Intelligent monitoring system for pickling period of salted duck eggs
By installing salt penetration sensing components and an indicator light system on the pickling tank, the problem of inaccurate pickling time was solved, enabling the monitoring and control of the quality of salted duck eggs.
Patent Information
- Application Number
- CN202520695397.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-14
- Publication Date
- 2026-01-30
- Estimated Expiration
- 2035-04-14
AI Technical Summary
During the pickling process of duck eggs, it is impossible to judge the rate of salt penetration based on the ambient temperature, which leads to inaccurate pickling time and affects the quality of salted duck eggs.
A salt permeation sensor is installed on the pickling tank. By monitoring the change in resistance in the salt permeation sensor and using the change in the brightness of the indicator light, the pickling cycle can be determined, thus realizing the monitoring and control of the pickling cycle.
It enables real-time monitoring and control of the pickling cycle based on salt penetration, ensuring the quality of salted duck eggs and preventing excessive or insufficient salt penetration.
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Figure CN223857611U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model belongs to the technical field of salted duck egg pickling equipment, especially relates to a salted duck egg pickling cycle intelligent monitoring system. BACKGROUND
[0002] When pickling duck eggs, it is necessary to ensure that the duck eggs are pickled for a sufficient time, and a too short pickling time will cause the salt to not fully penetrate into the yolk and egg white, resulting in insufficient saltiness and the yolk possibly not having a sandy texture, and a too long pickling time will cause the egg white and yolk to become too salty and the taste to become poor, and even possibly affect food safety; the pickling cycle of duck eggs is related to the penetration rate of salt into the duck egg shell, and the salt penetrates faster at a higher temperature, so the pickling time can be shortened to 15 to 20 days, and the pickling time can be extended to 30 days or longer at a lower temperature; and in the actual pickling process, the time required for pickling cannot be determined according to the ambient temperature, which can cause the salt to penetrate too much or not enough, affecting the quality of the salted duck eggs.
[0003] Therefore, we provide a salted duck egg pickling cycle intelligent monitoring system to solve the above problems. CONTENT OF THE UTILITY MODEL
[0004] The utility model aims at providing a salted duck egg pickling cycle intelligent monitoring system, install monitoring part on the tank cover above the pickling tank, set the salt penetration sensing assembly in the monitoring part in the pickling tank, make the salt penetrate into the salt penetration sensing assembly, make the monitoring part accept the resistance change in the salt penetration sensing assembly and make feedback, be convenient for understanding the pickling condition, through in monitoring part, the prompt light is connected in the circuit, when the salt penetrates into the salt penetration sensing assembly, makes its resistance resistance value change, makes the light intensity of prompt light change, judges the pickling condition according to the light intensity of prompt light, monitors and controls the pickling cycle.
[0005] To solve the above technical problems, the utility model is realized by the following technical schemes:
[0006] The utility model is a kind of salted duck egg pickling cycle intelligent monitoring system, including pickling tank and monitoring part, monitoring part includes line shell, salt penetration sensing assembly, prompt light, switch and battery, pickling tank upper end cover has tank cover, line shell is fixedly installed on the upper end of tank cover, prompt light and switch are fixedly installed on the upper end of line shell, battery is installed in line shell interior, salt penetration sensing assembly is set in pickling tank, salt penetration sensing assembly, prompt light, switch and battery in monitoring part are sequentially connected by wire.
[0007] The further setting of the utility model discloses, the salt permeation sensing assembly includes the detection tube base and the detection tube, the detection tube includes a calcium carbonate pipe and two end pole covers, two end pole covers are fixedly installed at the both ends of calcium carbonate pipe respectively, distilled water is contained in the calcium carbonate pipe, the electrode is communicated in the both ends in the detection tube base respectively and is communicated with the battery and the prompt lamp respectively, the detection tube is installed in the detection tube base, and the end pole cover of the both ends of detection tube is contacted with the electrode of the both ends in the detection tube base respectively.
[0008] The further setting of the utility model discloses, the sponge ring is fixedly sleeved with one end in the detection tube base, and the conductive sheet is installed at the end of the sponge ring close to the detection tube, the conductive rod is fixedly arranged on the side of the conductive sheet away from the detection tube, the conductive rod is slidably sleeved in the inner ring of the sponge ring, and the conductive rod penetrates the end face of the detection tube base close to the sponge ring.
[0009] The further setting of the utility model discloses, the conductive rod sleeve is fixedly installed on the outside of the end of the detection tube base close to the sponge ring, the electrode end of the prompt lamp is communicated with the conductive rod sleeve through the conducting wire, and the conductive rod is slidably sleeved in the conductive rod sleeve.
