A fiber washing and drying remote intelligent detection system

By designing a remote intelligent fiber washing and drying detection system, the problems of long detection time, low efficiency and large error in traditional fiber content detection have been solved, realizing automated, fast and accurate fiber content detection.

CN224682020UActive Publication Date: 2026-08-25WENZHOU INST OF TECH TESTING & CALIBRATION
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Patent Information

Application Number
CN202521724933.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-08-14
Publication Date
2026-08-25
Estimated Expiration
2035-08-14

AI Technical Summary

Technical Problem

Traditional fiber content testing methods rely on manual operation, which is time-consuming, inefficient, costly, and prone to large test errors. Furthermore, the testing environment is difficult to guarantee.

Method used

Design a remote intelligent fiber washing and drying detection system, including 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, to realize an automated fiber content detection process and perform real-time monitoring through remote control and display devices.

Benefits of technology

It achieves efficient and accurate fiber content detection, reduces human error, shortens detection time, and improves detection efficiency and environmental safety.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The fiber washing and drying remote intelligent detection system has the advantages that the fiber washing and drying remote intelligent detection system can realize the automatic control of the acid, the alkali, the hot air and the water, and the fiber washing and drying remote intelligent detection system can realize the automatic control of the acid, the alkali, the hot air and the water, and the fiber washing and drying remote intelligent detection system can realize the automatic control of the acid, the alkali, the hot air and the water, and the fiber washing and drying remote intelligent detection system can realize the automatic control of the acid, the alkali, the hot air and the water, and the fiber washing and drying remote intelligent detection system can realize the automatic control of the acid, the alkali, the hot air and the water, and the fiber washing and drying remote intelligent detection system can realize the automatic control of the acid, the alkali, the hot air and the water, and the fiber washing and drying remote intelligent detection system can realize the automatic control of the acid, the alkali, the hot air and the water, and the fiber washing and drying remote intelligent detection system can realize the automatic control of the acid, the alkali, the hot air and the water, and the fiber washing and drying remote intelligent detection system can realize the automatic control of the acid, the alkali, the hot air and the water, and the fiber washing and drying remote intelligent detection system can realise the automatic control of the acid, the alkali, the hot air and the water.
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Description

Technical Field

[0001] This application relates to the field of fiber testing technology, and in particular to a remote intelligent testing system for fiber washing and drying. Background Technology

[0002] Fiber content testing has always been a key focus in the textile testing industry, directly impacting consumers' interests. Accurate fiber content labeling allows consumers to make choices based on their needs and preferences, and it's also a mandatory test for product quality control, ensuring that product label information matches the actual product and protecting consumer rights. Traditional fiber content testing methods, such as chemical dissolution and microscopic observation, rely on manual operation and have many problems, especially in the quantitative analysis of fiber content.

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

[0004] This application provides a remote intelligent detection system for fiber washing and drying to address the deficiencies in related technologies.

[0005] This utility model provides a remote intelligent detection system for fiber washing and drying, the remote intelligent detection system for fiber washing and drying includes: A roller working chamber includes an outer cylinder and an inner cylinder. The inner cylinder's accommodating cavity is divided into multiple independent accommodating spaces by non-woven fabric. Each accommodating space is used to independently place a sample. The inner cylinder can rotate at high speed relative to the outer cylinder for rolling and stirring the sample, as well as de-drying or drying the sample. The acid inlet assembly includes an acid inlet pump, a first connecting pipe, and an acid storage chamber. The acid storage chamber is connected to the drum working chamber via the acid inlet pump and the first connecting pipe, and is used to supply acid to the drum working chamber. The alkali inlet assembly includes an alkali inlet pump, a second connecting pipe, and an alkali storage chamber. The alkali storage chamber is connected to the drum working chamber via the alkali inlet pump and the second connecting pipe, and is used to supply alkali to the drum working chamber. A hot air assembly, comprising a hot air pump, a third connecting pipe, and a hot air source, wherein the hot air source is connected to the drum working chamber via the hot air pump and the third connecting pipe, for supplying hot air into the drum working chamber to regulate the temperature inside the drum working chamber; The water inlet assembly includes 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 chamber through the water inlet valve and the fourth connecting pipe, and is used to deliver working water into the drum working chamber. The drain pump is connected to the drum working chamber through the fourth connecting pipe, and is used to discharge wastewater from the drum working chamber. The PLC control system is equipped with a working program input port. The PLC control system is connected to the acid inlet component, the alkali inlet component, the hot air component, and the water inlet component respectively, and controls the acid inlet component, the alkali inlet component, the hot air component, and the water inlet component according to the input working program.

