Cartridge recycling methods and cartridges

The method improves the accuracy of recycling printer cartridges by combining electrical and visual evaluations to identify and exclude cartridges with internal defects, ensuring higher quality recycled products.

JP7844552B2Active Publication Date: 2026-04-13CANON KK
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2024-07-04
Publication Date
2026-04-13

AI Technical Summary

Technical Problem

Existing methods for recycling printer cartridges lack accuracy in determining internal issues, leading to potential inclusion of cartridges with hidden defects despite passing external visual inspections.

Method used

A method involving electrical evaluation of recording element substrates and appearance evaluation of ejection ports to determine the recyclability of cartridges, including steps for electrical testing, visual inspection, and decision-making based on these evaluations.

Benefits of technology

Enhances the accuracy of determining recyclability by identifying internal problems, reducing the likelihood of including defective cartridges in recycling processes and improving the reliability of recycled cartridges.

✦ Generated by Eureka AI based on patent content.

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Abstract

An object of the present disclosure is to provide a cartridge recycling method that can contribute to realization of a sustainable society such as a decarbonization / recycling society.SOLUTION: The cartridge recycling method includes an electrical evaluation step of supplying electric power from the wiring substrate to the printing element substrate and evaluating electrical characteristics of the printing element substrate, an appearance evaluation step of evaluating an appearance of the cartridge based on the number of ejection openings in which a problem has occurred among the plurality of ejection openings, and a determination step of determining whether or not to recycle the cartridge based on a result of the electrical evaluation step and a result of the appearance evaluation step.SELECTED DRAWING: Figure 6
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Description

Technical Field

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[0001] The present disclosure relates to a method for recycling a cartridge and a cartridge.

Background Art

[0002] Patent Document 1 discloses a recycling determination method for determining whether or not to recycle a cartridge for a printer based on whether or not the number of days elapsed since the cartridge was newly installed in the printer is within a specified value. According to the method of Patent Document 1, when the number of days elapsed since the cartridge was newly installed in the printer, the number of printed sheets, etc. are within the specified value, the cartridge is determined to be suitable for recycling.

[0003] Furthermore, in the method of Patent Document 1, after the cartridge is automatically determined not to be suitable for recycling, it is determined again whether or not it is suitable for recycling by visual inspection.

[0004] According to the method of Patent Document 1, even a cartridge that has been determined not to be suitable for recycling may be salvaged by subsequent visual inspection.

Prior Art Documents

Patent Documents

[0005]

Patent Document 1

Summary of the Invention

Problems to be Solved by the Invention

[0006] In the visual inspection of Patent Document 1, it was possible to check whether there was a problem with the appearance of the cartridge. However, it was difficult to determine whether there was a problem inside the cartridge. Thus, there was room for improving the accuracy of the determination in the method disclosed in Patent Document 1.

[0007] Therefore, the purpose of this disclosure is to provide a method for accurately determining whether or not a cartridge can be recycled. [Means for solving the problem]

[0008] The present disclosure is a method for recycling a cartridge comprising a tank for containing ink, a plurality of recording elements that generate energy to eject ink in response to an electrical signal, a recording element substrate having a plurality of ejection ports formed at positions corresponding to the plurality of recording elements, and a wiring board to which an electrical signal supplied to the recording element substrate is input, the method comprising: an electrical evaluation step of supplying power from the wiring board to the recording element substrate and evaluating the electrical characteristics of the recording element substrate; an appearance evaluation step of evaluating the appearance of the cartridge based on the number of ejection ports that are experiencing problems among the plurality of ejection ports; and a decision step of determining whether or not to recycle the cartridge based on the results of the electrical evaluation step and the results of the appearance evaluation step. [Effects of the Invention]

[0009] The method disclosed herein allows for accurate determination of whether or not a cartridge can be recycled. [Brief explanation of the drawing]

