Constant-temperature and constant-viscosity device for silicone oil coating liquid
By designing a constant temperature and constant viscosity device, the temperature and viscosity of the silicone oil coating liquid can be detected and adjusted in real time, which solves the problem of uncontrollable temperature of the silicone oil coating liquid and improves the uniformity and stability of the coating.
Patent Information
- Application Number
- CN202422132500.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-30
- Publication Date
- 2025-10-03
- Estimated Expiration
- 2034-08-30
AI Technical Summary
The temperature of existing silicone oil coating liquid is uncontrollable, which makes it difficult to control the coating uniformity and thickness, affecting the coating effect.
A constant temperature and viscosity device is designed, which includes a storage unit, a temperature detection unit, a viscosity detection unit, a heating unit and a refrigeration unit. The control unit works together to detect and adjust the temperature and viscosity of the coating liquid in real time to ensure that they are within the set value range.
It achieves precise control of the temperature and viscosity of the coating liquid, improves the uniformity and stability of the coating, avoids difficulties in the coating process, and improves the coating effect.
Smart Images

Figure CN223405275U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field related to adhesive coating, in particular to a constant temperature and constant viscosity device for silicone oil coating liquid. Background Art
[0002] Silicone coating fluid is a liquid containing silicone oil, typically used for coating specific surfaces. Silicone oil offers excellent lubricity, water resistance, mold release, and heat resistance. Silicone coating fluid imparts these properties to the surface of the coated material, providing protection, lubrication, and anti-stick properties.
[0003] In industrial production, silicone oil coating fluids can be applied to paper, plastic films, rubber products, textiles, and other fields. For example, in the papermaking industry, silicone oil coating fluids can improve the water resistance and smoothness of paper; in plastic film production, silicone oil coating fluids can be used to improve the film's release properties.
[0004] The quality and performance of silicone oil coating fluids depend on factors such as the type of silicone oil, concentration, and coating process. When using silicone oil coating fluids, it is necessary to select the appropriate product based on the specific application requirements and strictly follow the coating procedures to ensure the desired effect.
[0005] When using existing silicone oil coating fluids, if the temperature is too high, the molecular motion of the silicone oil coating fluid will increase, resulting in a decrease in viscosity. This can affect coating uniformity and make coating thickness difficult to control. If the temperature is too low, the molecular motion of the silicone oil coating fluid will slow down, and the viscosity will increase. This can make the coating process more difficult, requiring higher coating pressure or more complex coating equipment.
[0006] Currently, no effective solution has been proposed for the problem of uncontrollable temperature of silicone oil coating liquid in related technologies. Utility Model Content
[0007] The purpose of the utility model is to provide a constant temperature and constant viscosity device for silicone oil coating liquid in view of the deficiencies in the prior art, so as to solve the problem of uncontrollable temperature of silicone oil coating liquid in the related art.
[0008] In order to achieve the above purpose, the technical solution adopted by the utility model is:
[0009] A constant temperature and constant viscosity device for silicone oil coating liquid, comprising:
[0010] A storage unit, the storage unit being arranged on a horizontal surface and being used to store the coating liquid;
[0011] a first conveying unit, which is disposed at the top of the storage unit and is in communication with the storage unit and the silicone oil tank, respectively, and is used to convey the coating liquid in the silicone oil tank to the storage element;
[0012] a second conveying unit, which is disposed on a side of the storage unit and is in communication with the storage unit and the silicone oil tank, respectively, and is used to convey the processed coating liquid in the storage unit to the silicone oil tank;
[0013] a temperature detection unit, the temperature detection unit being disposed inside the storage unit and being used to detect the temperature of the coating liquid in the storage unit;
[0014] a viscosity detection unit, the viscosity detection unit being disposed inside the storage unit and being used to detect the viscosity of the coating liquid in the storage unit;
[0015] a heating unit, the heating unit being disposed inside the storage unit and being used to heat the coating liquid in the storage unit;
[0016] a refrigeration unit, the refrigeration unit being arranged inside the storage unit and being used to cool the coating liquid in the storage unit;
[0017] A control unit is provided in the storage unit and is respectively connected to the first conveying unit, the second conveying unit, the temperature detection unit, the viscosity detection unit, the heating unit, and the refrigeration unit.
[0018] In some embodiments, the storage unit includes:
[0019] a storage element, the storage element being disposed on a horizontal plane, the temperature detection unit, the viscosity detection unit, the heating unit, and the refrigeration unit being disposed on the inner side of the storage element, and the first conveying unit, the second conveying unit, and the control unit being disposed on the outer side of the storage element for storing the coating liquid;
[0020] a first through-slot element, the first through-slot element being disposed at a top end of the storage element and being in communication with the first conveying unit;
[0021] A second through-slot element is provided at a side of the storage element and is communicated with the second conveying unit.
[0022] In some embodiments, the first delivery unit includes:
[0023] a first conveying element, which is disposed at the top of the storage unit and is in communication with the storage unit and the silicone oil tank, respectively, and is used to convey the coating liquid in the silicone oil tank to the interior of the storage unit;
[0024] a first liquid driving element, which is disposed at an end of the first conveying element and is connected to the control unit, and is used to convey the coating liquid under the action of the control unit;
[0025] A first valve element is provided at an end of the first conveying element and is connected to the control unit, and is used for controlling the opening and closing of the first conveying element under the action of the control unit.
[0026] In some embodiments, the second conveying unit includes:
[0027] a second conveying element, which is disposed on a side of the storage unit and is in communication with the storage unit and the silicone oil tank, respectively, and is used to convey the processed coating liquid in the storage unit to the silicone oil tank;
[0028] a second liquid driving element, which is disposed at an end of the second conveying element and is connected to the control unit, and is used to convey the coating liquid under the action of the control unit;
[0029] A second valve element is provided at the end of the second conveying element and is connected to the control unit, and is used for controlling the opening and closing of the second conveying element under the action of the control unit.
[0030] In some embodiments, the temperature detection unit includes:
[0031] A temperature detection element is provided inside the storage unit and is used to detect the temperature of the coating liquid inside the storage unit.
[0032] In some embodiments, the viscosity detection unit includes:
[0033] The viscosity detecting element is disposed inside the storage unit and is used to detect the viscosity of the coating liquid inside the storage unit.