[0006] In one embodiment of the fiber washing and drying remote intelligent detection system of this utility model, the remote control device and the display device are wirelessly connected to the PLC control system. 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 PLC control system to display the real-time status of the drum working chamber.

[0007] In one embodiment of the fiber washing and drying remote intelligent detection system of this utility model, a servo drive unit is further included. The servo drive unit is connected to the acid inlet pump, the alkali inlet pump, the hot air pump, the water inlet pump and the drain pump respectively. The servo drive unit is also electrically connected to the PLC control system. The PLC control system controls the acid inlet pump, the alkali inlet pump, the hot air pump, the water inlet pump and the drain pump through the servo drive unit.

[0008] In one embodiment of the fiber washing and drying remote intelligent detection system of this utility model, it further 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 connected to the acid inlet pump for the recycling of acid.

[0009] In one embodiment of the fiber washing and drying remote intelligent detection system of this utility model, a temperature sensor is also included, which is used to detect the temperature inside the drum working chamber. The PLC control system is electrically connected to the temperature sensor to obtain the temperature inside the drum working chamber. An exhaust port is also included, which is used to discharge hot air from the drum working chamber.

[0010] In one embodiment of the fiber washing and drying remote intelligent detection system of this utility model, a housing is also included, the drum working chamber is disposed inside the housing, and the outer cylinder is connected to the housing by an elastic component; an opening and a door assembly are provided on one side of the housing, the door assembly is used to seal and cover the opening, and the opening communicates with the interior of the drum working chamber.

[0011] In one embodiment of the fiber washing and drying remote intelligent detection system of this utility model, the housing is provided with a control panel, and at least part of the PLC control system is set 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.

[0012] In one embodiment of the fiber washing and drying remote intelligent detection system of this utility model, the working procedure includes water rinsing, acid rinsing, alkaline rinsing, and drying; the fiber washing and drying process includes multiple water rinsing, acid rinsing, and alkaline rinsing.

[0013] In one embodiment of the fiber washing and drying remote intelligent detection system of this utility model, a plurality of height-adjustable feet are also included. The plurality of height-adjustable feet are disposed at the bottom of the housing, and the exterior of the plurality of height-adjustable feet is provided with anti-slip and wear-resistant parts. Attached Figure Description

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

[0015] Figure 1 This is a schematic diagram illustrating the working principle of the remote intelligent detection system for fiber washing and drying of this utility model. Figure 2 This is a schematic diagram of a remote intelligent detection system for fiber washing and drying according to this utility model.

[0016] The accompanying drawings illustrate specific embodiments of this application, which will be described in more detail below. These drawings and descriptions are not intended to limit the scope of the concept in any way, but rather to illustrate the concept of this application to those skilled in the art through reference to particular embodiments.

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

[0018] To make the objectives, technical solutions, and advantages of this application clearer, the technical solutions in the embodiments of this application will be described in more detail below with reference to the accompanying drawings. In the drawings, the same or similar reference numerals denote the same or similar components or components having the same or similar functions throughout. The described embodiments are some, but not all, embodiments of this application. The embodiments described below with reference to the accompanying drawings are exemplary and intended to explain this application, and should not be construed as limiting this application. All other embodiments obtained by those skilled in the art based on the embodiments of this application without creative effort are within the scope of protection of this application. The embodiments of this application will be described in detail below with reference to the accompanying drawings.

[0019] In the description of this application, it should be noted that, unless otherwise expressly specified and limited, the terms "installation," "connection," and "linking" should be interpreted broadly. For example, they can refer to a fixed connection, an indirect connection through an intermediate medium, or the internal communication between two components or the interaction between two components. Those skilled in the art can understand the specific meaning of the above terms in this application according to the specific circumstances.