[0010] [Figure 1] A block diagram of a liquid dispensing device that can be applied to one embodiment. [Figure 2] A perspective view of a head cartridge that can be applied to one embodiment. [Figure 3] A bottom view of a head cartridge that can be applied to one embodiment. [Figure 4] A cross-sectional view of a recording element substrate applicable to one embodiment. [Figure 5] A flowchart showing an example of a recycling method. [Figure 6] A diagram showing the subroutine for S502. [Figure 7] A flowchart showing a recycling method applicable to one embodiment. [Figure 8] A diagram showing the subroutine of S703. [Figure 9] A diagram showing the subroutine of S706. [Figure 10] A diagram showing the subroutine of S707. [Figure 11] A diagram showing the subroutine of S708. [Figure 12] A diagram showing the subroutine of S709. [Figure 13] A flowchart showing a recycling method applicable to one embodiment. [Figure 14] A diagram showing the subroutine of S1301. [Figure 15] A diagram showing the subroutine of S1302.

Mode for Carrying Out the Invention

[0011] The technology described in this specification can contribute to the realization of a sustainable society such as a decarbonized / circular society. In this embodiment, as a technology that can contribute to the realization of a sustainable society, a method for recycling a liquid cartridge will be described.

[0012] [First Embodiment] FIG. 1 is a block diagram showing the hardware configuration of a liquid ejection device 100 applicable to this embodiment.

[0013] As shown in FIG. 1, the liquid ejection device 100 includes a main body 110 and a head cartridge 120. In FIG. 1, the number of head cartridges 120 is one, but a plurality of head cartridges 120 may be attached. For example, by attaching one head cartridge for discharging black ink and one head cartridge for discharging color ink (yellow ink, ink, magenta ink, and cyan ink), full-color printing can be performed.

[0014] Of course, a plurality (for example, two) of head cartridges that eject black ink may be attached. According to this configuration, a large amount of frequently used black ink can be stored, which is convenient for monochrome printing.

[0015] The main body 110 includes a control unit 130 that comprehensively controls the operation of the entire liquid ejection device 100, and a recording unit 140 for performing recording on a recording medium (for example, a sheet of paper not shown) based on the received data. The main body 110 includes an I / F (interface) 150 configured to be capable of receiving data for recording from an external device (for example, the host device 160).

[0016] The control unit 130 is connected to the host device 160 via the I / F 150. The control unit 130 includes a CPU 131, a ROM 132 that stores control programs and the like to be executed by the CPU 401, and a RAM 133 used as a buffer for data and the like.

[0017] The CPU 131 executes processing operations such as arithmetic operations, selections, discriminations, and controls, as well as a recording operation. Programs for executing software processing are stored in the ROM 133. In the RAM 132, it is configured to be able to expand the image data instructed for recording and convert it into the data necessary for recording.

[0018] The control unit 130 may include other components (for example, an input / output port for transmitting and receiving data with the recording unit 140 and the I / F 150). The recording unit 140 includes a carriage motor 141 for scanning the carriage 143 in the scanning direction, and a carriage 143 configured to be detachably attached with the head cartridge 120. The recording unit 140 may include other components (for example, the control unit 130 and an input / output port for transmitting and receiving data with the carriage 143).

[0019] As described above, the head cartridge 120 is configured to be detachable and replaceable from the carriage 143. The head cartridge 120 includes a tank 121 that can be filled with and contain a liquid (e.g., ink), and a flexible wiring board 122 that can be electrically connected to the contact portion (not shown) of the carriage 143.

[0020] The head cartridge 120 includes a recording element board 123 that discharges liquid onto a recording medium for recording, and a fuse ROM 124 for storing the remaining amount of liquid in the tank 121, etc. In addition to the remaining amount of liquid, in this embodiment the fuse ROM 124 also stores a rank indicating the condition of the head cartridge 120 (for example, the degree of external damage and changes in electrical characteristics, etc.). In this embodiment, a fuse ROM 124 is used, but an EEPROM may be used instead.

[0021] The head cartridge 120, while mounted on the carriage 143, is configured to transmit and receive information stored in the fuse ROM 124 to and from the control unit 130 via the flexible wiring board 122.

