; 2217, drive gear; 2218, internal ring gear; 2219, horizontal shaft; 2220, first bevel gear; 2221, short shaft; 2222, second bevel gear; 2223, third bevel gear; 2224, fourth bevel gear; 2225, guide rod; 2226, guide hole; 2227, ring body; 2228, top ring groove; 231, plate body; 232. Horizontal support rod; 233. Lower main shaft; 234. Hollow main shaft; 235. Stirring blade; 236. First bearing; 237. Driving shaft; 238. Sleeve column; 239. First spline groove; 2310. First spline; 2311. First spline sleeve; 2312. Second spline; 2313. Locking block; 2314. Second bearing; 2315. Third spline; 2316. Second spline sleeve; 2317. Sliding rod; 2318. Sliding hole; 2319. Vertical support rod; 2320. Reducer; 2321. Shaft block; 2322. Second spline groove; 2323. Fourth spline; 2324. Small electric push rod; 2325. Lifting plate; 2326. Third bearing. DETAILED DESCRIPTION
[0036] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.
[0037] Example 1:
[0038] See also Figure 1-7 The present invention provides a technical solution: a composite beverage production device of yellow peach juice and coconut water, comprising an enzymatic hydrolysis mechanism 1 and a premixing and volume-fixing mechanism 2, the enzymatic hydrolysis mechanism 1 comprising a casing 11, the top surface of the casing 11 is fixedly connected to a driving bin 12, the center of the bottom surface of the casing 11 is vertically rotated to connect the bottom end of a stirring shaft 13, the top end of the stirring shaft 13 is rotatably provided with a stirring sleeve shaft 14, a plurality of lower main stirring blades 15 are evenly fixed to the circumference of the stirring shaft 13, a plurality of upper main stirring blades 16 are evenly fixed to the circumference of the stirring sleeve shaft 14, the top end of the stirring sleeve shaft 14 passes through the top surface of the casing 11 and is located in the driving bin 12, the top end of the stirring shaft 13 is vertically fixed to a driving shaft 17, the stirring sleeve shaft 14 is rotatably sleeved on the outside of the driving shaft 17, the top end of the driving shaft 17 passes through the top end of the stirring sleeve shaft 14 and is located in the driving bin 12, the driving The top of the driving shaft 17 is fixedly sleeved with an upper bevel gear 18, and the top of the stirring sleeve shaft 14 is fixedly connected to the lower bevel gear 19. The two sides of the driving bin 12 are located between the upper bevel gear 18 and the lower bevel gear 19 and are rotatably connected to the two reversing bevel gears 110. The reversing bevel gears 110 are meshed and connected to the upper bevel gear 18 and the lower bevel gear 19 on both sides. During enzymolysis, the stirring shaft 13 and the stirring sleeve shaft 14 are respectively stirred for materials at different heights. Under the action of the reversing bevel gear 110, the stirring shaft 13 and the stirring sleeve shaft 14 turn in opposite directions, making the stirring direction more diverse. When driven by the driving structure in the driving bin 12, the directions of the stirring shaft 13 and the stirring sleeve shaft 14 themselves will also change back and forth, so that the stirring direction in the casing 11 is constantly changing, thereby improving the efficiency of the enzymolysis reaction.
[0039] The premixing and constant volume mechanism 2 includes a constant volume bin 21, a feed assembly 22 is provided at the upper position inside the constant volume bin 21, a stirring assembly 23 is provided at the lower position inside the constant volume bin 21, a feed pipe 24 is fixedly sleeved vertically at the center of the top surface of the constant volume bin 21, the bottom end of the feed pipe 24 is located in the constant volume bin 21 and is fixedly connected to and connected to the high-speed connector 28, the feed assembly 22 includes an arm 221 and a ring body 2227, the ring body 2227 is fixedly connected to the edge of the top surface inside the constant volume bin 21, one end of the arm 221 is slidably provided on the bottom surface of the ring body 2227, the other end of the arm 221 is fixedly connected to the end rod 222, the top surface of the end rod 222 is fixedly connected to the standpipe 223, and the top of the standpipe 223 is fixedly connected and rotatably connected A high-speed connector 28 is connected, and a through slot 224 is provided on the arm 221. The through slot 224 is horizontally slidably connected to the carrying block 225. The carrying block 225 is vertically fixed with a liquid outlet head 226. The side wall of the vertical pipe 223 and the top of the liquid outlet head 226 are fixedly connected and connected to a corrugated hose 227. The coconut water is added to the constant volume bin 21 through the liquid outlet head 226 using the feed pump 25. When the coconut water is added, the liquid outlet head 226 will revolve around the vertical pipe 223 and move back and forth on the arm 221 at the same time. In this way, the coconut water can be evenly spread over a larger area. After spreading, stirring is performed immediately to avoid stratification, making the mixing more uniform, so that less time is required for subsequent homogenization.