[0020] In the description of this application, it should be understood that the terms "upper", "lower", "front", "rear", "left", "right", etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are used 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 orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this application.

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

[0022] Furthermore, the terms “comprising” and “having”, and any variations thereof, are intended to cover non-exclusive inclusion, such that a process, method, system, product, or apparatus that includes a series of steps or units is not necessarily limited to those steps or units that are explicitly listed, but may include other steps or units that are not explicitly listed or that are inherent to such process, method, product, or apparatus.

[0023] Figure 1 This is a schematic diagram illustrating the working principle of the remote intelligent detection system for fiber washing and drying of this utility model. Figure 2 This is a schematic diagram of a remote intelligent detection system for fiber washing and drying according to this utility model. Figure 1 and Figure 2 As shown, this utility model provides a remote intelligent detection system for fiber washing and drying, the remote intelligent detection system for fiber washing and drying includes: A roller working chamber includes an outer cylinder and an inner cylinder. The inner cylinder's accommodating cavity is divided into multiple independent accommodating spaces by non-woven fabric. Each accommodating space is used to independently place a sample. The inner cylinder can rotate at high speed relative to the outer cylinder for rolling and stirring the sample, as well as de-drying or drying the sample. The acid inlet assembly includes an acid inlet pump, a first connecting pipe, and an acid storage chamber. The acid storage chamber is connected to the drum working chamber via the acid inlet pump and the first connecting pipe, and is used to supply acid to the drum working chamber. The alkali inlet assembly includes an alkali inlet pump, a second connecting pipe, and an alkali storage chamber. The alkali storage chamber is connected to the drum working chamber via the alkali inlet pump and the second connecting pipe, and is used to supply alkali to the drum working chamber. A hot air assembly, comprising a hot air pump, a third connecting pipe, and a hot air source, wherein the hot air source is connected to the drum working chamber via the hot air pump and the third connecting pipe, for supplying hot air into the drum working chamber to regulate the temperature inside the drum working chamber; The water inlet assembly includes 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 chamber through the water inlet valve and the fourth connecting pipe, and is used to deliver working water into the drum working chamber. The drain pump is connected to the drum working chamber through the fourth connecting pipe, and is used to discharge wastewater from the drum working chamber. The PLC control system is equipped with a working program input port. The PLC control system is connected to the acid inlet component, the alkali inlet component, the hot air component, and the water inlet component respectively, and controls the acid inlet component, the alkali inlet component, the hot air component, and the water inlet component according to the input working program.

[0024] The principle of this utility model's remote intelligent detection system for fiber washing and drying is to dissolve a certain fiber component with appropriate chemical reagents, and then perform steps such as low-concentration reagent rinsing, acid-base neutralization rinsing, rinsing with clean water again, and finally drying, and calculate the remaining fiber mass percentage.

[0025] The following explanation will be based on blended products of polyester fiber with natural cellulose fibers such as cotton and flax, or regenerated cellulose fibers such as viscose fiber.

[0026] When a polyester-cotton blended fabric is sampled, the initial dry mass The weight was 71.88g. The blended fabric was dissolved in a 75% (mass fraction) sulfuric acid solution, and then rinsed multiple times with cold water and dilute ammonia solution. After drying the crucible and residue, the dry weight of the polyester fiber residue was obtained. The weight is 28.73g, and the correction factor d is 1. Therefore, the net dry mass fraction P of the polyester fiber is 38.1%, and the net dry mass fraction P of the 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's mass. The calculation method based on net dry mass is as follows: ; In the formula: P -- Net dry mass fraction of insoluble component, % --The 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. Applicable d values ​​for various fibers are given in the relevant sections of the standard.

[0028] In one embodiment of this utility model, the remote control device and the display device are wirelessly connected to the PLC control system. The remote control device is used to control the acid inlet component, the alkali inlet component, the hot gas component, and the water inlet component. The display device is connected to the remote control device or the PLC control system to display the real-time status of the drum working chamber.

[0029] In one embodiment of this utility model, a servo drive unit is further included. The servo drive unit is connected to the acid inlet pump, the alkali inlet pump, the hot air pump, the water inlet pump, and the drain pump, respectively. The servo drive unit is also electrically connected to the PLC control system. The PLC control system controls the acid inlet pump, the alkali inlet pump, the hot air pump, the water inlet pump, and the drain pump through the servo drive unit.