[0034] In some embodiments, the heating unit includes:
[0035] a first container element, the first container element being disposed inside the storage unit and being used to store a heat transfer medium and heat the coating liquid in the storage unit;
[0036] A heating element is disposed inside the first container element and connected to the control unit, and is used to heat the heat transfer medium under the action of the control unit.
[0037] In some embodiments, the refrigeration unit comprises:
[0038] a second container element disposed inside the storage unit and configured to store a cold transfer medium and refrigerate the coating liquid in the storage unit;
[0039] A refrigeration element is disposed inside the second container element and connected to the control unit, and is used to cool the cold transfer medium under the action of the control unit.
[0040] In some embodiments, the control unit includes:
[0041] a control element, the control element being disposed outside the storage unit and being connected to the first conveying unit, the second conveying unit, the temperature detection unit, the viscosity detection unit, the heating unit, and the refrigeration unit, respectively;
[0042] A power supply element is arranged outside the storage unit and connected to the control element for supplying power.
[0043] In some embodiments, further comprising:
[0044] a compensation unit, the compensation unit being disposed on a horizontal plane and located on a side of the storage unit, and being used to store a compensating agent;
[0045] A third conveying unit is arranged on the side of the compensation unit, and is respectively connected to the compensation unit and the storage unit, and is connected to the control unit, and is used to convey the compensating agent inside the compensation unit to the inside of the storage unit under the action of the control unit.
[0046] In some embodiments, the storage unit further comprises:
[0047] A third through-slot element is provided at the top of the storage unit and is communicated with the third conveying unit.
[0048] In some embodiments, the compensation unit includes:
[0049] a compensating element, the compensating element being arranged on a horizontal plane, the third conveying unit being arranged on a side of the compensating element and being located on a side of the storage unit for storing the coating liquid;
[0050] A fifth through-slot element is provided on a side of the compensation element and is communicated with the third conveying unit.
[0051] In some embodiments, the third conveying unit includes:
[0052] a third conveying element, the third conveying element being disposed on a side of the compensation unit and being in communication with the compensation unit and the storage unit, respectively, and being configured to convey the compensating agent in the compensation unit to the storage unit;
[0053] a third liquid driving element, which is disposed at an end of the third delivery element and is connected to the control unit, and is used to deliver the compensating agent under the action of the control unit;
[0054] A third valve element is provided at the end of the third conveying element and is connected to the control unit, and is used for controlling the opening and closing of the third conveying element under the action of the control unit.
[0055] In some embodiments, further comprising:
[0056] A stirring unit, wherein a driving end of the stirring unit is arranged at the top end of the outside of the storage unit, and a stirring end of the stirring unit is arranged inside the storage unit, for stirring the coating liquid in the storage unit.
[0057] In some embodiments, the storage unit further comprises:
[0058] A fourth through-groove element is provided at the top end of the storage unit and is used for allowing the stirring end of the stirring unit to enter the interior of the storage unit.
[0059] In some embodiments, the stirring unit includes:
[0060] a driving element, the driving element being disposed at a top end of an exterior of the storage unit and connected to the control unit;
[0061] A stirring element is provided inside the storage unit and connected to the driving element, and is used for stirring the coating liquid in the storage unit under the action of the driving element.
[0062] The present invention adopts the above technical solution, and compared with the prior art, has the following technical effects:
[0063] 1. The storage unit and the first conveying unit are used in conjunction with each other to convey the coating liquid inside the silicone oil tank to the inside of the storage unit, so as to facilitate subsequent relevant processing of the coating liquid; the temperature detection unit, the viscosity detection unit and the control unit are used in conjunction with each other to detect the temperature and viscosity of the coating liquid inside the storage unit, so that the operator can understand the state of the coating liquid and make corresponding adjustments; the heating unit and the refrigeration unit are used in conjunction with each other to control the temperature of the coating liquid to reach the set value, thereby avoiding the coating liquid temperature being too high or too low and improving the coating effect; the second conveying unit can be used to convey the adjusted coating liquid to the silicone oil tank, thereby ensuring the stability of the coating.
[0064] 2. The compensating agent can be transported to the interior of the storage unit by using the compensation unit and the third delivery unit to dilute the coating liquid, thereby reducing the viscosity of the coating liquid; the coating liquid and the compensating agent are stirred by the stirring unit to make the molecules in the coating liquid more evenly distributed, reduce the resistance of the internal structure, and thus reduce the viscosity. BRIEF DESCRIPTION OF THE DRAWINGS
[0065] Figure 1 This is a schematic diagram of the three-dimensional structure of a constant temperature and constant viscosity device according to an embodiment of the present utility model;
[0066] Figure 2 This is a circuit connection block diagram of a constant temperature and constant viscosity device according to an embodiment of the present utility model (I);
[0067] Figure 3 1 is a schematic diagram of the three-dimensional structure of a storage unit according to an embodiment of the present utility model;
[0068] Figure 4 This is a circuit connection block diagram of the first conveying unit, the second conveying unit, the temperature detection unit, the viscosity detection unit, the heating unit, the refrigeration unit, and the control unit according to an embodiment of the present utility model;
[0069] Figure 5 is a wireframe diagram of the interior of a constant temperature and constant viscosity device according to an embodiment of the present utility model;
[0070] Figure 6 This is a circuit connection block diagram (II) of the constant temperature and constant viscosity device according to an embodiment of the present utility model;
[0071] Figure 7 2 is a schematic diagram of the three-dimensional structure of the storage unit according to an embodiment of the present utility model;
[0072] Figure 8 This is a schematic diagram of the three-dimensional structure of the compensation unit according to an embodiment of the utility model.
[0073] Figure 9is a circuit connection block diagram of the third delivery unit and the control unit according to an embodiment of the present utility model;
[0074] Figure 10 It is a schematic diagram of the three-dimensional structure of the stirring unit according to an embodiment of the present utility model.