[0040] Example 2:
[0041] See also Figure 1-11 , which is the second embodiment of the present invention. This embodiment is based on the previous embodiment. The stirring assembly 23 includes a plate body 231, which is located below the end of the end rod 222. A plurality of horizontal support rods 232 are fixed between the side wall of the plate body 231 and the inner wall of the constant volume bin 21. A plurality of vertical support rods 2319 are vertically fixed to the top surface of the plate body 231. The top ends of the plurality of vertical support rods 2319 are fixed to a reducer 2320. The output shaft of the reducer 2320 is fixed to the bottom surface of the end of the end rod 222.
[0042] The stirring assembly 23 also includes a lower main shaft 233 and a hollow main shaft 234. The bottom end of the lower main shaft 233 is rotatably connected to the center of the bottom surface of the constant volume chamber 21. The top end of the lower main shaft 233 is fixedly connected to the sleeve column 238, and the bottom end of the hollow main shaft 234 is rotatably connected to the sleeve column 238. A plurality of stirring blades 235 are fixedly connected to the circumference of the lower main shaft 233 and the hollow main shaft 234. The middle part of the plate body 231 is fixedly connected to the outer ring of the first bearing 236, and the inner ring of the first bearing 236 is vertically slidably connected to the driving long shaft 237. The lower part of the driving long shaft 237 is located inside the hollow main shaft 234. The bottom surface of the constant volume chamber 21 is fixedly connected to the driving motor 214, and the rotating shaft end of the driving motor 214 is fixedly connected to the bottom end of the lower main shaft 233.
[0043] A first spline groove 239 is provided on the inner side of the sleeve 238, the bottom end of the driving shaft 237 is fixedly connected to the first spline 2310, the first spline 2310 is vertically slidably sleeved in the first spline groove 239, the upper position of the inner part of the hollow main shaft 234 is fixedly sleeved with the first spline sleeve 2311, the driving shaft 237 is located below the first spline sleeve 2311 and is fixedly sleeved with the second spline 2312, a locking block 2313 is provided below the plate 231, the bottom surface of the locking block 2313 is fixedly connected to the third spline 2315, and the top of the hollow main shaft 234 is fixed. The second spline sleeve 2316 is sleeved, the third spline 2315 is inserted into the second spline sleeve 2316, the locking block 2313 and the middle of the third spline 2315 are fixedly sleeved with the outer ring of the second bearing 2314, the inner ring of the second bearing 2314 is fixedly sleeved with the driving shaft 237, a plurality of sliding rods 2317 are vertically fixed to the bottom surface of the plate 231, a plurality of sliding holes 2318 are vertically opened on the locking block 2313 corresponding to the positions of the plurality of sliding rods 2317, the sliding holes 2318 are slidably sleeved with the sliding rods 2317, and the input end of the reducer 2320 is fixedly connected to the shaft block 232 1. The bottom end of the shaft block 2321 is provided with a second spline groove 2322. The top end of the driving shaft 237 is fixedly connected to the fourth spline 2323. The fourth spline 2323 is slidably inserted into the second spline groove 2322. The top surface of the plate body 231 is fixedly connected to a small electric push rod 2324. The top end of the output end of the small electric push rod 2324 is fixedly connected to a lifting plate 2325. The end of the lifting plate 2325 is fixedly connected to the outer ring of the third bearing 2326. The inner ring of the third bearing 2326 is fixedly connected to the driving shaft 237. The stirring assembly 23 is connected to the small electric push rod 2324. It can drive the driving shaft 237 to move vertically. When the driving shaft 237 is in a low position, the position of the hollow main shaft 234 is locked, and only the lower main shaft 233 below rotates. This is a stirring method used in the early stage of mixing when there is less material. It can avoid the phenomenon of material stratification caused by wind force generated by the upper stirring blade 235. When the driving shaft 237 is in a high position, the hollow main shaft 234 will rotate synchronously with the driving shaft 237. When more coconut water is added, the upper stirring blade 235 is used for synchronous stirring, which is more flexible.