[0022] In addition to the information described above, various other information is also stored in the memory area of ​​the fuse ROM 124. The fuse ROM 124 is configured to store the time when the head cartridge 120 is newly installed on the carriage 143 of the liquid ejection device 100 that ejects liquid (for example, ink). For example, the date on which the head cartridge 120 was newly installed on the carriage 143, and the number of days that have elapsed since that date, are appropriately stored in the memory area of ​​the fuse ROM 124 by the control unit.

[0023] Furthermore, the fuse ROM 124 is configured to store the number of times a recording has been made in which liquid (e.g., ink) is ejected onto the recording medium. For example, the number of printed pages that has been continuously counted up since the head cartridge 120 was newly installed on the carriage 143 is appropriately stored in the memory area of ​​the fuse ROM 124 by the control unit.

[0024] In addition to the above-described configuration, the main unit 110 is also equipped with a feeding unit (not shown) for feeding recording media, a transport unit (not shown) for transporting the fed recording media, and an ejection unit (not shown) for ejecting recording media after recording is complete. Furthermore, the main unit 110 is equipped with an ejection tray (not shown) for stacking and storing the ejected recording media.

[0025] Figure 2 is a perspective view of an example of a head cartridge 120 applicable to this embodiment, viewed from the lower rear side.

[0026] As shown in Figure 2, the head cartridge 120 includes a molded member 201 formed by molding resin. The molded member 201 functions as the main body of the head cartridge 120.

[0027] The bottom surface of the head cartridge 120 is provided with a recording element substrate 123 on which multiple recording elements for ejecting liquid (e.g., black ink) are arranged along the transport direction (-Y direction) of the recording medium (not shown). The recording element substrate 123 is surrounded by a flexible sheet-like flexible wiring board 122, and the power and ejection signal necessary for ejecting the liquid are supplied from the flexible wiring board 122.

[0028] Furthermore, the electrical connection between the flexible wiring board 122 and the recording element board 123 is sealed with a sealing material 202. This protects the connection between the flexible wiring board 122 and the recording element board 123, ensuring safety.

[0029] The flexible wiring board 122 extends from the bottom surface (the surface facing the -Z direction) to the back surface (the surface facing the +Y direction) of the head cartridge 120. On the flexible wiring board 122, a contact portion 203 is provided on the surface facing the same direction as the back surface of the mold member 201 (the surface facing the +Y direction), which can be electrically connected to the contact portion (not shown) of the carriage 143 (see Figure 1).

[0030] The contact section 203 includes multiple terminals 204. With the contact section 203 of the head cartridge 120 connected to the contact section of the carriage, power sent from the control unit 130 (see Figure 1) and an ejection signal for ejecting liquid are supplied to the recording element board 123.

[0031] The head cartridge 120 is configured to record onto a recording medium supported by the feeding unit (not shown) and transport unit (not shown) described above. While the carriage scans along the scanning direction (X direction), the head cartridge 120 ejects liquid according to the ejection signal to form a one-band image on the recording medium.

[0032] Once scanning one band is complete, the transport unit transports the recording medium in the transport direction (-Y direction) by an amount corresponding to one band width of the recording scan. As this scanning and transport operation is repeated alternately, an image is gradually formed on the recording medium. When all scanning is complete, the recording medium is discharged into the discharge tray (not shown) by the discharge unit (e.g., discharge roller not shown).

[0033] Figure 3 is a schematic bottom view of a head cartridge 120 that can be applied to this embodiment.

[0034] As shown in Figure 3, the recording element substrate 123 has a plurality of discharge ports 301 formed therein for discharging liquid. The plurality of discharge ports 301 are arranged along the transport direction (Y direction) to form a row of discharge ports.

[0035] Figure 4 is a schematic cross-sectional view of a recording element substrate 123 that can be applied to this embodiment.

[0036] As shown in Figure 4, the recording element substrate 123 includes an ejection port forming member 401 on which an ejection port 301 is formed, and an element substrate 402 laminated on the ejection port forming member 401.

[0037] A water-repellent layer 403 is formed on the bottom surface (the surface facing the -Z direction) of the discharge port forming member 401. This improves the cutoff of the liquid discharged from the discharge port 301, and improves image quality compared to when the water-repellent layer 403 is not formed. In this embodiment, the water-repellent layer 403 is not an essential component.