[0030] In one embodiment of this utility model, it further includes an acid drain port and an acid collection device. One end of the acid collection device is connected to the acid drain port, and the other end is connected to the acid inlet pump for the recycling of acid.

[0031] In one embodiment of this utility model, a temperature sensor is further included to detect the temperature inside the drum working chamber. The PLC control system is electrically connected to the temperature sensor to obtain the temperature inside the drum working chamber. An exhaust port is also included to discharge hot air from the drum working chamber.

[0032] In one embodiment of the present invention, a housing is further included, the roller working chamber is disposed inside the housing, and the outer cylinder is connected to the housing by an elastic component; an opening and a door assembly are provided on one side of the housing, the door assembly is used to seal and cover the opening, and the opening communicates with the interior of the roller working chamber.

[0033] In one embodiment of this utility model, the housing is provided with a control panel, and at least part of the PLC control system is disposed 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.

[0034] In one embodiment of this utility model, the working procedure includes water rinsing, acid rinsing, alkaline rinsing, and drying; the fiber washing and drying process includes multiple water rinsing, acid rinsing, and alkaline rinsing.

[0035] In one embodiment of the present invention, a plurality of height-adjustable feet are further included. The plurality of height-adjustable feet are disposed at the bottom of the housing, and the exterior of the plurality of height-adjustable feet is provided with anti-slip and wear-resistant parts.

[0036] This device is used when washing strong acids, and the acid must be discharged from the strong acid outlet. It can also be used to recycle strong acids or collect waste acid, which is beneficial for secondary use or environmentally friendly waste acid collection.

[0037] PLC control is the instrument's overall control output system. The input from human operation is displayed on the screen and then transmitted to the PLC overall control system. The PLC transmits each step to each electrical component (and also provides it to the display screen and Ethernet connection for wireless access to mobile phones and computers, making the entire system convenient and fast to operate).

[0038] like Figure 1 As shown, the fiber washing and drying remote intelligent detection system of this utility model includes a main power supply 1, a main power control, a power supply control system for all instruments, and a control system for low-voltage power and all electrical components.

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

[0040] PLC master control 3. PLC control is the instrument's master control output system. After human operation input to the display screen, it is transmitted to the PLC master control system. The PLC transmits each step to each electrical component (and also provides it to the display screen and Ethernet connection wirelessly to mobile phones and computers, making the whole system operation convenient and fast).

[0041] Servo drive 4, servo drive control, the servo drive controls the rotation of the instrument. After being controlled by the PLC, the servo drive provides power to the servo motor, which in turn connects to the roller drive, enabling the sample to achieve the effects of cleaning, dehydration, and drying.

[0042] It also includes: 5. Power switch; 6. Touch screen; 7. Touch screen housing; 8. Electrical epoxy board; 9. Electrical board bracket; 10. Machine top cover; 11. Machine panel; 12. Water inlet valve; 13. Acid / alkali inlet interface; 14. Machine rear cover; 15. Acid / alkali outlet interface; 16. Alkali inlet pump; 17. Alkali outlet pump; 18. Alkali outlet pump; 19. Machine base; 20. Servo motor; 21. Servo pulley; 22. Drum pulley; 23. Flange mounting screws; 24. Drum spindle; 25. Rear spindle bearing; 26. Front spindle bearing; 27. Drum spindle oil seal; 28. Outer cylinder flange; 29. ​​Outer cylinder rear... 30. Reinforcing plate; 31. Outer cylinder rear cover plate; 32. Inner cylinder flange; 33. Mobile phone control, Ethernet control, or computer control; 34. Roller bearing seat; 35. Acid inlet; 36. Alkali inlet; 37. Water inlet; 38. Acid outlet; 39. Drain outlet; 40. Alkali outlet; 41. Outer cylinder; 42. Inner cylinder; 43. Outer cylinder front flange; 44. Outer cylinder front cover plate; 45. Front flange mounting bolts; 46. Working chamber door; 47. Working chamber door handle; 48. Working chamber door flange; 49. Door flange mounting screws; 50. Working chamber door sealing ring; 51. Machine front casing; 52. Spring seat; 53. Spring.