[0044] The middle part of the multiple lower main stirring blades 15 located at the same vertical position is rotatably sleeved with a lower sub-shaft 118, and the circumferential side of the lower sub-shaft 118 is fixedly connected to the position between the multiple lower main stirring blades 15. A lower annular groove 120 is provided on the bottom surface of the inner part of the casing 11, and the top surface of the lower annular groove 120 is slidably connected to the lower sealing ring 121. The bottom end of the lower sub-stirring blade 119 passes through the lower sealing ring 121 and is fixedly connected to the lower gear 123. The side wall of the lower annular groove 120 is fixedly connected to the lower inner gear ring 122. The lower gear 123 is meshed and connected to the lower inner gear ring 122. The lower sub-stirring blade 119 is rotatably sleeved with the lower sealing ring 121, and the middle part of the multiple upper main stirring blades 16 located at the same vertical position is fixedly sleeved with the lower sub-stirring blade 119. An upper sub-shaft 124 is rotatably sleeved, and the upper sub-shaft 124 is located between the multiple upper main stirring blades 16 and is fixed with multiple upper sub-stirring blades 125. An upper annular groove 126 is provided on the top surface of the inner part of the casing 11, and the bottom surface of the upper annular groove 126 is slidably connected to the upper sealing ring 127. The top of the upper sub-shaft 124 passes through the upper sealing ring 127 and is fixedly connected to the upper gear 129. The side wall of the upper annular groove 126 is fixedly connected to the upper inner gear ring 128, and the upper gear 129 is meshed with the upper inner gear ring 128. The upper sub-shaft 124 is rotatably sleeved to connect the upper sealing ring 127. During stirring, the lower sub-stirring blade 119 and the upper sub-stirring blade 125 also rotate synchronously, so that there are more stirring positions and the mixing blind spots are avoided.
[0045] The top surface of the drive bin 12 is fixedly connected to the reduction drive motor 111, and the bottom end of the reduction drive motor 111 rotating shaft end is located inside the drive bin 12 and fixedly connected to the rotating plate 112. The top end of the drive shaft 17 is located inside the drive bin 12 and fixedly connected to the driven gear 113. The bottom surface inside the drive bin 12 is rotatably connected to the driving gear 114, and the driving gear 114 is meshed with the driven gear 113. The bottom surface of the rotating plate 112 is fixedly connected to the end of the pull rod 115, and the top end of the rotating shaft end of the driving gear 114 is fixed to the end of the force-receiving rod 116. The free end of the pull rod 115 is rotatably connected to one end of the connecting rod 117, and the other end of the connecting rod 117 is rotatably connected to the free end of the force-receiving rod 116.
[0046] A power slide groove 2210 is provided on one side of the through groove 224, and the power slide groove 2210 is horizontally slidably connected to the power slider 2211. A guide slide groove 2212 is provided on the other side of the through groove 224, and the guide slide groove 2212 is horizontally slidably connected to the guide slider 2213. The power slider 2211 and the guide slider 2213 are fixedly connected on both sides of the mounting block 225. The power slide groove 2210 is horizontally rotatably connected to the reciprocating screw rod 2214. The power slider 2211 is fixed with a threaded sleeve 2215, and the reciprocating screw rod 2214 is threadedly connected to the threaded sleeve 2215. The guide rod 2225 is horizontally fixed in the guide slide groove 2212, and a guide hole 2226 is horizontally provided on the guide slider 2213. The guide rod 2225 is slidably sleeved in the guide hole 2226.
[0047] The bottom surface of the ring body 2227 is provided with a T-shaped ring groove 228, the top surface of the end of the arm 221 is fixed with a T-shaped slider 229, the T-shaped slider 229 is slidably connected to the T-shaped ring groove 228, the T-shaped slider 229 and the end position of the arm 221 are vertically rotated and sleeved to the vertical shaft 2216, the top of the vertical shaft 2216 is fixed with the driving gear 2217, the top surface of the T-shaped ring groove 228 is provided with a top ring groove 2228, the side wall of the top ring groove 2228 is fixed with the inner gear ring 2218, the driving gear 2217 is meshed with the inner gear ring 2218, the bottom end of the vertical shaft 2216 is located inside the plate body 231 and is fixed with the first bevel gear 2220, the end of the plate body 231 is horizontally rotated inside and connected to the horizontal shaft 2219, and the reciprocating wire The end of the rod 2214 is fixedly connected to the short shaft 2221, and the end of the short shaft 2221 close to the horizontal shaft 2219 is fixedly connected to the second bevel gear 2222. The third bevel gear 2223 and the fourth bevel gear 2224 are fixedly sleeved on the horizontal shaft 2219. The first bevel gear 2220 is meshed with the third bevel gear 2223, and the fourth bevel gear 2224 is meshed with the second bevel gear 2222. The driving long shaft 237 is used to drive the arm rod 221 to rotate around the vertical pipe 223, so that the driving gear 2217 and the inner ring gear 2218 produce relative movement. The rotation of the driving gear 2217 drives the reciprocating screw rod 2214 to rotate, thereby realizing the reciprocating motion effect of the carrying block 225 on the arm rod 221.