[0038] The lower surface of the element substrate 402 is fixed to the upper surface (the surface facing the +Z direction) of the discharge port forming member 401. An impact-resistant cavitation-resistant layer 404 is formed inside the element substrate 402.

[0039] A heater 405 is provided inside the element substrate 402 at a position corresponding to the discharge port 301. Power is supplied to the heater 405 via the flexible wiring board 122 (see Figure 1, etc.), causing the heater 405 to heat up. By heating the heater 405, bubbles are generated in the liquid filled inside the discharge port forming member 401, making it possible to discharge the liquid from the discharge port 301.

[0040] The generation of bubbles causes shock to be applied to the heater 405. This shock is mitigated by the cavitation-resistant layer 404. As a result, the lifespan of the heater 405 can be extended compared to when the cavitation-resistant layer 404 is absent.

[0041] In this embodiment, multiple ejection ports 301 are formed, but in the recording element substrate 123, more ejection ports 301 and heaters 405 than the number actually used may be formed to ensure stability of image formation. In this case, the ejection ports 301 at the ends are not used, and the heaters 405 provided at positions corresponding to the end ejection ports 301 become dummy elements (dummy heaters) to which no power is supplied.

[0042] On the other hand, the heaters 405 other than the dummy heaters function as the main elements (main heaters) to which power is supplied. During the recording operation, the CPU 131 (see Figure 1) can control which of the multiple heaters 405 function as the main heaters and which are treated as dummy heaters.

[0043] Furthermore, it is possible to prevent liquid from being discharged from the discharge port 301 located at the end of the recording element board 123 by not connecting wiring to the heater 405 (i.e., the dummy heater) located at the end of the recording element board 123.

[0044] <Recycling of head cartridges> Incidentally, used head cartridges are sometimes collected and remanufactured as new head cartridges. In other words, head cartridges are sometimes recycled.

[0045] <Reference example> To facilitate understanding of the recycling method in this embodiment, we will first describe a reference example of the head cartridge recycling method. In the description of each process, the symbol "S" indicates a step in the flowchart (the same applies hereafter in this specification).

[0046] Figure 5 is a flowchart illustrating a typical recycling procedure for a head cartridge as an example.

[0047] In the S501, the outer casing of the head cartridge is cleaned.

[0048] In S502, it is determined whether or not the head cartridge can be recycled.

[0049] Figure 6 shows the subroutine for S502. This subroutine includes a process in which the CPU of a predetermined inspection device makes an automatic determination according to a predetermined program, and a process that is performed manually.

[0050] In the S601, the CPU reads information from the memory attached to the print head cartridge. This information includes the number of days elapsed since the print head cartridge was installed in the device, and the number of pages printed.

[0051] In S602, the CPU determines whether the number of days elapsed since the head cartridge was newly installed in the carriage is within a predetermined value. If the number of days elapsed since the head cartridge was newly installed in the carriage is within the predetermined value, the process in S603 is performed. On the other hand, if the number of days elapsed since the head cartridge was newly installed in the carriage exceeds the predetermined value, the process in S604 is performed.

[0052] In S603, the CPU determines whether the number of recording media printed using the head cartridge (number of printed pages) is within a predetermined value. If the number of printed pages is within the predetermined value, the process in S605 is performed. On the other hand, if the number of printed pages exceeds the predetermined value, the process in S606 is performed.

[0053] In S604, it is determined whether or not there is a problem with the exterior of the head cartridge. For example, it is determined whether or not the head cartridge is damaged to the extent that it is difficult to reuse. This determination process may be performed manually. If there is no problem with the exterior of the head cartridge (YES in S604), the process in S605 is performed. On the other hand, if there is a problem with the exterior of the head cartridge (NO in S604), the process in S606 is performed.

[0054] In S605, it is determined that the head cartridge in question can be recycled.

[0055] In S606, it is determined that the head cartridge cannot be recycled. Cartridges determined to be unrecyclable in S606 are discarded. This completes the subroutine.

[0056] Below, we will again refer to Figure 5 to explain an example of a head cartridge recycling method. Cartridges that are determined to be recyclable in S605 will undergo processing in S503 after the completion of S502.

