Remote intelligent detection system for fiber washing and drying

By designing a remote intelligent detection system for fiber washing and drying, and using a drum working cabin and PLC control system to automatically process fiber samples, the problems of traditional fiber content detection being time-consuming and subject to large errors have been solved, and efficient and safe fiber content detection has been achieved.

CN120741252APending Publication Date: 2025-10-03WENZHOU INST OF TECH TESTING & CALIBRATION
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Patent Information

Application Number
CN202511134920.7
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-08-14
Publication Date
2025-10-03

AI Technical Summary

Technical Problem

Traditional fiber content detection methods rely on manual operations, which are time-consuming, inefficient, costly, and have large errors, and the detection environment is difficult to guarantee.

Method used

A remote intelligent detection system for fiber washing and drying is designed, which includes a drum working chamber, an acid inlet component, an alkali inlet component, a hot air component, a water inlet component and a PLC control system. The addition of chemical reagents and temperature adjustment are controlled by an automated program to achieve automatic detection of fiber content.

Benefits of technology

The automation of fiber content detection is realized, which shortens the detection time, reduces manual errors, and improves detection efficiency and environmental safety.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention provides a remote intelligent detection system for fiber washing and drying. The remote intelligent detection system comprises a roller working cabin, an acid inlet assembly, an alkali inlet assembly, a hot gas assembly, a water inlet assembly and a PLC control system. The roller working cabin comprises an outer cylinder and an inner cylinder, an accommodating cavity of the inner cylinder is divided into a plurality of mutually independent accommodating spaces by non-woven fabrics, each accommodating space is used for independently placing a sample, and the inner cylinder can rotate at a high speed relative to the outer cylinder and is used for rolling and stirring the sample and drying or drying the sample; the acid feeding assembly is used for conveying acid liquor into the roller working cabin, the alkali feeding assembly is used for conveying alkali liquor into the roller working cabin, and the hot air assembly is used for conveying hot air into the roller working cabin; the water inlet assembly is used for conveying working water into the roller working cabin, the PLC control system is provided with a working program input port, and the PLC control system is connected with the acid inlet assembly, the alkali inlet assembly, the hot air assembly and the water inlet assembly and controls the acid inlet assembly, the alkali inlet assembly, the hot air assembly and the water inlet assembly according to an input working program.
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Description

Technical Field

[0001] The present application relates to the field of fiber detection technology, and in particular to a remote intelligent detection system for fiber washing and drying. Background Art

[0002] Fiber content testing has long been a key focus of the textile testing industry, directly impacting the vital interests of consumers. Accurate fiber content labeling allows consumers to make choices based on their needs and preferences. It is also a mandatory inspection for product quality control, ensuring that product labeling is consistent with actual product content and protecting consumer rights. Traditional fiber content testing methods, such as chemical dissolution and microscopic observation, rely on manual labor and present numerous challenges, particularly in the quantitative analysis of fiber content.

[0003] The traditional chemical dissolution method for fiber content detection is cumbersome and requires manual operation. Therefore, there are many problems in the existing detection process: first, the test process is time-consuming, inefficient, and costly; second, manual operation has a high probability of experimental errors; third, the working environment of front-line detection personnel is difficult to guarantee. Summary of the Invention

[0004] The present application provides a remote intelligent detection system for fiber washing and drying, which is used to solve the defects of technical problems in related technologies.