[0048] The outer side of the casing 11 is fixedly connected to the outer shell cover 135, the inner side of the outer shell cover 135 is fixedly connected to the electric heating pipe 136, the top surface of the casing 11 is fixedly connected to and connected to the first feed port 130, the top surface of the casing 11 is fixedly connected to and connected to the enzyme feed pump 131, the input end of the enzyme feed pump 131 is fixedly connected to and connected to the enzyme liquid pipe 132, the bottom of the casing 11 is fixedly connected to and connected to the first discharge pipe 133, the first discharge pipe 133 is fixedly connected to and connected to the first valve 134, the top surface of the constant volume bin 21 is fixedly connected to the feed pump 25, the feed pump 25 is fixedly connected to and connected to the material receiving pipe 26 and the elbow 27, the elbow 27 is fixedly connected to The pH sensor 215 is fixedly connected to the top of the feed pipe 24 and the side wall of the constant volume bin 21. The top side wall of the constant volume bin 21 is fixedly connected and connected to the second feed port 29. The middle part of the side wall of the constant volume bin 21 is fixedly connected to the circulation pump 210. The circulation pump 210 is fixedly connected and connected to two circulation pipes 211, one of which is fixedly connected to and connected to the lower part of the constant volume bin 21, and the other circulation pipe 211 is fixedly connected to and connected to the upper part of the constant volume bin 21. The bottom side wall of the constant volume bin 21 is fixedly connected and connected to the second discharge port 212, and the second discharge port 212 is fixedly connected and connected to the second valve 213.
[0049] Example 3:
[0050] The third embodiment of the present invention is based on the above two embodiments. This embodiment provides a production process for a composite beverage production device of yellow peach juice and coconut water, comprising the following steps:
[0051] Step 1: preparing the puree: peeling and pitting the yellow peaches, squeezing the juice to obtain the yellow peach puree and storing it at low temperature;
[0052] Step 2: Enzymolysis: Add the yellow peach puree into the housing 11 through the first feed port 130, start the reduction drive motor 111 for stirring, and heat the electric heating tube 136 at the same time, maintain the temperature at 40-45°C, pump the enzyme preparation into the enzyme pump 131, and perform enzymolysis for 30-100 minutes. After completion, heat the mixture to 85°C and continue the reaction for 1-2 minutes to inactivate the enzyme to obtain crude juice;
[0053] Step 3: Ultrafiltration concentration: The obtained crude juice enters the working tank of the ultrafiltration equipment, and the ultrafiltration pump pumps the crude juice into the ultrafiltration membrane stack for displacement filtration. The filtered clear juice enters the clear juice tank and then enters the working tank. It continues to be pumped into the ultrafiltration membrane stack by the ultrafiltration pump to form a cycle of ultrafiltration production. The cycle of ultrafiltration production lasts for 19.5-20.5 hours. The filtered juice is in the working tank and enters a primary concentration state. The material in the working tank is rapidly concentrated. After the primary concentration is completed, it enters a dialysis state. Pure water is added to the working tank for dialysis. After the water intake is completed, secondary concentration is performed. After completion, decolorized green juice is obtained.
[0054] Step 4 Premixing: Add the decolorized green juice obtained into the constant volume bin 21 through the second feed port 29, and then pump the coconut water into the feed pipe 24 through the feed pump 25, start the drive motor 214 to drive the lower main shaft 233 to stir, at this time, the driving long shaft 237 is in a low position, keep the second spline 2312 below the first spline sleeve 2311, and the third spline 2315 is inserted into the second spline sleeve 2316. At this time, only the lower main shaft 233 rotates and stirs, and at the same time, the liquid outlet head 226 in the feed assembly 22 slowly adds the coconut water, and then stops Stop adding, stir for 20-30 minutes, then continue adding coconut water to the liquid outlet head 226. At the same time, the driving shaft 237 is lifted, the second spline 2312 is inserted into the first spline sleeve 2311, and the third spline 2315 is separated from the second spline sleeve 2316. In this way, the hollow main shaft 234 also rotates and stirs, and the circulation pump 210 is started to continuously exchange the mixed liquid inside the constant volume chamber 21 until the pH sensor 215 detects a pH value of 4.1. Then, stop adding coconut water, adjust the volume, and continue stirring for 20-30 minutes to obtain a premixed liquid;
[0055] Step 5: Homogenization: Add the obtained premixed liquid into a high-pressure homogenizer for homogenization. After completion, filter it once through a filtering device, sterilize it at high temperature at 130°C, then filter it twice, and finally fill it to obtain a finished beverage.