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

[0044] The touchscreen, wireless network, and Ethernet system control system uses a touchscreen as the signal system for the PLC, where the operator inputs the required program. The wireless network connects the touchscreen and PLC, and the Ethernet control system links to necessary devices, including computers, AI assistants, and mobile phones. Instrument functions can also be controlled via mini-programs on computers and mobile phones. Simultaneously, each function of the instrument can be operated via mobile phone or computer.

[0045] Emergency stop control is used when the machine is not operating normally or when the machine needs to be stopped in time. Pressing the emergency stop button will immediately stop or terminate all programs.

[0046] The drain outlet is used to discharge wastewater from inside the machine. The acid discharge outlet is used when the machine is washing with strong acids, and it must be discharged through the strong acid outlet. It can also be used to recover strong acids or collect waste acids, which is beneficial for secondary use or environmentally friendly waste acid collection. The exhaust outlet is used to discharge the hot air generated inside the drum when the machine's drum is drying the sample. This can increase the circulation of hot air inside the drum, better increase the temperature, and dry the sample quickly.

[0047] The drum working chamber consists of an outer cylinder and an inner cylinder. The outer cylinder is standardized and can better hold acids, alkalis, and water. The inner cylinder is used to roll and stir the sample, and can also rotate at high speed to quickly remove moisture from the sample, increasing the rapid drying effect. The working chamber door must be closed after the sample is placed in and during the washing process; it is used to seal the inside of the working chamber. The working chamber door handle is the handle used to close and open the door.

[0048] The drainage pump is controlled by the drainage control system to discharge wastewater from 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 its operation. At the same time, the operator can also set the required speed of the sample on the screen. Freely setting high-speed operation can quickly dehydrate the sample and reduce the drying time, resulting in faster sample results.

[0049] The acid inlet pump controls the amount of acid introduced. It is made of acid- and alkali-resistant, corrosion-resistant materials, ensuring durability. The alkali inlet pump controls the amount of alkali introduced. It is also made of acid- and alkali-resistant, corrosion-resistant materials, ensuring durability. The hot air pump first uses a temperature controller to obtain the working chamber temperature and provides it to the PLC. The PLC receives commands from a display screen or Ethernet connection, such as a computer, AIP, or mobile phone, to control the hot air pump. The hot air controller receives the required temperature commands and sends them to the hot air pump.

[0050] The all-stainless steel casing is made of 304 stainless steel, which is corrosion-resistant, durable, beautiful, and easy to clean. The mechanical feet are made of stainless steel screw rods, and the bottom uses high-performance, high-hardness feet with anti-slip and wear-resistant rubber added to the bottom.

[0051] This invention is based on the PLC module automation concept. Under WiFi conditions, it utilizes Ethernet to support VPN programs and supports remote operation and control via network ports and serial ports, enabling remote control and real-time monitoring of equipment operation from mobile phones and computers. Combining advanced technologies such as high-precision servo motors and horizontal tumbling washing and drying, an intelligent system overall structure is designed, and each module system is developed. The focus is on developing and designing a remote control and automatic liquid addition system to achieve intelligent control of the liquid inlet volume; developing intelligent washing and drying program devices to enable simultaneous loading of multiple batches of samples into the chamber; finally, sample comparison tests are conducted to debug and improve the automation device; ultimately, a mature automated and intelligent fiber washing and drying testing device is completed. It has the following advantages: (1) Develop a remote control system. Under WiFi conditions, use Ethernet to support VPN programs, network ports and serial ports for remote operation and control systems, so as to realize remote control and real-time monitoring of equipment operation on mobile phones and computers. (2) Based on the PLC module automation concept, and combined with advanced technologies such as high-precision servo motors and horizontal tumbling washing and drying, develop an intelligent control system for each module component in the system; (3) By developing an intelligent washing program system, the PLC control system controls the required liquid level and the mechanical number (water inlet valve, acid inlet, alkali inlet) liquid inlet system. An imported acid and alkali resistant booster self-priming pump has been added, which can accurately control the required capacity and realize intelligent liquid addition. The tumbling washing method has been developed and used. 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 rinsed at the same time from multiple angles and directions, and the amount of each sample is not lost. (4) By developing an intelligent dehydration and drying integrated program system, intelligent fully automatic dehydration and drying functions can be realized, which can directly make the sample reach a constant weight state. (5) The device can operate 60 samples at a time, which greatly shortens the detection time.