[0005] The present invention provides a fiber washing and drying remote intelligent detection system, the fiber washing and drying remote intelligent detection system comprising: A drum working chamber, comprising an outer drum and an inner drum. The accommodating cavity of the inner drum is divided into a plurality of independent accommodating spaces by non-woven fabric, each of which is used to independently place a sample. The inner drum can rotate at high speed relative to the outer drum to roll and stir the sample, as well as de-dry or dry the sample. An acid inlet assembly includes an acid inlet pump, a first connecting pipeline, and an acid liquid storage chamber. The acid liquid storage chamber is connected to the drum working chamber through the acid inlet pump and the first connecting pipeline, and is used to transport acid liquid into the drum working chamber. The alkali feeding component includes an alkali feeding pump, a second connecting pipeline and an alkali solution storage chamber. The alkali solution storage chamber is connected to the drum working chamber through the alkali feeding pump and the second connecting pipeline, and is used to transport alkali solution into the drum working chamber. a hot air assembly, the hot air assembly comprising a hot air pump, a third connecting pipeline, and a hot air source, the hot air source being connected to the drum working compartment via the hot air pump and the third connecting pipeline, and being used to deliver hot air into the drum working compartment to adjust the temperature in the drum working compartment; a water inlet assembly, the water inlet assembly comprising a water inlet pump, a water inlet valve, a drain pump, and a fourth connecting pipe; the water inlet pump is connected to the drum working compartment via the water inlet valve and the fourth connecting pipe, and is used to deliver working water into the drum working compartment; the drain pump is connected to the drum working compartment via the fourth connecting pipe, and is used to discharge waste water from the drum working compartment; A PLC control system is provided with a work program input port. The PLC control system is respectively connected to the acid inlet component, the alkali inlet component, the hot air component, and the water inlet component, and controls the acid inlet component, the alkali inlet component, the hot air component, and the water inlet component according to the input work program.

[0006] In one embodiment of the remote intelligent detection system for fiber washing and drying of the present invention, the remote control device and the display device, the PLC control system are wirelessly connected to the remote control device, and the remote control device is used to control the acid inlet component, the alkali inlet component, the hot air component, and the water inlet component; the display device is connected to the remote control device, or the display device is connected to the PLC control system to display the real-time status of the drum working compartment.

[0007] In one embodiment of the remote intelligent detection system for fiber washing and drying of the present invention, it also includes a servo drive unit, which is respectively connected to the acid feed pump, the alkali feed pump, the hot air pump, the water feed pump and the drainage pump. The servo drive unit is also electrically connected to the PLC control system, and the PLC control system controls the acid feed pump, the alkali feed pump, the hot air pump, the water feed pump and the drainage pump through the servo drive unit.

[0008] In one embodiment of the fiber washing and drying remote intelligent detection system of the present invention, it also includes an acid discharge port and an acid collection device, one end of the acid collection device is connected to the acid discharge port, and the other end is also connected to the acid inlet pump for recycling the acid.

[0009] In one embodiment of the fiber washing and drying remote intelligent detection system of the present invention, it also includes a temperature sensor, which is used to detect the temperature in the drum working compartment. The PLC control system is electrically connected to the temperature sensor to obtain the temperature in the drum working compartment; it also includes an exhaust port, which is used to discharge the hot air in the drum working compartment.

[0010] In one embodiment of the fiber washing and drying remote intelligent detection system of the present invention, it also includes a shell, the drum working cabin is arranged in the shell, and the outer cylinder and the shell are connected by an elastic component; an opening and a door component are provided on one side of the shell, and the door component is used to seal and cover the opening, and the opening is communicated with the interior of the drum working cabin.

[0011] In one embodiment of the remote intelligent detection system for fiber washing and drying of the present invention, a control panel is provided on the shell, and at least part of the PLC control system is arranged on the control panel; an emergency stop button is provided on the control panel, and the emergency stop button is electrically connected to the PLC control system for controlling the start or stop of the working program.

[0012] In one embodiment of the fiber washing and drying remote intelligent detection system of the present invention, the working procedures include clean water rinsing, acid rinsing, alkaline solution rinsing, and drying procedures; the fiber washing and drying process includes multiple clean water rinsing, acid rinsing, and alkaline solution rinsing.