[0075] The reference numerals are: 10, storage unit; 11, storage element; 12, first through-slot element; 13, second through-slot element; 14, third through-slot element; 15, fourth through-slot element;
[0076] 20. First conveying unit; 21. First conveying element; 22. First liquid driving element; 23. First valve element;
[0077] 30. Second conveying unit; 31. Second conveying element; 32. Second liquid driving element; 33. Second valve element;
[0078] 40. Temperature detection unit; 41. Temperature detection element;
[0079] 50. Viscosity detection unit; 51. Viscosity detection element;
[0080] 60. Heating unit; 61. First container element; 62. Heating element;
[0081] 70. Refrigeration unit; 71. Second container element; 72. Refrigeration element;
[0082] 80. Control unit; 81. Control element; 82. Power supply element;
[0083] 90. Compensation unit; 91. Compensation element; 92. Fifth through-slot element;
[0084] 100 , third conveying unit; 101 , third conveying element; 102 , third liquid driving element; 103 , third valve element; 110 , stirring unit; 111 , driving element; 112 , stirring element. DETAILED DESCRIPTION
[0085] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the embodiments described 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.
[0086] It should be noted that, in the absence of conflict, the embodiments of the present invention and the features therein can be combined with each other.
[0087] The present invention will be further described below with reference to the accompanying drawings and specific embodiments, but they are not intended to limit the present invention.
[0088] Example 1
[0089] An illustrative embodiment of the present invention.
[0090] like Figure 1 、 Figure 2 As shown, a constant temperature and constant viscosity device for silicone oil coating liquid includes a storage unit 10, a first conveying unit 20, a second conveying unit 30, a temperature detection unit 40, a viscosity detection unit 50, a heating unit 60, a refrigeration unit 70 and a control unit 80. The storage unit 10 is arranged on a horizontal plane and is used to store the coating liquid; the first conveying unit 20 is arranged at the top of the storage unit 10 and is respectively connected to the storage unit 10 and the silicone oil tank, and is used to convey the coating liquid in the silicone oil tank to the storage element 11; the second conveying unit 30 is arranged on the side of the storage unit 10 and is respectively connected to the storage unit 10 and the silicone oil tank, and is used to convey the processed coating liquid in the storage unit 10 to the silicone oil tank; the temperature detection unit 40 is arranged on the inner side of the storage unit 10 and is used to detect the temperature of the coating liquid in the storage unit 10; the viscosity detection unit 5 ... The temperature detection unit 50 is arranged on the inner side of the storage unit 10, and is used to detect the viscosity of the coating liquid in the storage unit 10; the heating unit 60 is arranged on the inner side of the storage unit 10, and is used to heat the coating liquid in the storage unit 10; the refrigeration unit 70 is arranged on the inner side of the storage unit 10, and is used to cool the coating liquid in the storage unit 10; the control unit 80 is arranged in the storage unit 10, and is respectively connected to the first conveying unit 20, the second conveying unit 30, the temperature detection unit 40, the viscosity detection unit 50, the heating unit 60, and the refrigeration unit 70.
[0091] like Figure 3 As shown, the storage unit 10 includes a storage element 11, a first through-groove element 12, and a second through-groove element 13. The storage element 11 is disposed on a horizontal surface. A temperature detection unit 40, a viscosity detection unit 50, a heating unit 60, and a refrigeration unit 70 are disposed inside the storage element 11. A first conveying unit 20, a second conveying unit 30, and a control unit 80 are disposed outside the storage element 11 for storing the coating liquid. The first through-groove element 12 is disposed at the top of the storage element 11 and communicates with the first conveying unit 20. The second through-groove element 13 is disposed on the side of the storage element 11 and communicates with the second conveying unit 30.
[0092] The storage element 11 is a hollow structure.
[0093] In some embodiments, the storage element 11 is made of stainless steel.
[0094] In some embodiments, the storage element 11 is a storage bin.
[0095] The cross section of the first through-groove element 12 is circular.
[0096] The size of the first through-groove element 12 matches the size of the storage element 11. Generally, the radial size of the first through-groove element 12 is smaller than the inner length and inner width of the storage element 11, and the axial size of the first through-groove element 12 is equal to the top wall thickness of the storage element 11.
[0097] In some embodiments, the first through-groove element 12 is a first through-groove.
[0098] The cross section of the second through-groove element 13 is circular.
[0099] The size of the second through-groove element 13 matches the size of the storage element 11. Generally, the radial size of the second through-groove element 13 is smaller than the inner width and inner height of the storage element 11, and the axial size of the second through-groove element 13 is equal to the sidewall thickness of the storage element 11.
[0100] The size of the second through-groove element 13 matches the size of the first through-groove element 12. Generally, the radial size of the second through-groove element 13 is equal to the radial size of the first through-groove element 12, and the axial size of the second through-groove element 13 is equal to the axial size of the first through-groove element 12.
[0101] In some embodiments, the second through-groove element 13 is a second through-groove
[0102] like Figure 4 As shown, the first delivery unit 20 includes a first delivery element 21, a first liquid driving element 22, and a first valve element 23. The first delivery element 21 is disposed at the top of the storage unit 10 and is in communication with the storage unit 10 and the silicone oil tank, respectively, for delivering the coating liquid from the silicone oil tank to the interior of the storage unit 11. The first liquid driving element 22 is disposed at the end of the first delivery element 21 and is connected to the control unit 80, for delivering the coating liquid under the control of the control unit 80. The first valve element 23 is disposed at the end of the first delivery element 21 and is connected to the control unit 80, for controlling the opening and closing of the first delivery element 21 under the control of the control unit 80.
[0103] Specifically, the first conveying element 21 is disposed at the top of the storage element 11 and communicates with the first through-groove element 12 .
[0104] The first conveying element 21 has a hollow structure.
[0105] The size of the first conveying element 21 matches the size of the storage element 11. Generally, the outer diameter of the first conveying element 21 is smaller than the outer length and outer width of the storage element 11.
[0106] The size of the first conveying element 21 matches the size of the first through-channel element 12. Generally, the inner diameter of the first conveying element 21 is equal to the radial size of the first through-channel element 12, and the axial size of the first conveying element 21 is greater than the axial size of the first through-channel element 12.
[0107] In some embodiments, the first conveying element 21 is fixedly connected to the storage element 11 , including but not limited to a bolt connection.
[0108] In some embodiments, the first conveying element 21 is a first conveying pipe.
[0109] In some embodiments, the first liquid driving element 22 is fixedly connected to the first conveying element 21 , including but not limited to a bolt connection.
[0110] In some embodiments, the first liquid driving element 22 is a first water pump.