[0010] The further setting of the utility model discloses, the conductive rod sleeve is fixedly installed on the outside of the end of the detection tube base close to the sponge ring, the electrode end of the prompt lamp is communicated with the conductive rod sleeve through the conducting wire, and the conductive rod is slidably sleeved in the conductive rod sleeve.
[0011] The further setting of the utility model discloses, the outer sleeve pipe is slidably sleeved on the outside of the detection tube base, and a group of through holes are formed in the outside of the outer sleeve pipe.
[0012] The further setting of the utility model discloses, the rubber wire sleeve is fixedly sleeved in the through wire hole on the cover surface of the jar cover, and the two electrode wire sleeves of the salt permeation sensing assembly are sleeved in the rubber wire sleeve.
[0013] The utility model has the advantages of the following:
[0014] 1, the utility model discloses install monitoring component on the jar cover above pickling jar, set up the salt permeation sensing assembly in monitoring component in monitoring component, make the salt permeation into the salt permeation sensing assembly, make the resistance change in the salt permeation sensing assembly and make feedback for monitoring component, and the situation of pickling is convenient for understanding.
[0015] 2, the utility model discloses in monitoring component, the prompt lamp is connected in the circuit, when the salt permeation is to the salt permeation sensing assembly, makes the resistance resistance of the salt permeation sensing assembly change, makes the light intensity of the prompt lamp change, judges the pickling situation according to the brightness of the prompt lamp, and the pickling period is monitored and controlled. DRAWINGS
[0016] In order to more clearly illustrate the technical scheme of the embodiments of the present application, the following will briefly introduce the drawings needed to be used in the embodiment description, obviously, the drawings described in the following description are only some embodiments of the present application, and for the ordinary skilled in the art, other drawings can also be obtained without creative labor on the basis of these drawings.
[0017] Figure 1 It is a kind of structure schematic diagram of pickling cycle intelligent monitoring system of salted duck egg.
[0018] Figure 2 It is the exploded view of salt penetration sensing assembly.
[0019] Figure 3 It is the side sectional view of salt penetration sensing assembly.
[0020] Figure 4 It is the exploded view of salt penetration sensing assembly and outer sleeve.
[0021] Figure 5 It is the side sectional view of the present application.
[0022] In the drawings, the component list represented by each sign is as follows:
[0023] 1-pickling jar, 101-jar cover, 101a-translucent hole, 101a-1-rubber wire sleeve, 2-monitoring component, 201-wire casing, 202-salt penetration sensing assembly, 202a-detection tube base, 202a-1-sponge ring, 202a-2-conductive sheet, 202a-3-conductive rod, 202a-4-conductive rod sleeve, 202a-5-bundle sleeve, 202b-detection tube, 202b-1-calcium carbonate tube, 202b-2-end cap, 202c-outer sleeve, 202c-1-translucent hole, 203-prompt light, 204-switch, 205-battery. DETAILED DESCRIPTION
[0024] The technical scheme in the embodiments of the present application will be described clearly and completely in the following by combining with the drawings in the embodiments of the present application, obviously, the described embodiments are only some embodiments of the present application, not all the embodiments. Based on the embodiments in the present application, all other embodiments obtained by the ordinary skilled in the art without creative labor are within the protection scope of the present application.
[0025] Embodiment 1
[0026] Please refer to Figures 1 to 3The utility model discloses a kind of pickling cycle intelligent monitoring systems of salt duck egg, including pickling jar 1 and monitoring component 2, monitoring component 2 includes line shell 201, salt penetration sensing assembly 202, prompt light 203, switch 204 and battery 205, by installing monitoring component 2 on the tank cover 101 above pickling jar 1, make salt penetration sensing assembly 202 in monitoring component 2 be set in pickling jar 1, make salt penetrate into salt penetration sensing assembly 202, make monitoring component 2 accept resistance change in salt penetration sensing assembly 202 and make feedback, it is convenient to understand the pickling condition;By in monitoring component 2, prompt light 203 is connected in circuit, when salt penetrates into salt penetration sensing assembly 202, make its resistance resistance change, make the light intensity change of prompt light 203, according to the brightness of prompt light 203 judging pickling condition, monitoring and control are carried out to pickling cycle.