[0013] In one embodiment of the fiber washing and drying remote intelligent detection system of the present invention, it also includes a plurality of height-adjustable feet, which are arranged at the bottom of the shell, and the exterior of the plurality of height-adjustable feet is provided with anti-slip and wear-resistant parts. BRIEF DESCRIPTION OF THE DRAWINGS

[0014] The accompanying drawings, which are incorporated in and constitute a part of this specification, illustrate embodiments consistent with the present application and, together with the description, serve to explain the principles of the present application.

[0015] Figure 1 This is a working principle diagram of the fiber washing and drying remote intelligent detection system of the present invention. Figure 2 This is a structural diagram of the fiber washing and drying remote intelligent detection system of the present invention.

[0016] The above drawings illustrate specific embodiments of the present application, which will be described in more detail below. These drawings and the textual description are not intended to limit the scope of the present application in any way, but rather to illustrate the concepts of the present application to those skilled in the art by reference to specific embodiments.

[0017] Description of Reference Numerals 1. Main power supply; 2. 24V power supply; 3. PLC master control; 4. Servo drive; 5. Power switch; 6. Touch screen; 7. Touch screen housing; 8. Electrical epoxy board; 9. Electrical board bracket; 10. Machine cover; 11. Machine panel; 12. Water inlet valve; 13. Acid and alkali inlet port; 14. Machine rear cover; 15. Acid and alkali discharge port; 16. Alkali inlet pump; 17. Alkali inlet pump; 18. Acid discharge pump; 19. Alkali discharge pump; 20. Machine base; 21. Servo motor; 22. Servo pulley; 23. Drum pulley; 24. Flange mounting screws; 25. Drum spindle; 26. Spindle rear bearing; 27. Spindle front bearing; 28. Drum spindle Oil seal; 29. ​​Outer cylinder flange; 30. Outer cylinder rear cover reinforcement plate; 31. Outer cylinder rear cover; 32. Inner cylinder flange; 33. Mobile phone control, Ethernet control or computer control; 34. Drum bearing seat; 35. Acid inlet; 36. Alkali inlet; 37. Water inlet; 38. Acid discharge port; 39. Drain port; 40. Alkali discharge port; 41. Outer cylinder; 42. Inner cylinder; 43. Outer cylinder front flange; 44. Outer cylinder front cover; 45. Front flange mounting bolts; 46. Working cabin door; 47. Working cabin door handle; 48. Working cabin door flange; 49. Door flange mounting screws; 50. Working cabin door sealing ring; 51. Machine front casing; 52. Spring seat; 53 Spring. DETAILED DESCRIPTION

[0018] In order to make the purpose, technical solutions and advantages of the present application clearer, the technical solutions in the embodiments of the present application will be described in more detail below in conjunction with the drawings in the preferred embodiments of the present application. In the drawings, the same or similar reference numerals throughout represent the same or similar parts or parts with the same or similar functions. The described embodiments are part of the embodiments of the present application, not all of the embodiments. The embodiments described below with reference to the drawings are exemplary and are intended to be used to explain the present application, and should not be understood as limitations on the present application. Based on the embodiments in the present application, all other embodiments obtained by ordinary technicians in this field without making creative work are within the scope of protection of this application. The embodiments of the present application are described in detail below in conjunction with the drawings.

[0019] In the description of this application, it should be noted that, unless otherwise expressly specified or limited, the terms "mounted," "connected," and "connected" should be understood broadly. For example, they may refer to a fixed connection, an indirect connection via an intermediate medium, internal communication between two components, or an interaction between two components. Those skilled in the art will understand the specific meanings of these terms in this application based on specific circumstances.

[0020] In the description of this application, it should be understood that the terms "up", "down", "front", "back", "left", "right", etc., indicating directions or positional relationships, are based on the directions or positional relationships shown in the accompanying drawings. They are only for the convenience of describing this application and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific direction, be constructed and operated in a specific direction. Therefore, they should not be understood as limitations on this application.