[0056] During enzymolysis of the present invention, the stirring shaft 13 and the stirring sleeve shaft 14 are used to stir materials at different heights respectively. Under the action of the reversing bevel gear 110, the stirring shaft 13 and the stirring sleeve shaft 14 rotate in opposite directions, making the stirring direction more diverse. When driven by the driving structure in the driving bin 12, the directions of the stirring shaft 13 and the stirring sleeve shaft 14 themselves will also change back and forth, so that the stirring direction in the casing 11 is constantly changing, thereby improving the efficiency of the enzymolysis reaction; when coconut water is added during constant volume premixing, the liquid outlet head 226 will revolve around the vertical pipe 223 and reciprocate linearly on the arm 221 at the same time, so that it can be evenly sprinkled over a larger area, and stirred immediately after sprinkling, avoiding The stratification phenomenon makes the mixing more uniform, so that less time is required for subsequent homogenization; in the stirring component 23 of the present invention, the small electric push rod 2324 can drive the driving shaft 237 to move vertically. When the driving shaft 237 is in a low position, the position of the hollow main shaft 234 is locked, and only the lower main shaft 233 below rotates. This is a stirring method used in the early stage of mixing when there is less material. It can avoid the wind force generated by the upper stirring blade 235 causing material stratification. When the driving shaft 237 is in a high position, the hollow main shaft 234 will rotate synchronously with the driving shaft 237. When more coconut water is added, the upper stirring blade 235 is used for synchronous stirring, which is more flexible.
[0057] While embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions, and variations may be made to these embodiments without departing from the principles and spirit of the invention, and that the scope of the invention is defined by the appended claims and their equivalents.
Claims
1. A device for producing a composite beverage of yellow peach juice and coconut water, comprising an enzymatic hydrolysis mechanism (1) and a premixing and volume setting mechanism (2), characterized in that: The enzymatic hydrolysis mechanism (1) comprises a housing (11), the top surface of the housing (11) is fixedly connected to a driving chamber (12), the center of the inner bottom surface of the housing (11) is vertically rotatably connected to the bottom end of a stirring shaft (13), the top end of the stirring shaft (13) is rotatably provided with a stirring sleeve (14), the circumference of the stirring shaft (13) is uniformly fixedly connected to a plurality of lower main stirring blades (15), the circumference of the stirring sleeve (14) is uniformly fixedly connected to a plurality of upper main stirring blades (16), the top end of the stirring sleeve (14) passes through the top surface of the housing (11) and is located in the driving chamber (12), the top end of the stirring shaft (13) is vertically fixedly connected to the driving shaft (17), the stirring sleeve shaft (14) is rotatably sleeved on the outside of the driving shaft (17), the top end of the driving shaft (17) passes through the top end of the stirring sleeve shaft (14) and is located in the driving chamber (12), the top of the driving shaft (17) is fixedly sleeved with the upper bevel gear (18), the top end of the stirring sleeve shaft (14) is fixedly connected with the lower bevel gear (19), and two reversing bevel gears (110) are rotatably connected at both sides between the upper bevel gear (18) and the lower bevel gear (19) in the driving chamber (12), and the two sides of the reversing bevel gear (110) are meshed and connected with the upper bevel gear (18) and the lower bevel gear (19); The premixing and constant volume mechanism (2) comprises a constant volume bin (21), a feeding assembly (22) is provided at an upper position inside the constant volume bin (21), a stirring assembly (23) is provided at a lower position inside the constant volume bin (21), a feeding pipe (24) is fixedly sleeved vertically at the center of the top surface of the constant volume bin (21), the bottom end of the feeding pipe (24) is located inside the constant volume bin (21) and is fixedly connected to and communicates with a high-speed connector (28), the feeding assembly (22) comprises an arm (221) and a ring body (2227), the ring body (2227) is fixedly connected to the edge of the top surface inside the constant volume bin (21), and the arm (221) is fixedly connected to the edge of the top surface inside the constant volume bin (21). 21) is slidingly arranged on the bottom surface of the ring body (2227), the other end of the arm (221) is fixedly connected to the end rod (222), the top surface of the end rod (222) is fixedly connected to the vertical pipe (223), the top of the vertical pipe (223) is fixedly connected and rotatably connected to the high-speed connector (28), a through groove (224) is provided on the arm (221), the through groove (224) is horizontally slidably connected to the carrying block (225), the carrying block (225) is vertically fixedly sleeved with a liquid outlet head (226), the side wall of the vertical pipe (223) and the top of the liquid outlet head (226) are fixedly connected and communicated with the corrugated hose (227).