[0027] Specifically, the pickling jar 1 has a tank cover 101 on the upper end, the line shell 201 is fixedly installed on the upper end of the tank cover 101, the prompt light 203 and the switch 204 are fixedly installed on the upper end of the line shell 201, the battery 205 is installed inside the line shell 201, the salt penetration sensing assembly 202 is arranged in the pickling jar 1, and the salt penetration sensing assembly 202, the prompt light 203, the switch 204 and the battery 205 in the monitoring component 2 are connected in sequence by wires.
[0028] Further, the salt penetration sensing assembly 202 includes a detection tube seat 202a and a detection tube 202b, the detection tube 202b includes a calcium carbonate tube 202b-1 and two end cap 202b-2, the two end cap 202b-2 are fixedly installed at both ends of the calcium carbonate tube 202b-1, the calcium carbonate tube 202b-1 is filled with distilled water, the detection tube seat 202a is communicated with electrodes at both ends and is communicated with the battery 205 and the prompt light 203 respectively, the detection tube 202b is installed in the detection tube seat 202a, the end cap 202b-2 at both ends of the detection tube 202b is in contact with the electrodes at both ends of the detection tube seat 202a, the detection tube 202b is placed in the salt water, the salt water penetrates from the calcium carbonate tube 202b-1 into the distilled water inside, the distilled water has conductivity, the circuit in the monitoring component 2 is connected, and the prompt light 203 emits light, as the salt concentration of the distilled water penetrating into the detection tube 202b continuously increases, the conductivity also increases, the brightness of the prompt light 203 also gradually increases, the salt penetration condition is judged according to the brightness of the prompt light, and the pickling condition of the duck eggs in the pickling jar 1 is judged.
[0029] Further, the sponge ring 202a-1 is fixedly sleeved at one end of the detection tube seat 202a, and the conductive sheet 202a-2 is installed at one end of the sponge ring 202a-1 close to the detection tube 202b. The conductive rod 202a-3 is fixedly arranged at one side of the conductive sheet 202a-2 away from the detection tube 202b, and the conductive rod 202a-3 is slidably sleeved in the inner ring of the sponge ring 202a-1. The conductive rod 202a-3 penetrates through the end face of the detection tube seat 202a close to the sponge ring 202a-1. When the detection tube 202b is installed, the detection tube 202b is pressed against the conductive sheet 202a-2 to extrude the sponge ring 202a-1, and then the other end is inserted into the detection tube seat 202a to complete the installation. When the detection tube 202b is replaced, the detection tube 202b is pressed downward to extrude the sponge ring 202a-1, and then the other end is taken out of the detection tube seat 202a to complete the removal of the detection tube 202b.
[0030] Further, the conductive rod sleeve 202a-4 is fixedly installed at the outer side of one end of the detection tube seat 202a close to the sponge ring 202a-1. The conductive rod sleeve 202a-4 is in communication with the electrode end of the indicator light 203 through a wire. The conductive rod 202a-3 is slidably sleeved in the conductive rod sleeve 202a-4. When the sponge ring 202a-1 is extruded, the conductive rod 202a-3 slides in the conductive rod sleeve 202a-4 to maintain the electrical circuit communication with the conductive rod sleeve 202a-4.
[0031] The operation process of the embodiment is as follows:
[0032] The duck eggs to be pickled are placed in the pickling tank 1, salt water is poured into the pickling tank 1, the tank cover 101 is covered, and the salt permeation sensing assembly 202 is soaked in the salt water. The switch 204 of the monitoring component 2 is turned on. During the pickling process, the salt water permeates from the calcium carbonate tube 202b-1 into the internal distilled water, so that the distilled water has conductivity, the circuit in the monitoring component 2 is in communication, and the indicator light 203 emits light. As the salt concentration of the distilled water permeating into the detection tube 202b continuously increases, the conductivity also increases, and the brightness of the indicator light 203 also gradually increases. The brightness of the indicator light is used to judge the salt permeation condition, and the pickling condition of the duck eggs in the pickling tank 1 is judged.
[0033] Embodiment 2
[0034] Please refer to Figures 1 to 5 On the basis of the embodiment 1, the outer sleeve tube 202c is further sleeved outside the detection tube 202a to protect the calcium carbonate tube 202b-1 from being broken.
[0035] Specifically, the bundle sleeve 202a-5 is fixedly arranged at one end of the detection tube seat 202a away from the detection tube 202b. The wire connected to the conductive rod sleeve 202a-4 is sleeved in the bundle sleeve 202a-5.
[0036] Further, the outer side of the tube seat 202a is sleeved with an outer sleeve 202c, and a plurality of through holes 202c-1 are formed on the outer side of the outer sleeve 202c.