[0021] The terms "first," "second," "third," "fourth," and the like in the specification and claims of this application and the accompanying drawings are used to distinguish similar objects and are not necessarily used to describe a particular order or sequential sequence. It should be understood that the terms used in this manner are interchangeable where appropriate, such that the embodiments of the application described herein can, for example, be implemented in an order other than that illustrated or described herein.

[0022] In addition, the terms "comprises" and "having" and any variations thereof are intended to cover a non-exclusive inclusion. For example, a process, method, system, product or apparatus that includes a series of steps or elements is not necessarily limited to those steps or elements expressly listed but may include other steps or elements not expressly listed or inherent to such process, method, product or apparatus.

[0023] Figure 1 This is a working principle diagram of the fiber washing and drying remote intelligent detection system of the present invention. Figure 2 FIG. 1 is a structural diagram of a remote intelligent detection system for fiber washing and drying according to the present invention. Figure 1 and Figure 2 As shown, the present invention provides a fiber washing and drying remote intelligent detection system, the fiber washing and drying remote intelligent detection system includes: A drum working chamber, comprising an outer drum and an inner drum. The accommodating cavity of the inner drum is divided into a plurality of independent accommodating spaces by non-woven fabric, each of which is used to independently place a sample. The inner drum can rotate at high speed relative to the outer drum to roll and stir the sample, as well as de-dry or dry the sample. An acid inlet assembly includes an acid inlet pump, a first connecting pipeline, and an acid liquid storage chamber. The acid liquid storage chamber is connected to the drum working chamber through the acid inlet pump and the first connecting pipeline, and is used to transport acid liquid into the drum working chamber. The alkali feeding component includes an alkali feeding pump, a second connecting pipeline and an alkali solution storage chamber. The alkali solution storage chamber is connected to the drum working chamber through the alkali feeding pump and the second connecting pipeline, and is used to transport alkali solution into the drum working chamber. a hot air assembly, the hot air assembly comprising a hot air pump, a third connecting pipeline, and a hot air source, the hot air source being connected to the drum working compartment via the hot air pump and the third connecting pipeline, and being used to deliver hot air into the drum working compartment to adjust the temperature in the drum working compartment; a water inlet assembly, the water inlet assembly comprising a water inlet pump, a water inlet valve, a drain pump, and a fourth connecting pipe; the water inlet pump is connected to the drum working compartment via the water inlet valve and the fourth connecting pipe, and is used to deliver working water into the drum working compartment; the drain pump is connected to the drum working compartment via the fourth connecting pipe, and is used to discharge waste water from the drum working compartment; A PLC control system is provided with a work program input port. The PLC control system is respectively connected to the acid inlet component, the alkali inlet component, the hot air component, and the water inlet component, and controls the acid inlet component, the alkali inlet component, the hot air component, and the water inlet component according to the input work program.

[0024] The fiber washing and drying remote intelligent detection system of the present invention has the following experimental principles: after a certain fiber component is dissolved by a corresponding chemical reagent, low-concentration reagent rinsing, acid-base neutralization rinsing, clean water rinsing again, and finally drying are performed to calculate the remaining fiber mass percentage.

[0025] The following describes blended products of polyester fiber with natural cellulose fibers such as cotton fiber and linen fiber, or regenerated cellulose fibers such as viscose fiber.

[0026] When a polyester-cotton blended fabric, the initial dry mass of the sample The dry mass of the polyester fiber residue was 71.88 g. The blended fabric was dissolved in 75% (mass fraction) sulfuric acid solution, and then rinsed with cold water and dilute ammonia solution several times, and then the crucible and the residue were dried. The net dry mass fraction P of polyester fiber is 38.1%, and the net dry mass fraction P of cotton fiber is 61.9%.

[0027] In the calculation of fiber content, the content of insoluble components in the mixture is expressed as a percentage of the mixture mass. The calculation method based on net dry mass is as follows: ; Where: P--net dry mass fraction of insoluble components, %; --Dry mass of the sample, in grams (g); --Dry mass of the residue, in grams (g); d - correction factor for mass change of insoluble components. The d values ​​applicable to various fibers are given in the corresponding parts of the standard.