[0111] In some embodiments, the first valve element 23 is fixedly connected to the first delivery element 21 , including but not limited to a bolt connection.
[0112] In some embodiments, the first valve element 23 is a first valve, including but not limited to a solenoid valve.
[0113] like Figure 4 As shown, the second delivery unit 30 includes a second delivery element 31, a second liquid driving element 32, and a second valve element 33. The second delivery element 31 is disposed on the side of the storage unit 10 and is in communication with the storage unit 10 and the silicone oil tank, respectively, for delivering the processed coating liquid from the storage unit 10 to the silicone oil tank; the second liquid driving element 32 is disposed at the end of the second delivery element 31 and is connected to the control unit 80, for delivering the coating liquid under the control of the control unit 80; the second valve element 33 is disposed at the end of the second delivery element 31 and is connected to the control unit 80, for controlling the opening and closing of the second delivery element 31 under the control of the control unit 80.
[0114] Specifically, the second conveying element 31 is disposed on a side of the storage element 11 and communicates with the second through-groove element 13 .
[0115] The second conveying element 31 has a hollow structure.
[0116] The size of the second conveying element 31 matches the size of the storage element 11. Generally, the outer diameter of the second conveying element 31 is smaller than the outer width and outer height of the storage element 11.
[0117] The size of the second conveying element 31 matches the size of the second through-channel element 13. Generally, the inner diameter of the second conveying element 31 is equal to the radial size of the second through-channel element 13, and the axial size of the second conveying element 31 is greater than the axial size of the second through-channel element 13.
[0118] In some embodiments, the second conveying element 31 is fixedly connected to the storage element 11 , including but not limited to a bolt connection.
[0119] In some embodiments, the second conveying element 31 is a second conveying pipe.
[0120] In some embodiments, the second liquid driving element 32 is fixedly connected to the second conveying element 31 , including but not limited to a bolt connection.
[0121] In some embodiments, the second liquid driving element 32 is a second water pump.
[0122] In some embodiments, the second valve element 33 is fixedly connected to the second delivery element 31 , including but not limited to a bolt connection.
[0123] In some embodiments, the second valve element 33 is a second valve, including but not limited to a solenoid valve.
[0124] like Figure 4 As shown, the temperature detection unit 40 includes a temperature detection element 41 . The temperature detection element 41 is disposed inside the storage unit 10 and is used to detect the temperature of the coating liquid inside the storage unit 10 .
[0125] Specifically, the temperature detection element 41 is disposed inside the storage element 11 and connected to the storage element 11 .
[0126] In some embodiments, there are multiple temperature detection elements 41 , which are symmetrically disposed on both sides of the storage element 11 to better detect the temperature of the coating liquid in the storage element 11 .
[0127] In some embodiments, a temperature detection element 41 is disposed on one side of the interior of the storage element 11 , and a temperature detection element 41 is disposed on the other side of the interior of the storage element 11 .
[0128] In some embodiments, the temperature detection element 41 is fixedly connected to the storage element 11 , including but not limited to bolt connection.
[0129] In some embodiments, the temperature detection element 41 is a temperature sensor.
[0130] like Figure 4As shown, the viscosity detection unit 50 includes a viscosity detection element 51 . The viscosity detection element 51 is disposed inside the storage unit 10 and is used to detect the viscosity of the coating liquid inside the storage unit 10 .
[0131] Specifically, the viscosity detecting element 51 is disposed inside the storage element 11 and connected to the storage element 11 .
[0132] In some embodiments, there are multiple viscosity detection elements 51 . The multiple viscosity detection elements 51 are symmetrically arranged on both sides of the storage element 11 to better detect the viscosity of the coating liquid in the storage element 11 .
[0133] In some embodiments, a viscosity detection element 51 is disposed on one side of the interior of the storage element 11 , and a viscosity detection element 51 is disposed on the other side of the interior of the storage element 11 .
[0134] In some embodiments, the viscosity detection element 51 is fixedly connected to the storage element 11 , including but not limited to a bolt connection.
[0135] In some embodiments, the viscosity detection element 51 is a viscosity sensor.
[0136] like Figure 4 As shown, the heating unit 60 includes a first container element 61 and a heating element 62. The first container element 61 is disposed inside the storage unit 10 and is used to store a heat transfer medium and heat the coating liquid in the storage unit 10; the heating element 62 is disposed inside the first container element 61 and is connected to the control unit 80 and is used to heat the heat transfer medium under the action of the control unit 80.
[0137] Specifically, the first container element 61 is disposed inside the storage element 11 and connected to the storage element 11 .
[0138] The first container element 61 has a hollow structure.
[0139] The dimensions of the first container element 61 match those of the storage element 11. Generally, the outer length of the first container element 61 is smaller than the inner length of the storage element 11, the outer width of the first container element 61 is smaller than the inner width of the storage element 11, and the outer height of the first container element 61 is smaller than the inner height of the storage element 11.
[0140] In some embodiments, there are multiple first container elements 61 , which are symmetrically arranged on both sides of the storage element 11 to better heat the coating liquid in the storage element 11 .
[0141] In some embodiments, a first container element 61 is disposed on one side of the interior of the storage element 11 , and a first container element 61 is disposed on the other side of the interior of the storage element 11 .
[0142] In some embodiments, the first container element 61 is fixedly connected to the storage element 11 , including but not limited to bolt connection.
[0143] In some embodiments, the first container element 61 is a first container.
[0144] The number of heating elements 62 matches the number of first container elements 61. Generally, the number of heating elements 62 is equal to the number of first container elements 61.
[0145] In some embodiments, the heating element 62 is fixedly connected to the first container element 61 , including but not limited to bolt connection.
[0146] In some embodiments, the heating element 62 is a heating tube.
[0147] like Figure 4 As shown, the refrigeration unit 70 includes a second container element 71 and a refrigeration element 72. The second container element 71 is disposed inside the storage unit 10 and is used to store the cold transfer medium and refrigerate the coating liquid in the storage unit 10; the refrigeration element 72 is disposed inside the second container element 71 and is connected to the control unit 80 to refrigerate the cold transfer medium under the control of the control unit 80.
[0148] Specifically, the second container element 71 is disposed inside the storage element 11 and connected to the storage element 11 .
[0149] The second container element 71 has a hollow structure.