[0052] Other embodiments of this application will readily occur to those skilled in the art upon consideration of the specification and practice of the invention disclosed herein. This application is intended to cover any variations, uses, or adaptations of this application that follow the general principles of this application and include common knowledge or customary techniques in the art not disclosed herein. The specification and examples are to be considered exemplary only, and the true scope and spirit of this application are indicated by the following claims.

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

Claims

1. A remote intelligent detection system for fiber washing and drying, characterized in that, The remote intelligent detection system for fiber washing and drying includes: A roller working chamber includes an outer cylinder and an inner cylinder. The inner cylinder's accommodating cavity is divided into multiple independent accommodating spaces by non-woven fabric. Each accommodating space is used to independently place a sample. The inner cylinder can rotate at high speed relative to the outer cylinder for rolling and stirring the sample, as well as de-drying or drying the sample. An acid inlet assembly includes an acid inlet pump, a first connecting pipe, and an acid storage chamber. The acid storage chamber is connected to the drum working chamber via the acid inlet pump and the first connecting pipe, and is used to deliver acid into the drum working chamber. The alkali inlet assembly includes an alkali inlet pump, a second connecting pipe, and an alkali storage chamber. The alkali storage chamber is connected to the drum working chamber through the alkali inlet pump and the second connecting pipe, and is used to deliver alkali into the drum working chamber. A hot air assembly, comprising a hot air pump, a third connecting pipe, and a hot air source, wherein the hot air source is connected to the drum working chamber via the hot air pump and the third connecting pipe, for supplying hot air into the drum working chamber to regulate the temperature inside the drum working chamber; The water inlet assembly includes 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 chamber through the water inlet valve and the fourth connecting pipe and is used to deliver working water into the drum working chamber. The drain pump is connected to the drum working chamber through the fourth connecting pipe and is used to discharge wastewater from the drum working chamber. The PLC control system is equipped with a working program input port. The PLC control system is connected to the acid inlet component, the alkali inlet component, the hot air component, and the water inlet component respectively, and controls the acid inlet component, the alkali inlet component, the hot air component, and the water inlet component according to the input working program.

2. The remote intelligent detection system for fiber washing and drying according to claim 1, characterized in that, The fiber washing and drying remote intelligent detection system also includes a remote control device and a display device. The PLC control system is wirelessly connected to the remote control device. 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 chamber.

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

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

5. The remote intelligent detection system for fiber washing and drying according to claim 3, characterized in that, It also includes a temperature sensor for detecting the temperature inside the drum working chamber, and the PLC control system is electrically connected to the temperature sensor to obtain the temperature inside the drum working chamber; it also includes an exhaust port for discharging hot air from the drum working chamber.

6. The remote intelligent detection system for fiber washing and drying according to any one of claims 1-5, characterized in that, It also includes a housing, the drum working chamber is disposed inside the housing, and the outer cylinder is connected to the housing by an elastic component; The housing has an opening and a door assembly on one side, the door assembly being used to seal and cover the opening, the opening communicating with the interior of the drum working chamber.

7. The remote intelligent detection system for fiber washing and drying according to claim 6, characterized in that, The housing is provided with a control panel, and at least part of the PLC control system is located on the control panel; The control panel is equipped 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 remote intelligent detection system for fiber washing and drying according to claim 6, characterized in that, The working procedure includes rinsing with clean water, rinsing with acid, rinsing with alkaline solution, and drying. The fiber washing and drying process includes multiple water rinsing, acid rinsing, and alkaline rinsing.

9. The remote intelligent detection system for fiber washing and drying according to claim 6, characterized in that, It also includes multiple height-adjustable feet, which are located at the bottom of the housing, and the outside of the multiple height-adjustable feet is provided with anti-slip and wear-resistant parts.