[0028] In one embodiment of the present invention, the remote control device and the display device, the PLC control system are wirelessly connected to the remote control device, and the remote control device is used to control the acid inlet component, the alkali inlet component, the hot air component, and the water inlet component; the display device is connected to the remote control device, or the display device is connected to the PLC control system to display the real-time status of the drum working compartment.

[0029] In one embodiment of the present invention, a servo drive unit is further included, which is respectively connected to the acid feed pump, the alkali feed pump, the hot air pump, the water feed pump and the drainage pump. The servo drive unit is also electrically connected to the PLC control system, and the PLC control system controls the acid feed pump, the alkali feed pump, the hot air pump, the water feed pump and the drainage pump through the servo drive unit.

[0030] In one embodiment of the present invention, it further comprises an acid discharge port and an acid liquid collecting device, one end of the acid liquid collecting device is connected to the acid discharge port, and the other end is also connected to the acid inlet pump for recycling the acid liquid.

[0031] In one embodiment of the present invention, a temperature sensor is further included, which is used to detect the temperature in the drum working compartment. The PLC control system is electrically connected to the temperature sensor to obtain the temperature in the drum working compartment; and an exhaust port is also included, which is used to discharge the hot air in the drum working compartment.

[0032] In one embodiment of the present invention, it further includes a shell, the drum working chamber is arranged in the shell, and the outer cylinder and the shell are connected by an elastic component; an opening and a door component are provided on one side of the shell, and the door component is used to seal and cover the opening, and the opening is connected to the interior of the drum working chamber.

[0033] In one embodiment of the present invention, a control panel is provided on the shell, and at least part of the PLC control system is arranged on the control panel; an emergency stop button is provided on the control panel, and the emergency stop button is electrically connected to the PLC control system for controlling the start or stop of the working program.

[0034] In one embodiment of the present invention, the working procedures include water rinsing, acid rinsing, alkali rinsing, and drying procedures; the fiber washing and drying process includes multiple water rinsing, acid rinsing, and alkali rinsing.

[0035] In one embodiment of the present invention, it further comprises a plurality of height-adjustable feet, wherein the plurality of height-adjustable feet are arranged at the bottom of the shell, and the exterior of the plurality of height-adjustable feet is provided with anti-slip and wear-resistant parts.

[0036] When the machine is used to wash strong acid, it must be discharged at the strong acid outlet. At the same time, it can also recycle strong acid or collect waste acid, which is conducive to secondary utilization or environmentally friendly collection of waste acid.

[0037] PLC control is the overall control output system of the instrument. After human operation, the input is input to the display screen and then transmitted to the PLC overall control system. The PLC transmits each step to each electrical component (it is also provided to the display screen and Ethernet link wirelessly and then to mobile phones and computers, making the entire system easy to operate and quick).

[0038] like Figure 1 As shown, the fiber washing and drying remote intelligent detection system of the present invention includes a main power supply 1, a main power supply control system, and a power supply control system for an instrument, which provides a low-voltage power supply and all electrical components control systems.

[0039] 24V power supply 2, 24V power supply is the low-voltage power supply of the instrument, which is provided to each relay control and touch screen control system, and provided to the normal control of the display screen wireless network and Ethernet.

[0040] PLC master control 3. PLC control is the overall control output system of the instrument. After human operation, the input is input to the display screen and then transmitted to the PLC master control system. PLC transmits each step to each electrical component (it is also provided to the display screen and Ethernet link wirelessly and then to mobile phones and computers, making the entire system operation convenient and quick).

[0041] Servo drive 4, servo drive control, servo drive is to control the rotation drive of the instrument. After the PLC controls the servo drive control, it provides the servo motor drive and then links the roller drive to achieve the effect of cleaning, dehydration and drying the sample.