[0037] Further, a wire through hole 101a is formed on the cover of the cap 101, a rubber wire sleeve 101a-1 is fixedly sleeved in the wire through hole 101a, and the two electrode wires of the salt permeation sensing assembly 202 are sleeved in the rubber wire sleeve 101a-1.
[0038] The operation process of the embodiment is as follows:
[0039] After the detection tube 202b is installed on the detection tube seat 202a, the outer sleeve 202c is sleeved on the outer side of the detection tube seat 202a, and the salt permeation sensing assembly 202 is soaked in the salt water, so that the salt water enters and permeates into the calcium carbonate tube 202b-1 through the through holes 202c-1.
[0040] In the description of the specification, the description of the terms "one embodiment", "example", "specific example" and the like means that the specific features, structures, materials or characteristics described in combination with the embodiment or example are contained in at least one embodiment or example of the utility model. In the specification, the illustrative description of the above terms does not necessarily refer to the same embodiment or example. Moreover, the described specific features, structures, materials or characteristics can be combined in any one or more embodiments or examples in a suitable manner.
Claims
1. A kind of salted duck egg pickling cycle intelligent monitoring system, including pickling jar (1) and monitoring component (2), it is characterized in that: The monitoring component (2) comprises a circuit shell (201), a salt permeation sensing assembly (202), a prompt lamp (203), a switch (204) and a battery (205), the pickling tank (1) is provided with a tank cover (101) on the upper end, the circuit shell (201) is fixedly installed on the upper end of the tank cover (101), the prompt lamp (203) and the switch (204) are fixedly installed on the upper end of the circuit shell (201), the battery (205) is installed in the circuit shell (201), and the salt permeation sensing assembly (202) is arranged in the pickling tank (1); the salt permeation sensing assembly (202), the prompt lamp (203), the switch (204) and the battery (205) in the monitoring component (2) are sequentially connected through wires.
2. The intelligent monitoring system for the pickling cycle of salted duck eggs according to claim 1, characterized in that: The salt permeation sensing assembly (202) comprises a detection tube seat (202a) and a detection tube (202b), the detection tube (202b) comprises a calcium carbonate tube (202b-1) and two end pole covers (202b-2), the two end pole covers (202b-2) are fixedly installed at the two ends of the calcium carbonate tube (202b-1) respectively, the calcium carbonate tube (202b-1) is provided with distilled water, two electrodes are arranged in the detection tube seat (202a) at the two ends respectively and are in communication with the battery (205) and the prompt lamp (203) respectively, the detection tube (202b) is installed in the detection tube seat (202a), and the end pole covers (202b-2) at the two ends of the detection tube (202b) are in contact with the electrodes at the two ends in the detection tube seat (202a) respectively.
3. The system according to claim 2, characterized in that: One end of the detection tube seat (202a) is fixedly sleeved with a sponge ring (202a-1), one end of the sponge ring (202a-1) close to the detection tube (202b) is provided with a conductive sheet (202a-2), one side of the conductive sheet (202a-2) away from the detection tube (202b) is fixedly provided with a conductive rod (202a-3), the conductive rod (202a-3) is slidably sleeved in the inner circle of the sponge ring (202a-1), and the conductive rod (202a-3) penetrates the end face of the detection tube seat (202a) close to the sponge ring (202a-1).
4. The system according to claim 3, characterized in that: One side of the detection tube seat (202a) close to the sponge ring (202a-1) is fixedly provided with a conductive rod sleeve (202a-4), the conductive rod sleeve (202a-4) is in communication with the electrode end of the prompt lamp (203) through a wire, and the conductive rod (202a-3) is slidably sleeved in the conductive rod sleeve (202a-4).
5. The system according to claim 4, characterized in that: One end of the detection tube seat (202a) away from the detection tube (202b) is fixedly provided with a wire bundling sleeve (202a-5), and the wire connected to the conductive rod sleeve (202a-4) is sleeved in the wire bundling sleeve (202a-5).
6. The system according to claim 2, characterized in that: The outer side of the detection tube seat (202a) is slidably sleeved with an outer sleeve tube (202c), and a plurality of through holes (202c-1) are formed in the outer side of the outer sleeve tube (202c).
7. The system according to claim 1, characterized in that: The tank cover (101) is provided with a wire penetrating hole (101a) on the cover surface, a rubber wire sleeve (101a-1) is fixedly sleeved in the wire penetrating hole (101a), and two electrode wires of the salt permeation sensing assembly (202) are sleeved in the rubber wire sleeve (101a-1).