[0150] The dimensions of the second container element 71 match the dimensions of the storage element 11. Generally, the outer length of the second container element 71 is smaller than the inner length of the storage element 11, the outer width of the second container element 71 is smaller than the inner width of the storage element 11, and the outer height of the second container element 71 is smaller than the inner height of the storage element 11.
[0151] The dimensions of the second container element 71 match the dimensions of the first container element 61. Generally, the length of the second container element 71 is equal to the length of the first container element 61, the width of the second container element 71 is equal to the width of the first container element 61, and the height of the second container element 71 is equal to the height of the first container element 61.
[0152] In some embodiments, there are multiple second container elements 71 , which are symmetrically disposed on both sides of the storage element 11 to better cool the coating liquid in the storage element 11 .
[0153] In some embodiments, a second container element 71 is disposed on one side of the interior of the storage element 11 , and a second container element 71 is disposed on the other side of the interior of the storage element 11 .
[0154] In some embodiments, the second container element 71 is fixedly connected to the storage element 11 , including but not limited to bolt connection.
[0155] In some embodiments, the second container element 71 is a second container.
[0156] The number of cooling elements 72 matches the number of second container elements 71. Generally, the number of cooling elements 72 is equal to the number of second container elements 71.
[0157] In some embodiments, the cooling element 72 is fixedly connected to the second container element 71 , including but not limited to bolt connection.
[0158] In some embodiments, the cooling element 72 is a refrigerator.
[0159] like Figure 4 As shown, the control unit 80 includes a control element 81 and a power supply element 82. The control element 81 is disposed outside the storage unit 10 and is respectively connected to the first conveying unit 20, the second conveying unit 30, the temperature detection unit 40, the viscosity detection unit 50, the heating unit 60, and the refrigeration unit 70; the power supply element 82 is disposed outside the storage unit 10 and is connected to the control element 81 for power supply.
[0160] Specifically, the control element 81 is arranged on the outside of the storage element 11 and is respectively connected to the first liquid driving element 22, the second liquid driving element 32, the temperature detection element 41, the viscosity detection element 51, the heating element 62, and the cooling element 72; the power supply element 82 is arranged on the outside of the storage element 11 and is connected to the storage element 11.
[0161] In some embodiments, the control element 81 is a circuit board.
[0162] In some embodiments, the power supply element 82 includes but is not limited to a battery, which can be charged for use.
[0163] The method of using the utility model is as follows:
[0164] (1) Installation work
[0165] After the storage element 11 is placed in the designated position, it is fixed by bolting;
[0166] Place the first conveying element 21 at a designated position so that the first conveying element 21 is connected to the first through-groove element 12 and the silicone oil tank, and fix them with bolts;
[0167] The second conveying element 31 is placed at a designated position so that the second conveying element 31 is communicated with the first through-groove element 12 and the silicone oil groove respectively, and is fixed by bolts.
[0168] (2) One-time transport operation
[0169] Start the first valve element 23 to open the first conveying element 21;
[0170] The first liquid driving element 22 is started to work so that the coating liquid in the silicone oil tank is transported to the interior of the storage element 11 through the first transport element 21;
[0171] (3) Inspection work
[0172] The temperature of the coating liquid inside the storage element 11 is detected by the temperature detection element 41 .
[0173] The viscosity detection element 51 detects the viscosity and reverse flow of the coating liquid in the storage element 11 .
[0174] The detection data is transmitted to the control unit 81.
[0175] (4) Temperature adjustment operation
[0176] When the temperature of the coating liquid is too low, the control element 81 activates the heating element 62 to heat the conductive medium inside the first container element 61, thereby heating the coating liquid inside the storage element 11 until the set value is reached.
[0177] When the temperature of the coating liquid is too high, the refrigeration element 72 is activated by the control element 81 to cool the conductive medium inside the second container element 71, thereby cooling the coating liquid inside the storage element 11 until the set value is reached.
[0178] (5) Secondary conveying operation
[0179] Start the second valve element 33 to open the second conveying element 31;
[0180] The second liquid driving element 32 is started to work so that the coating liquid reaching a predetermined temperature is delivered to the interior of the silicone oil tank through the second delivery element 31;
[0181] The advantages of the present invention are that the storage unit and the first conveying unit are used in conjunction with each other to convey the coating liquid inside the silicone oil tank to the inside of the storage unit, so that the coating liquid can be subsequently processed; the temperature detection unit, the viscosity detection unit and the control unit are used in conjunction with each other to detect the temperature and viscosity of the coating liquid inside the storage unit, so that the operator can understand the state of the coating liquid and make corresponding adjustments; the heating unit and the refrigeration unit are used in conjunction with each other to control the temperature of the coating liquid to reach the set value, thereby avoiding the coating liquid temperature being too high or too low and improving the coating effect; the second conveying unit can be used to convey the adjusted coating liquid to the silicone oil tank, thereby ensuring the stability of the coating.
[0182] Example 2
[0183] This embodiment is a variation of embodiment 1.
[0184] like Figure 5 、 Figure 6 As shown, the constant temperature and constant viscosity device further includes a compensating unit 90 and a third conveying unit 100. The compensating unit 90 is disposed on a horizontal surface and located on the side of the storage unit 10 for storing the compensating agent. The third conveying unit 100 is disposed on the side of the compensating unit 90 and is in communication with the compensating unit 90 and the storage unit 10, respectively, and is connected to the control unit 80. Under the action of the control unit 80, the compensating agent in the interior of the compensating unit 90 is conveyed to the interior of the storage unit 10.
[0185] like Figure 7 As shown, the storage unit 10 further includes a third through-groove element 14 , wherein the third through-groove element 14 is disposed at the top end of the storage unit 10 and communicates with the third conveying unit 100 .
[0186] Specifically, the third through-groove element 14 is disposed at the top of the storage element 11 .
[0187] The cross section of the third through-groove element 14 is circular.
[0188] The size of the third through-groove element 14 matches the size of the storage element 11. Generally, the radial size of the third through-groove element 14 is smaller than the inner length and inner width of the storage element 11, and the axial size of the third through-groove element 14 is equal to the top wall thickness of the storage element 11.
[0189] The dimensions of the third through-groove member 14 match those of the first through-groove member 12 (second through-groove member 13). Generally, the radial dimension of the third through-groove member 14 is equal to the radial dimension of the first through-groove member 12 (second through-groove member 13), and the axial dimension of the third through-groove member 14 is equal to the axial dimension of the first through-groove member 12 (second through-groove member 13).