[0042] The machine also includes a power switch 5; a touch screen 6; a touch screen housing 7; an electrical epoxy board 8; an electrical board bracket 9; a machine cover 10; a machine panel 11; a water inlet valve 12; an acid and alkali inlet port 13; a machine rear cover 14; an acid and alkali outlet port 15; an alkali inlet pump 16; an alkali inlet pump 17; an acid outlet pump 18; an alkali outlet pump 19; a machine foot 20; a servo motor 21; a servo pulley 22; a drum pulley 23; flange mounting screws 24; a drum spindle 25; a spindle rear bearing 26; a spindle front bearing 27; a drum spindle oil seal 28; an outer cylinder flange 29; an outer cylinder rear Cover reinforcement plate 30; outer cylinder rear cover plate 31; inner cylinder flange 32; mobile phone control, Ethernet control or computer control 33; drum bearing seat 34; acid inlet 35; alkali inlet 36; water inlet 37; acid discharge port 38; water outlet 39; alkali discharge port 40; outer cylinder 41; inner cylinder 42; outer cylinder front flange 43; outer cylinder front cover plate 44; front flange mounting bolts 45; working cabin door 46; working cabin door handle 47; working cabin door flange 48; door flange mounting screws 49; working cabin door sealing ring 50; machine front casing 51; spring seat 52; spring 53.

[0043] The temperature controller takes the temperature of the working chamber and provides it to the PLC system to control the temperature. The drainage control controls the drainage pump in the instrument. The water inlet control controls the water inlet valve in the instrument. The acid inlet control controls the acid inlet pump in the instrument. The alkali inlet control controls the alkali inlet pump in the instrument. The hot air control controls the hot air pump in the instrument.

[0044] The touch screen is controlled by a wireless Ethernet system. The touch screen is the signal system that the operator provides to the PLC, and the operator inputs the required program into the screen. The wireless network function is used to connect the wireless network provided by the screen and the PLC. The Ethernet control system connects the required devices. It can be connected to digital devices such as computers, AIP, and mobile phones. The instrument functions can also be controlled through the app on the computer or mobile phone. At the same time, every function of the instrument can be operated by mobile phone or computer.

[0045] Emergency stop control: Emergency stop control is used when the machine is not working properly or the machine needs to stop in time. Press the emergency stop button and the machine will stop or terminate all programs immediately.

[0046] The drain port is used to discharge waste water from the machine. The acid outlet is used to discharge strong acid during washing. It can also be used to recycle strong acid or collect waste acid, which is beneficial for secondary use or environmentally friendly collection of waste acid. The exhaust port is used to discharge the hot air generated inside the drum when the machine drum is drying the sample. This can increase the hot air circulation inside the drum, better increase the temperature, and quickly dry the sample.

[0047] The drum working chamber consists of an outer cylinder and an inner cylinder. The outer cylinder is specified and can better store acid, alkali, and water. The inner cylinder is used to roll and stir the sample, and can also rotate at high speed to quickly dehydrate the sample, increasing the rapid drying effect. The working chamber door must be closed after the sample is placed and during the washing process. It is used to seal the working chamber. The working chamber door handle is used to close and open the door.

[0048] The drainage pump is controlled by the drainage control to discharge the waste water inside the working chamber. The water inlet valve is controlled by the water inlet control system to control the required water inlet volume. The servo motor is controlled by the servo drive control system to control the operation of the servo motor. At the same time, the staff can also set the number of revolutions required for the sample on the screen. The free setting of high-speed operation can quickly dry the sample, reduce the drying time of the sample, and quickly produce the sample results.

[0049] The acid inlet pump is controlled by the acid inlet control to control the amount of acid inlet. The acid inlet pump is made of acid, alkali and corrosion-resistant materials, which can achieve a durable effect. The alkali inlet pump is controlled by the alkali inlet control to control the amount of alkali inlet. The alkali inlet pump is made of acid, alkali and corrosion-resistant materials, which can achieve a durable effect. The hot air pump first uses the temperature controller to take the temperature of the working cabin and provide it to the PLC. The PLC receives the display screen or Ethernet link. Computers, AIPs, and mobile phones can control the PLC instructions for hot air control. The hot air control receives the required temperature instructions to the hot air pump.