2. The device for producing a composite beverage of yellow peach juice and coconut water according to claim 1, characterized in that: The stirring assembly (23) includes a plate body (231), the plate body (231) is located below the end of the end rod (222), a plurality of horizontal support rods (232) are fixedly connected between the side wall of the plate body (231) and the inner side wall of the constant volume bin (21), a plurality of vertical support rods (2319) are vertically fixedly connected to the top surface of the plate body (231), the top ends of the plurality of vertical support rods (2319) are fixedly connected to a reducer (2320), and the output shaft of the reducer (2320) is fixedly connected to the bottom surface of the end of the end rod (222).
3. The device for producing a composite beverage of yellow peach juice and coconut water according to claim 2, characterized in that: The stirring assembly (23) further comprises a lower main shaft (233) and a hollow main shaft (234); the bottom end of the lower main shaft (233) is rotatably connected to the center of the bottom surface of the fixed volume chamber (21); the top end of the lower main shaft (233) is fixedly connected to a sleeve column (238); the bottom end of the hollow main shaft (234) is rotatably connected to the sleeve column (238); a plurality of stirring blades (235) are fixedly connected to the circumference of the lower main shaft (233) and the hollow main shaft (234); the middle part of the plate body (231) is fixedly connected to the outer ring of the first bearing (236); the inner ring of the first bearing (236) is vertically slidably connected to the driving shaft (237); the lower part of the driving shaft (237) is located inside the hollow main shaft (234); the bottom surface of the fixed volume chamber (21) is fixedly connected to the driving motor (214); the rotating shaft end of the driving motor (214) is fixedly connected to the bottom end of the lower main shaft (233).
4. The device for producing a composite beverage of yellow peach juice and coconut water according to claim 3, characterized in that: The first spline groove (239) is provided on the inner side of the sleeve (238), the bottom end of the driving shaft (237) is fixedly connected to the first spline (2310), the first spline (2310) is vertically slidably sleeved on the first spline groove (239), the upper position inside the hollow main shaft (234) is fixedly sleeved on the first spline sleeve (2311), the driving shaft (237) is located below the first spline sleeve (2311) and is fixedly sleeved on the second spline (2312), the plate body ( A locking block (2313) is provided at the lower position of the locking block (2313), the bottom surface of the locking block (2313) is fixedly connected to the third spline (2315), the top of the hollow main shaft (234) is fixedly sleeved with the second spline sleeve (2316), the third spline (2315) is plugged into the second spline sleeve (2316), the middle of the locking block (2313) and the third spline (2315) is fixedly sleeved with the outer ring of the second bearing (2314), and the inner ring of the second bearing (2314) is fixedly sleeved. The drive shaft (237) is connected to the plate body (231), and the bottom surface of the plate body (231) is vertically fixed with multiple slide bars (2317). The locking block (2313) is vertically provided with multiple slide holes (2318) corresponding to the positions of the multiple slide bars (2317). The slide holes (2318) are slidably sleeved with the slide bars (2317). The input end of the reducer (2320) is fixed with a shaft block (2321). The bottom end of the shaft block (2321) is provided with a second spline groove (2322). The drive shaft (2313) is connected to the plate body (2311), and the bottom surface of the plate body (2311) is fixed with multiple slide bars (2317). 37) The top end is fixedly connected to the fourth spline (2323), the fourth spline (2323) is slidably inserted into the second spline groove (2322), the top surface of the plate body (231) is fixedly connected to the small electric push rod (2324), the top end of the output end of the small electric push rod (2324) is fixedly connected to the lifting plate (2325), the end of the lifting plate (2325) is fixedly sleeved on the outer ring of the third bearing (2326), and the inner ring of the third bearing (2326) is fixedly sleeved on the driving long shaft (237).