[0190] In some embodiments, the third through-channel element 14 is a third through-channel.
[0191] like Figure 8 As shown, the compensation unit 90 includes a compensation element 91 and a fifth through-groove element 92. The compensation element 91 is disposed on a horizontal plane, and a third conveying unit 100 is disposed on the side of the compensation element 91 and is located on the side of the storage unit 10 for storing the coating liquid. The fifth through-groove element 92 is disposed on the side of the compensation element 91 and is connected to the third conveying unit 100.
[0192] Specifically, the compensation element 91 is located on a side of the storage element 11 .
[0193] The compensation element 91 has a hollow structure.
[0194] The size of the compensation element 91 matches the size of the storage element 11. Generally, the outer radial dimension of the compensation element 91 is smaller than the outer length and outer width of the storage element 11, and the outer axial dimension of the compensation element 91 is smaller than the outer height of the storage element 11.
[0195] In some embodiments, the compensation element 91 is made of stainless steel.
[0196] In some embodiments, the compensation element 91 is a solvent compensation tank.
[0197] The cross section of the fifth through-groove element 92 is circular.
[0198] The size of the fifth through-groove element 92 matches the size of the compensation element 91. Generally, the radial size of the fifth through-groove element 92 is smaller than the outer radial size and the outer axial size of the compensation element 91, and the axial size of the fifth through-groove element 92 is equal to the inner thickness of the compensation element 91.
[0199] In some embodiments, the fifth through-channel element 92 is a fifth through-channel.
[0200] like Figure 9 As shown, the third delivery unit 100 includes a third delivery element 101, a third liquid driving element 102, and a third valve element 103. The third delivery element 101 is disposed on the side of the compensation unit 90 and is in communication with the compensation unit 90 and the storage unit 10, respectively, for delivering the compensating agent from the compensation unit 90 to the storage unit 10. The third liquid driving element 102 is disposed at the end of the third delivery element 101 and is connected to the control unit 80, for delivering the compensating agent under the control of the control unit 80. The third valve element 103 is disposed at the end of the third delivery element 101 and is connected to the control unit 80, for controlling the opening and closing of the third delivery element 101 under the control of the control unit 80.
[0201] Specifically, the third conveying element 101 is arranged on the side of the compensation element 91 and is connected to the fifth through-groove element 92 and the third through-groove element 14 respectively; the third liquid driving element 102 is connected to the control element 81; and the third valve element 103 is connected to the control element 81.
[0202] The third conveying element 101 is a hollow structure.
[0203] The size of the third conveying element 101 matches the size of the storage element 11. Generally, the outer diameter of the third conveying element 101 is smaller than the outer length and outer width of the storage element 11.
[0204] The size of the third conveying element 101 matches the size of the compensating element 91. Generally, the outer diameter of the third conveying element 101 is smaller than the outer radial dimension and the outer axial dimension of the compensating element 91.
[0205] The dimensions of the third conveying element 101 match those of the third through-channel element 14 (fifth through-channel element 92). Generally, the inner diameter of the third conveying element 101 is equal to the radial dimension of the third through-channel element 14 (fifth through-channel element 92), and the axial dimension of the third conveying element 101 is greater than the axial dimension of the third through-channel element 14 (fifth through-channel element 92).
[0206] In some embodiments, the third conveying element 101 is fixedly connected to the storage element 11 and the compensation element 91 respectively, including but not limited to bolt connection.
[0207] In some embodiments, the third conveying element 101 is a third conveying pipe.
[0208] In some embodiments, the third liquid driving element 102 is fixedly connected to the third delivery element 101 , including but not limited to a bolt connection.
[0209] In some embodiments, the third liquid driving element 102 is a third water pump.
[0210] In some embodiments, the third valve element 103 is fixedly connected to the third delivery element 101 , including but not limited to a bolt connection.
[0211] In some embodiments, the third valve element 103 is a third valve, including but not limited to a solenoid valve.
[0212] The method of using the utility model is as follows:
[0213] (1) Installation work
[0214] The compensating element 91 is placed in a designated position so that the compensating element 91 is located on the side of the storage element 11 and fixed by connection;
[0215] The third conveying element 101 is placed at a designated position so that the third conveying element 101 is communicated with the fifth through-groove element 92 and the third through-groove element 14 respectively, and fixed by bolt connection.
[0216] (2) Viscosity adjustment operation
[0217] When the viscosity of the coating liquid is too high, the third liquid driving element 102 is activated by the control element 81 to transport the compensating agent in the compensation element 91 to the interior of the storage element 11 through the third transport element 101 until the set value is reached.
[0218] The advantage of the present invention is that the compensating agent can be delivered to the interior of the storage unit by using the coordination between the compensating unit and the third delivery unit to dilute the coating liquid, thereby reducing the viscosity of the coating liquid.
[0219] Example 3
[0220] This embodiment is a variation of Embodiments 1 and 2.
[0221] like Figure 5 As shown, the constant temperature and constant viscosity device further includes a stirring unit 110. The driving end of the stirring unit 110 is arranged at the top end of the outside of the storage unit 10, and the stirring end of the stirring unit 110 is arranged inside the storage unit 10 for stirring the coating liquid in the storage unit 10.
[0222] like Figure 7 As shown, the storage unit 10 further includes a fourth through-groove element 15 , wherein the fourth through-groove element 15 is disposed at the top end of the storage unit 10 , and is used for allowing the stirring end of the stirring unit 110 to enter the interior of the storage unit 10 .
[0223] Specifically, the fourth through-groove element 15 is disposed at the top of the storage element 11 .
[0224] The cross section of the fourth through-groove element 15 is circular.
[0225] The size of the fourth through-groove element 15 matches the size of the storage element 11. Generally, the radial size of the fourth through-groove element 15 is smaller than the inner length and inner width of the storage element 11, and the axial size of the fourth through-groove element 15 is equal to the top wall thickness of the storage element 11.
[0226] The size of the fourth slot element 15 matches the size of the third slot element 14. Generally, the radial size of the fourth slot element 15 is equal to the radial size of the third slot element 14, and the axial size of the fourth slot element 15 is equal to the axial size of the third slot element 14.