[0050] The all-stainless steel casing adopts 304 stainless steel for corrosion resistance, durability, beauty and elegance, and is also easy to clean. The mechanical low feet adopt stainless steel screw rods, and the bottom adopts high-performance and high-hardness low feet. Anti-slip and wear-resistant low-foot rubber is added to the bottom. The mechanical low feet adopt stainless steel screw rods, and the bottom adopts high-performance and high-hardness low feet. Anti-slip and wear-resistant low-foot rubber is added to the bottom.

[0051] The present invention is based on the concept of PLC module automation. By using Ethernet to support VPN programs, network ports and serial ports for remote operation and control of the system under WiFi conditions, remote control and real-time monitoring of equipment operation can be achieved on mobile phones and computers. In combination with advanced technologies such as high-precision servo motors and horizontal tumbling washing and drying, the overall structure of the intelligent system is designed, and each module system is developed; the focus is on the development and design of remote control and automatic liquid addition systems to achieve intelligent control of liquid intake; the development of intelligent washing program devices and intelligent drying program devices to achieve simultaneous operation of multiple batches of samples entering the cabin; finally, sample comparison tests are carried out to debug and improve the automation device; and finally a mature automated and intelligent fiber washing and drying detection device is completed. It has the following advantages: (1) Develop a remote control system that uses Ethernet to support VPN programs, network ports, and serial ports to remotely operate and control the system under WiFi conditions, thereby enabling remote control and real-time monitoring of equipment operation via mobile phones and computers; (2) Based on the PLC module automation concept, combined with high-precision servo motors, horizontal tumble washing and drying and other advanced technologies, develop intelligent control systems for each module component in the system; (3) Through the development of an intelligent washing program system, the PLC control system controls the required liquid level of the required liquid, and the control system controls the liquid inlet system of the mechanical number (water inlet valve, acid inlet, alkali inlet), and adds an imported acid-resistant and alkali-resistant booster self-priming pump, which can accurately control the required capacity and realize intelligent liquid addition; after research and development, a tumbling washing method is used, and the drum can accommodate multiple samples at the same time. Each sample is separated by a non-woven bag, so that multiple samples can be washed at different angles in multiple directions at the same time, and the amount of each sample is kept. (4) By developing an intelligent dehydration and drying integrated program system, the intelligent fully automatic dehydration and drying functions are realized, which can directly make the sample reach a constant weight state; (5) The device can operate 60 samples at a time, greatly shortening the detection time.

[0052] Those skilled in the art will readily appreciate other embodiments of the present application after considering the specification and practicing the invention disclosed herein. This application is intended to cover any variations, uses, or adaptations of the present application that follow the general principles of the present application and include common knowledge or customary techniques in the art not disclosed herein. The description and examples are to be considered as exemplary only, and the true scope and spirit of the present application are indicated by the following claims.

[0053] It should be understood that the present application is not limited to the exact structure described above and shown in the drawings, and that various modifications and changes may be made without departing from the scope thereof. The scope of the present application is limited only by the appended claims.

