Cheese filling equipment with heat preservation function
By integrating heaters and refrigerators in cheese filling equipment, combining insulation shells and staggered heating and refrigeration systems, the problem of single temperature control in traditional equipment is solved, and stable temperature control and rapid response during cheese filling process is achieved.
Patent Information
- Application Number
- CN202421750456.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-23
- Publication Date
- 2025-07-29
- Estimated Expiration
- 2034-07-23
AI Technical Summary
Traditional cheese filling equipment has a single and unresponsive problem in temperature control, resulting in unstable cheese quality, especially in extreme environments, which is difficult to maintain ideal temperatures.
A cheese filling equipment integrating heaters and refrigerators is designed, using thermal insulation shells, and precise temperature control is achieved through interlaced heaters and refrigerators and stirring leaves, combining a controllable heating and refrigeration system to adapt to different temperature needs.
It provides a stable and controllable temperature environment to ensure that the quality of cheese is maintained during filling, adapt to different ambient temperature changes, and achieve rapid response temperature adjustment.
Smart Images

Figure CN223162369U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the field of cheese filling, and particularly to a cheese filling device with a heat preservation function. Background Art
[0002] As a popular dairy product, cheese has strict requirements for temperature during production, storage, and transportation. Maintaining an appropriate temperature can not only ensure the quality and taste of cheese but also prevent the growth of microorganisms and ensure food safety. However, traditional cheese filling devices often neglect the importance of temperature control, resulting in the quality of cheese being affected by temperature fluctuations during the filling process.
[0003] Existing cheese filling devices usually include components such as filling heads, conveying systems, and metering devices. During operation, these devices may cause the temperature of the cheese to rise or fall due to changes in the ambient temperature or the heat generated by the devices themselves. Especially in high-temperature environments in summer or low-temperature environments in winter, filling devices without heat preservation measures are even more difficult to maintain the ideal temperature of the cheese.
[0004] In addition, although some existing devices attempt to adjust the temperature through external heating or cooling systems, these methods are often relatively single and cannot achieve rapid response and stable control. Summary of the Utility Model
[0005] Based on the above technical problems, the utility model proposes a cheese filling device with a heat preservation function.
[0006] A cheese filling device with a heat preservation function includes: a cheese tank, a heater, and a cooler. The outer shell of the cheese tank is a heat-insulating shell. A top cover is provided at the top of the cheese tank, and a stirring motor is fixed on the top cover. The stirring shaft of the stirring motor is located inside the cheese tank, and layered stirring blades are provided on the stirring shaft. Openings are provided on the outer shell of the cheese tank in a circumferentially uniform distribution, and the openings are arranged in upper and lower layers. The heater and the cooler are inserted into the cheese tank and fixed at the openings. The heater is connected to a power supply device through a wire at its rear, and two connecting pipes are provided at the rear of the cooler. The heater and the cooler do not contact the stirring blades.
[0007] Preferably, the heater, the cooler, and the stirring blades are arranged in an alternating manner.
[0008] Preferably, a discharge pipe is provided at the lower part of the cheese tank, and a heat preservation layer is provided on the outer layer of the discharge pipe.
[0009] Preferably, the discharge pipe is a copper pipe, the heat preservation layer is non-conductive, and an inductive wire and a controller are provided on the outer side of the heat preservation layer.
[0010] Beneficial effects: The utility model provides a stable and controllable temperature environment for cheese filling by integrating heat preservation and temperature control technology, and is equipped with controllable heaters and refrigerators, and the number of startups can be selected according to actual needs, so that accurate and rapid cheese temperature control can be achieved. BRIEF DESCRIPTION OF THE DRAWINGS
[0011] Figure 1 Shows the structure of the utility model Figure 1 ;
[0012] Figure 2 Shows the structure of the utility model Figure 2 . DETAILED DESCRIPTION
[0013] In order to more clearly understand the above-mentioned objectives, features and advantages of the present invention, the present invention is further described in detail below in conjunction with the accompanying drawings and specific embodiments. It should be noted that the embodiments of the present application and the features therein can be combined with each other without conflict.