[0227] In some embodiments, the fourth through-groove element 15 is a fourth through-groove.
[0228] like Figure 10 As shown, the stirring unit 110 includes a driving element 111 and a stirring element 112. The driving element 111 is disposed at the top of the exterior of the storage unit 10 and is connected to the control unit 80; the stirring element 112 is disposed inside the storage unit 10 and is connected to the driving element 111, and is used to stir the coating liquid in the storage unit 10 under the action of the driving element 111.
[0229] Specifically, the driving element 111 is disposed at the top end of the storage element 11 and connected to the storage element 11 ; the stirring element 112 is disposed inside the storage element 11 and passes through the fourth through-groove element 15 to connect to the driving element 111 .
[0230] In some embodiments, the driving element 111 is fixedly connected to the storage element 11 , including but not limited to a bolt connection.
[0231] In some embodiments, the driving element 111 is a driving motor.
[0232] The stirring element 112 includes a stirring shaft and a plurality of stirring blades. The stirring shaft is disposed within the storage element 11 and passes through the fourth through-groove element 15 to connect to the driving element 111. The stirring shaft is configured to rotate along the circumference of the fourth through-groove element 15 under the action of the driving element 111. The stirring blades are disposed within the storage element 11 and are connected to the stirring shaft. The stirring blades are configured to rotate along the circumference of the fourth through-groove element 15 under the action of the stirring shaft to stir the interior of the storage unit 10.
[0233] In some embodiments, the top end of the stirring shaft protrudes from or is arranged parallel to the top end of the fourth through-groove element 15. That is, the top end of the stirring shaft protrudes from or is arranged parallel to the top end of the outer portion of the storage element 11.
[0234] In some embodiments, the bottom end of the stirring shaft does not contact the bottom end of the interior of the storage element 11 .
[0235] The size of the stirring shaft matches the size of the fourth through-groove element 15. Generally, the radial size of the stirring shaft is equal to the radial size of the fourth through-groove element 15, and the axial size of the stirring shaft is greater than the axial size of the fourth through-groove element 15.
[0236] The size of the stirring shaft matches the size of the storage element 11. Generally, the axial dimension of the stirring shaft is smaller than the inner height of the storage element 11.
[0237] The size of the stirring blade matches the size of the stirring shaft. Generally, the radial size of the stirring blade is larger than the radial size of the stirring shaft, and the axial size (such as thickness) of the stirring blade is smaller than the axial size of the stirring shaft.
[0238] The size of the stirring blade matches the size of the storage element 11. Generally, the radial size of the stirring blade is smaller than the inner length and inner width of the storage element 11, and the axial size (such as thickness) of the stirring blade is smaller than the inner height of the storage element 11.
[0239] In some embodiments, the stirring element 112 is fixedly connected to the driving element 111 , including but not limited to a bolt connection.
[0240] In some embodiments, the stirring element 112 is made of stainless steel.
[0241] The method of using this embodiment is as follows:
[0242] (1) Inspection work
[0243] The temperature of the coating liquid inside the storage element 11 is detected by the temperature detection element 41 .
[0244] The viscosity detection element 51 detects the viscosity and reverse flow of the coating liquid in the storage element 11 .
[0245] The detection data is transmitted to the control unit 81.
[0246] (2) Temperature adjustment operation
[0247] When the temperature of the coating liquid is too low, the control element 81 activates the heating element 62 to heat the conductive medium inside the first container element 61, thereby heating the coating liquid inside the storage element 11 until the set value is reached.
[0248] When the temperature of the coating liquid is too high, the refrigeration element 72 is activated by the control element 81 to cool the conductive medium inside the second container element 71, thereby cooling the coating liquid inside the storage element 11 until the set value is reached.
[0249] (3) Viscosity adjustment operation
[0250] When the viscosity of the coating liquid is too high, the third valve element 103 is activated by the control element 81 to open the third conveying element 101;
[0251] The third liquid driving element 102 is started to work so as to transport the compensating agent in the compensation element 91 to the interior of the storage element 11 through the third transporting element 101 until the set value is reached.
[0252] (4) Mixing operation
[0253] The driving element 111 is started to drive the stirring element 112 to rotate along the circumference of the fourth through-groove element 15 , thereby stirring the coating liquid and the compensating agent inside the storage element 11 .
[0254] The advantage of the present invention is that the coating liquid and the compensating agent are stirred by the stirring unit, so that the molecules in the coating liquid are more evenly distributed, the resistance of the internal structure is reduced, and thus the viscosity is reduced.
[0255] The above description is only a preferred embodiment of the present invention and does not limit the implementation method and protection scope of the present invention. For those skilled in the art, it should be aware that all solutions obtained by equivalent substitutions and obvious changes made using the description and illustrations of the present invention should be included in the protection scope of the present invention.
Claims
1. A constant temperature and constant viscosity device for silicone oil coating liquid, characterized in that: include: A storage unit (10), the storage unit (10) being arranged on a horizontal surface and being used for storing the coating liquid; a first conveying unit (20), the first conveying unit (20) being arranged at the top end of the storage unit (10) and being in communication with the storage unit (10) and the silicone oil tank respectively; a second conveying unit (30), the second conveying unit (30) being arranged on a side of the storage unit (10) and being in communication with the storage unit (10) and the silicone oil tank, respectively, and being used for conveying the treated coating liquid in the storage unit (10) to the silicone oil tank; a temperature detection unit (40), the temperature detection unit (40) being arranged inside the storage unit (10) and being used to detect the temperature of the coating liquid in the storage unit (10); a viscosity detection unit (50), the viscosity detection unit (50) being arranged inside the storage unit (10) and being used to detect the viscosity of the coating liquid in the storage unit (10); a heating unit (60), the heating unit (60) being arranged inside the storage unit (10) and being used to heat the coating liquid in the storage unit (10); a refrigeration unit (70), the refrigeration unit (70) being arranged inside the storage unit (10) and being used to cool the coating liquid in the storage unit (10); A control unit (80) is provided in the storage unit (10) and is respectively connected to the first conveying unit (20), the second conveying unit (30), the temperature detection unit (40), the viscosity detection unit (50), the heating unit (60), and the refrigeration unit (70).