Claims

1. A fiber washing and drying remote intelligent detection system, characterized in that: The fiber washing and drying remote intelligent detection system includes: A drum working chamber, comprising an outer drum and an inner drum. The accommodating cavity of the inner drum is divided into a plurality of independent accommodating spaces by non-woven fabric, each of which is used to independently place a sample. The inner drum can rotate at high speed relative to the outer drum to roll and stir the sample, as well as de-dry or dry the sample. An acid inlet assembly, comprising an acid inlet pump, a first connecting pipeline, and an acid liquid storage chamber, wherein the acid liquid storage chamber is connected to the drum working chamber through the acid inlet pump and the first connecting pipeline, and is used to transport acid liquid into the drum working chamber; an alkali feeding component, the alkali feeding component comprising an alkali feeding pump, a second connecting pipeline and an alkali solution storage chamber, the alkali solution storage chamber being connected to the drum working chamber through the alkali feeding pump and the second connecting pipeline, and being used for conveying alkali solution into the drum working chamber; a hot air assembly, the hot air assembly comprising a hot air pump, a third connecting pipeline, and a hot air source, the hot air source being connected to the drum working compartment via the hot air pump and the third connecting pipeline, and being used to deliver hot air into the drum working compartment to adjust the temperature in the drum working compartment; a water inlet assembly, the water inlet assembly comprising a water inlet pump, a water inlet valve, a drain pump, and a fourth connecting pipe; the water inlet pump being connected to the drum working compartment via the water inlet valve and the fourth connecting pipe; and being used to deliver working water into the drum working compartment; the drain pump being connected to the drum working compartment via the fourth connecting pipe, and being used to discharge waste water from the drum working compartment; A PLC control system is provided with a work program input port. The PLC control system is respectively connected to the acid inlet component, the alkali inlet component, the hot air component, and the water inlet component, and controls the acid inlet component, the alkali inlet component, the hot air component, and the water inlet component according to the input work program.

2. The fiber washing and drying remote intelligent detection system according to claim 1 is characterized in that: The remote control device and the display device, the PLC control system is wirelessly connected to the remote control device, and the remote control device is used to control the acid inlet component, the alkali inlet component, the hot air component, and the water inlet component; The display device is connected to the remote control device, or the display device is connected to the PLC control system to display the real-time status of the drum working compartment.

3. The fiber washing and drying remote intelligent detection system according to claim 1 is characterized in that: It also includes a servo drive unit, which is respectively connected to the acid feed pump, the alkali feed pump, the hot air pump, the water feed pump and the drainage pump. The servo drive unit is also electrically connected to the PLC control system, and the PLC control system controls the acid feed pump, the alkali feed pump, the hot air pump, the water feed pump and the drainage pump through the servo drive unit.

4. The fiber washing and drying remote intelligent detection system according to claim 3 is characterized in that: It also includes an acid discharge port and an acid liquid collecting device. One end of the acid liquid collecting device is connected to the acid discharge port, and the other end is connected to the acid inlet pump for circulating the acid liquid.

5. The fiber washing and drying remote intelligent detection system according to claim 3 is characterized in that: It also includes a temperature sensor, which is used to detect the temperature in the drum working compartment. The PLC control system is electrically connected to the temperature sensor to obtain the temperature in the drum working compartment; it also includes an exhaust port, which is used to discharge the hot air in the drum working compartment.

6. The fiber washing and drying remote intelligent detection system according to any one of claims 1 to 5, characterized in that: It also includes a shell, the drum working chamber is arranged in the shell, and the outer cylinder and the shell are connected by an elastic component; An opening and a door assembly are provided on one side of the shell. The door assembly is used to seal and cover the opening. The opening is connected to the interior of the drum working compartment.

7. The fiber washing and drying remote intelligent detection system according to claim 6 is characterized in that: The housing is provided with a control panel, and at least a portion of the PLC control system is arranged on the control panel; The control panel is provided with an emergency stop button, which is electrically connected to the PLC control system and is used to control the start or stop of the working program.

8. The fiber washing and drying remote intelligent detection system according to claim 6 is characterized in that: The working procedures include water rinsing, acid rinsing, alkali rinsing, and drying procedures; The fiber washing and drying process includes a plurality of the clean water rinses, the acid rinses and the alkaline solution rinses.

9. The fiber washing and drying remote intelligent detection system according to claim 6, characterized in that: It also includes a plurality of height-adjustable feet, which are arranged at the bottom of the shell, and the exterior of the plurality of height-adjustable feet is provided with anti-slip and wear-resistant parts.