[0014] Example 1
[0015] In this embodiment, if Figures 1 to 2 The cheese filling equipment shown has an insulation function, comprising: a cheese can 1, a heater 7, and a refrigerator 6. The outer shell of the cheese can 1 is an insulation shell. A top cover 2 is provided on the top of the cheese can 1, and a stirring motor 3 is fixed on the top cover 2. The stirring shaft 4 of the stirring motor 3 is located in the cheese can 1, and the stirring shaft 4 is provided with layered stirring blades 5; the outer shell of the cheese can 1 is provided with openings evenly distributed in a circle, and the openings are arranged in layers up and down. The heater 7 and the refrigerator 6 are inserted into the cheese can 1 and fixed at the openings. The heater 7 is connected to the power supply device through the electric wire 9 at its rear. Two connecting pipes 8 are provided at the rear of the refrigerator 6, which are the refrigerant inlet pipe and the refrigerant outlet pipe respectively. The heater 7, the refrigerator 6 and the stirring blades 5 are arranged alternately.
[0016] The heater 7 and the refrigerator 6 can be started according to the temperature in the cheese tank 1. If the cheese in the tank needs to be heated quickly, all the heaters 7 can be started, and the stirring motor 3 can be started to heat the cheese while stirring, and the machine will be stopped after reaching the set temperature. If the temperature in the cheese tank 1 is too high, continuous temperature increase will affect the quality of the cheese. At this time, the refrigerator is started. The refrigerator can be connected to the refrigerant through the connecting pipe. The refrigerant cools the outer shell of the refrigerator 6. As the refrigerant circulates, the temperature in the tank will gradually decrease.
[0017] A discharge pipe 10 is provided at the lower portion of the cheese tank 1 . In order to reduce the influence of the external temperature, a heat-insulating layer 11 is provided on the outer layer of the discharge pipe 10 .
[0018] In some cold regions, when a power outage occurs in the factory area, the cheese will solidify in the discharge pipe 10, and the cleaning is very troublesome. Therefore, the discharge pipe 10 can be made of copper pipe, and a non-conductive and heat-insulating thermal insulation layer 11 is provided. An inductive wire 12 and a controller 13 are provided outside the thermal insulation layer 11. The controller 13 can control the inductive wire 12 to heat the discharge pipe 10. After the temperature of the discharge pipe 10 rises, the cheese in the pipe will become a fluid.
[0019] If the temperature of the thermal insulation layer 11 will rise when the inductive wire 12 is heating, the thermal insulation layer 11 can be peeled off. After the heating is completed, the thermal insulation layer 11 is covered on the discharge pipe 10 again.
[0020] The above are only the preferred embodiments of the present invention, and are not intended to limit the present invention. For those skilled in the art, the present invention can have various changes and modifications. Any modification, equivalent replacement, improvement, etc. made within the spirit and principle of the present invention shall be included in the protection scope of the present invention.
Claims
1. A cheese filling device with heat preservation function, characterized in that, Including: A cheese tank, a heater, and a cooler. The outer shell of the cheese tank is a heat-insulating shell. A top cover is provided on the top of the cheese tank, and a stirring motor is fixed on the top cover. The stirring shaft of the stirring motor is located inside the cheese tank, and layered stirring blades are provided on the stirring shaft. Openings evenly distributed in a circle are formed on the outer shell of the cheese tank, and the openings are arranged in upper and lower layers. The heater and the cooler are inserted into the cheese tank and fixed at the openings. The heater is connected to a power supply device through a wire at its rear, and two communicating pipes are provided at the rear of the cooler. The heater and the cooler do not contact the stirring blades.
2. The cheese filling device with heat preservation function according to claim 1, characterized in that, The heater, the cooler, and the stirring blades are arranged alternately.
3. A cheese filling device with heat preservation function according to claim 1, characterized in that, A discharge pipe is provided at the lower part of the cheese tank, and a heat-insulating layer is provided on the outer layer of the discharge pipe.
4. A cheese filling device with heat preservation function according to claim 3, characterized in that, The discharge pipe is a copper pipe, the heat-insulating layer is non-conductive, and an inductor wire and a controller are provided on the outer side of the heat-insulating layer.