5. The device for producing a composite beverage of yellow peach juice and coconut water according to claim 1, characterized in that: The middle part of the plurality of lower main stirring blades (15) located at the same vertical position is rotatably sleeved with a lower sub-shaft (118), and the circumferential side of the lower sub-shaft (118) is fixedly connected with a plurality of lower sub-stirring blades (119) located between the plurality of lower main stirring blades (15). The bottom surface of the inner part of the housing (11) is provided with a lower annular groove (120), and the top surface of the lower annular groove (120) is slidably connected with a lower sealing ring (121). The bottom end of the lower sub-stirring blade (119) passes through the lower sealing ring (121) and is fixedly connected with a lower gear (123). The side wall of the lower annular groove (120) is fixedly connected with a lower inner gear ring (122), and the lower gear (123) is meshed with the lower inner gear ring (122). The lower sub-stirring blade (119) is rotatably sleeved with the lower sealing ring (121). 1), the middle parts of the plurality of upper main stirring blades (16) located at the same vertical position are rotatably sleeved with an upper sub-shaft (124), the upper sub-shaft (124) is located between the plurality of upper main stirring blades (16) and is fixedly connected to the plurality of upper sub-stirring blades (125), an upper annular groove (126) is provided on the top surface of the inner part of the casing (11), the bottom surface of the upper annular groove (126) is slidably connected to the upper sealing ring (127), the top end of the upper sub-shaft (124) passes through the upper sealing ring (127) and is fixedly connected to the upper gear (129), the side wall of the upper annular groove (126) is fixedly connected to the upper inner gear ring (128), the upper gear (129) is meshedly connected to the upper inner gear ring (128), and the upper sub-shaft (124) is rotatably sleeved with the upper sealing ring (127).
6. The device for producing a composite beverage of yellow peach juice and coconut water according to claim 1, characterized in that: The top surface of the driving chamber (12) is fixedly connected to the reduction drive motor (111); the bottom end of the rotating shaft of the reduction drive motor (111) is located inside the driving chamber (12) and fixedly connected to the rotating plate (112); the top end of the driving shaft (17) is located inside the driving chamber (12) and fixedly connected to the driven gear (113); the bottom surface inside the driving chamber (12) is rotatably connected to the driving gear (114); the driving gear (114) is meshedly connected to the driven gear (113); the bottom surface of the rotating plate (112) is fixedly connected to the end of the pull rod (115); the top end of the rotating shaft of the driving gear (114) is fixedly connected to the end of the force receiving rod (116); the free end of the pull rod (115) is rotatably connected to one end of the connecting rod (117); the other end of the connecting rod (117) is rotatably connected to the free end of the force receiving rod (116).
7. The device for producing a composite beverage of yellow peach juice and coconut water according to claim 1, characterized in that: A power slide groove (2210) is provided on one side of the through groove (224), and a power slider (2211) is connected to the power slide groove (2210) in a horizontal sliding manner. A guide slide groove (2212) is provided on the other side of the through groove (224), and a guide slider (2213) is connected to the guide slide groove (2212) in a horizontal sliding manner. The power slider (2211) and the guide slider (2213) are fixedly connected to both sides of the carrying block (225). The reciprocating screw rod (2214) is horizontally rotatably connected in the groove (2210), the threaded sleeve (2215) is fixed on the power slider (2211), the reciprocating screw rod (2214) is threadedly connected to the threaded sleeve (2215), the guide groove (2212) is horizontally fixed with a guide rod (2225), the guide slider (2213) is horizontally provided with a guide hole (2226), and the guide rod (2225) is slidably sleeved in the guide hole (2226).
8. The device for producing a composite beverage of yellow peach juice and coconut water according to claim 7, characterized in that: The bottom surface of the ring body (2227) is provided with a T-shaped ring groove (228), the top surface of the end of the arm (221) is fixedly connected to a T-shaped slider (229), the T-shaped slider (229) is slidably connected to the T-shaped ring groove (228), the T-shaped slider (229) and the end position of the arm (221) are vertically rotated to be sleeved on the vertical shaft (2216), the top of the vertical shaft (2216) is fixedly connected to the driving gear (2217), the top surface of the T-shaped ring groove (228) is provided with a top ring groove (2228), the side wall of the top ring groove (2228) is fixedly connected to the inner gear ring (2218), the driving gear (2217) is meshed and connected to the inner gear ring (2218), the vertical shaft ( The bottom end of the gear (2216) is located inside the plate body (231) and is fixedly connected to the first bevel gear (2220). The end of the plate body (231) is horizontally rotated inside and connected to the transverse shaft (2219). The end of the reciprocating screw (2214) is fixedly connected to the short shaft (2221). The short shaft (2221) is fixedly connected to the second bevel gear (2222) at one end close to the transverse shaft (2219). The third bevel gear (2223) and the fourth bevel gear (2224) are fixedly sleeved on the transverse shaft (2219). The first bevel gear (2220) is meshed with the third bevel gear (2223), and the fourth bevel gear (2224) is meshed with the second bevel gear (2222).