2. The constant temperature and constant viscosity device according to claim 1, characterized in that: The storage unit (10) comprises: A storage element (11), the storage element (11) is arranged on a horizontal plane, the temperature detection unit (40), the viscosity detection unit (50), the heating unit (60) and the refrigeration unit (70) are arranged on the inner side of the storage element (11), and the first conveying unit (20), the second conveying unit (30) and the control unit (80) are arranged on the outside of the storage element (11), and are used to store the coating liquid; a first through-groove element (12), the first through-groove element (12) being disposed at the top end of the storage element (11) and being in communication with the first conveying unit (20); A second through-groove element (13), the second through-groove element (13) is arranged on a side of the storage element (11) and is communicated with the second conveying unit (30).
3. The constant temperature and constant viscosity device according to claim 1, characterized in that: The first conveying unit (20) comprises: a first conveying element (21), the first conveying element (21) being disposed at the top end of the storage unit (10) and being in communication with the storage unit (10) and the silicone oil tank respectively; a first liquid driving element (22), the first liquid driving element (22) being arranged at an end of the first conveying element (21) and connected to the control unit (80), and being used for conveying the coating liquid under the action of the control unit (80); a first valve element (23), the first valve element (23) being arranged at an end of the first conveying element (21) and connected to the control unit (80), and being used for controlling the opening and closing of the first conveying element (21) under the action of the control unit (80); and / or The second conveying unit (30) comprises: a second conveying element (31), the second conveying element (31) being arranged on a side of the storage unit (10) and being in communication with the storage unit (10) and the silicone oil tank, respectively, and being used for conveying the processed coating liquid in the storage unit (10) to the silicone oil tank; a second liquid driving element (32), the second liquid driving element (32) being arranged at an end portion of the second conveying element (31) and connected to the control unit (80), and being used for conveying the coating liquid under the action of the control unit (80); A second valve element (33) is provided at the end of the second conveying element (31) and is connected to the control unit (80) for controlling the opening and closing of the second conveying element (31) under the action of the control unit (80).
4. The constant temperature and constant viscosity device according to claim 1, characterized in that: The temperature detection unit (40) comprises: a temperature detection element (41), the temperature detection element (41) being arranged inside the storage unit (10) and being used to detect the temperature of the coating liquid inside the storage unit (10); and / or The viscosity detection unit (50) comprises: a viscosity detection element (51), the viscosity detection element (51) being arranged inside the storage unit (10) and being used to detect the viscosity of the coating liquid inside the storage unit (10); and / or The heating unit (60) comprises: a first container element (61), the first container element (61) being arranged inside the storage unit (10) and being used to store a heat transfer medium and heat the coating liquid in the storage unit (10); a heating element (62), the heating element (62) being arranged inside the first container element (61) and connected to the control unit (80), and being used for heating the heat transfer medium under the action of the control unit (80); and / or The refrigeration unit (70) comprises: a second container element (71), the second container element (71) being arranged inside the storage unit (10) and being used to store a cold transfer medium and to cool the coating liquid in the storage unit (10); A refrigeration element (72) is arranged inside the second container element (71) and connected to the control unit (80), and is used to cool the cold conduction medium under the action of the control unit (80).
5. The constant temperature and constant viscosity device according to claim 1, characterized in that: The control unit (80) comprises: a control element (81), the control element (81) being arranged outside the storage unit (10) and being respectively connected to the first conveying unit (20), the second conveying unit (30), the temperature detection unit (40), the viscosity detection unit (50), the heating unit (60), and the refrigeration unit (70); A power supply element (82) is provided outside the storage unit (10) and is connected to the control element (81) for supplying power.
6. The constant temperature and constant viscosity device according to any one of claims 1 to 5, characterized in that: Also includes: a compensation unit (90), the compensation unit (90) being arranged on a horizontal plane and located on a side of the storage unit (10) for storing a compensating agent; a third conveying unit (100), the third conveying unit (100) being arranged on a side of the compensation unit (90), and being in communication with the compensation unit (90) and the storage unit (10), and being connected to the control unit (80), and being used for conveying the compensating agent inside the compensation unit (90) to the inside of the storage unit (10) under the action of the control unit (80); and / or A stirring unit (110), wherein a driving end of the stirring unit (110) is arranged at the top end of the outside of the storage unit (10), and a stirring end of the stirring unit (110) is arranged inside the storage unit (10) for stirring the coating liquid in the storage unit (10).
7. The constant temperature and constant viscosity device according to claim 6, characterized in that: The storage unit (10) further comprises: a third through-groove element (14), the third through-groove element (14) being disposed at the top end of the storage unit (10) and being in communication with the third conveying unit (100); and / or A fourth through-groove element (15) is provided at the top end of the storage unit (10) and is used for allowing the stirring end of the stirring unit (110) to enter the interior of the storage unit (10).
8. The constant temperature and constant viscosity device according to claim 6, characterized in that: The compensation unit (90) comprises: a compensation element (91), the compensation element (91) being arranged on a horizontal plane, the third conveying unit (100) being arranged on a side of the compensation element (91) and being located on a side of the storage unit (10) for storing the coating liquid; A fifth through-groove element (92), the fifth through-groove element (92) is arranged on a side of the compensation element (91) and is connected to the third conveying unit (100).
9. The constant temperature and constant viscosity device according to claim 6, characterized in that: The third conveying unit (100) comprises: a third conveying element (101), the third conveying element (101) being disposed on a side of the compensation unit (90) and being in communication with the compensation unit (90) and the storage unit (10), respectively, and being used for conveying the compensating agent in the compensation unit (90) to the interior of the storage unit (10); a third liquid driving element (102), the third liquid driving element (102) being disposed at an end of the third delivery element (101) and connected to the control unit (80), and being used for delivering the compensating agent under the action of the control unit (80); A third valve element (103) is provided at the end of the third conveying element (101) and is connected to the control unit (80) for controlling the opening and closing of the third conveying element (101) under the action of the control unit (80).
10. The constant temperature and constant viscosity device according to claim 6, characterized in that: The stirring unit (110) comprises: a driving element (111), the driving element (111) being disposed at the top end of the exterior of the storage unit (10) and connected to the control unit (80); A stirring element (112) is provided inside the storage unit (10) and is connected to the driving element (111), and is used for stirring the coating liquid in the storage unit (10) under the action of the driving element (111).