9. The device for producing a composite beverage of yellow peach juice and coconut water according to claim 1, characterized in that: The outer side of the housing (11) is fixedly sleeved with an outer shell cover (135), the inner side of the outer shell cover (135) is fixedly connected with an electric heating pipe (136), the top surface of the housing (11) is fixedly connected with and connected to the first feed port (130), the top surface of the housing (11) is fixedly connected with and connected to the enzyme feed pump (131), the input end of the enzyme feed pump (131) is fixedly connected with and connected to the enzyme liquid pipe (132), the bottom of the housing (11) is fixedly connected with and connected to the first discharge pipe (133), the first discharge pipe (133) is fixedly connected with and connected to the first valve (134), the top surface of the constant volume bin (21) is fixedly connected with the feed pump (25), the feed pump (25) is fixedly connected with and connected to the material receiving pipe (26) and the elbow (27), the elbow (27) ) is fixedly connected to and communicated with the top of the feed pipe (24), a pH sensor (215) is fixedly plugged into the side wall of the constant volume bin (21), the top side wall of the constant volume bin (21) is fixedly connected to and communicated with the second feed port (29), the middle part of the side wall of the constant volume bin (21) is fixedly connected to a circulation pump (210), the circulation pump (210) is fixedly connected to and communicated with two circulation pipes (211), one of the circulation pipes (211) is fixedly connected to and communicated with the lower part of the constant volume bin (21), and the other circulation pipe (211) is fixedly connected to and communicated with the upper part of the constant volume bin (21), the bottom side wall of the constant volume bin (21) is fixedly connected to and communicated with the second discharge port (212), and the second discharge port (212) is fixedly connected to and communicated with a second valve (213).
10. A production process for a composite beverage of yellow peach juice and coconut water according to any one of claims 1 to 9, characterized in that: The following steps are involved: Step 1: preparing the puree: peeling and pitting the yellow peaches, squeezing the juice to obtain the yellow peach puree and storing it at low temperature; Step 2: Enzymolysis: Add the yellow peach pulp into the housing (11) through the first feed port (130), start the reduction drive motor (111) for stirring, and at the same time, use the electric heating tube (136) for heating, and maintain the temperature at 40-45° C., and use the enzyme pump (131) to pump the enzyme preparation into the juice, and the enzymolysis time is 30-100 minutes. After completion, heat the mixture to 85° C. and continue the reaction for 1-2 minutes to inactivate the enzyme to obtain a crude juice; Step 3: Ultrafiltration concentration: The obtained crude juice enters the working tank of the ultrafiltration equipment, and the ultrafiltration pump pumps the crude juice into the ultrafiltration membrane stack for displacement filtration. The filtered clear juice enters the clear juice tank and then enters the working tank. It continues to be pumped into the ultrafiltration membrane stack by the ultrafiltration pump to form a cycle of ultrafiltration production. The cycle of ultrafiltration production lasts for 19.5-20.5 hours. The filtered juice is in the working tank and enters a primary concentration state. The material in the working tank is rapidly concentrated. After the primary concentration is completed, it enters a dialysis state. Pure water is added to the working tank for dialysis. After the water intake is completed, secondary concentration is performed. After completion, decolorized green juice is obtained. Step 4: Premixing: The decolorized green juice is added to the constant volume bin (21) through the second feed port (29), and then the coconut water is pumped into the feed pipe (24) through the feed pump (25). The drive motor (214) is started to drive the lower main shaft (233) to stir. At this time, the driving long shaft (237) is located at a low position, and the second spline (2312) is kept below the first spline sleeve (2311). The third spline (2315) is inserted into the second spline sleeve (2316). At this time, only the lower main shaft (233) rotates and stirs, and at the same time, the liquid outlet head (226) in the feed assembly (22) slowly adds the coconut water. , then stop adding, stir for 20-30 minutes, then continue to add coconut water through the liquid outlet head (226), at the same time, drive the long shaft (237) to lift, the second spline (2312) is inserted into the first spline sleeve (2311), and the third spline (2315) leaves the second spline sleeve (2316), so that the hollow main shaft (234) will also rotate and stir, and the circulation pump (210) is started to continuously exchange the mixed liquid inside the constant volume chamber (21) until the pH sensor (215) detects that the pH value is 4.1, stop adding coconut water, fix the volume, and continue stirring for 20-30 minutes to obtain a premixed liquid; Step 5: Homogenization: Add the obtained premixed liquid into a high-pressure homogenizer for homogenization. After completion, filter it once through a filtering device, sterilize it at high temperature at 130°C, then filter it twice, and finally fill it to obtain a finished beverage.
Citation Information
Patent Citations
Turnip root and herba rhodiolae composite beverage and preparation technology thereof
CN106387562A