[0057] In the S503, the inside of the head cartridge is cleaned.

[0058] In the S504, the print head cartridge is filled with liquid (for example, ink).

[0059] As explained above, this example method allows for the salvage of head cartridges that have been temporarily determined to be unsuitable for recycling through a visual check performed after the initial determination. However, even if a head cartridge passes the S604 visual check, it may still have internal problems. In other words, head cartridges that appear fine externally will still be eligible for recycling even if they have internal problems. Thus, there was room for improvement in this example recycling method.

[0060] The above is a reference example of a head cartridge recycling method. Below, we will describe an example of a head cartridge recycling method that can be applied to this embodiment.

[0061] <Examples of recycling methods> Figure 7 is a flowchart illustrating a head cartridge recycling method applicable to this embodiment. The premise for performing this recycling method is that used head cartridges have been collected. However, before starting this flowchart, a visual check may be performed, and head cartridges that are clearly unsuitable for recycling may be excluded from recycling. For example, a head cartridge with a cracked body that makes it difficult to refill with ink may not be recycled.

[0062] In the S701, the outer casing of the head cartridge is cleaned.

[0063] In S702, an electrical test of the head cartridge is performed. In S702, a tester is applied to the contact portion 203 (see Figure 2) to check whether electricity is flowing to the recording element board 123. If electricity is not flowing to the recording element board 123, the head cartridge may be discarded. For example, a predetermined standard may be set, and a head cartridge that does not meet that standard and is clearly electrically damaged may be discarded. On the other hand, if electricity is flowing, the resistance values ​​of the multiple main heaters used for actual ejection, and the resistance values ​​of dummy heaters not used for actual ejection are measured and stored in a predetermined memory. If the main heater for resistance measurement is specified in advance, only the resistance value of that heater may be measured.

[0064] The electrical characteristics of the head cartridge are evaluated in the S703.

[0065] Figure 8 shows the subroutine S703. In this embodiment, the subroutine S703 is executed by the control unit of a predetermined inspection device.

[0066] In S801, the resistance values ​​of the main heater and the dummy heater, which were saved in S702, are retrieved from the predetermined memory. In this embodiment, the resistance value of the dummy heater is treated as the initial resistance value.

[0067] In S802, the average value of the heater's resistance is calculated.

[0068] In S803, it is determined whether the resistance value of the main heater in the head cartridge being processed (the average value obtained in S802) has changed by 1% or more from its initial resistance value. That is, it is determined whether the change in the resistance value of the main heater is less than 1%. In this determination, the resistance value of the dummy heater is considered to be the initial resistance value of the main heater. Then, it is determined whether the resistance value of the main heater in the head cartridge being processed has changed by 1% or more from its initial resistance value (the resistance value of the dummy heater). If the percentage change in the resistance value of the main heater is 1% or more, the process in S804 is performed. On the other hand, if the percentage change in the resistance value of the main heater is less than 1%, the process in S805 is performed.

[0069] In this embodiment, the average resistance of the heater is determined to determine how much it has changed from its initial resistance. However, the average resistance of the heater is not calculated, and the determination of how much the resistance of all heaters has changed from their initial resistance is also possible.

[0070] In S804, it is determined whether the resistance value of the heater in the head cartridge being processed has changed by 10% or more from its initial resistance value. If the percentage change in the resistance value of the heater is less than 10%, the process in S806 is performed. On the other hand, if the percentage change in the resistance value of the heater is 10% or more, the process in S807 is performed.

[0071] In the S805, the electrical characteristics of the head cartridge are rated as "Excellent".

[0072] In the S806, the electrical characteristics of the head cartridge are rated as "good".

[0073] In the S807, the electrical characteristics of the head cartridge are evaluated as "out of range".

[0074] In S808, the evaluation results of the electrical characteristics of the head cartridge are stored. One of the electrical characteristic evaluations, "Excellent," "Good," or "Out of Range," is stored in memory. An example of memory for storing electrical characteristic evaluations is the RAM (not shown) provided in the inspection device that inspects the head cartridge. The electrical characteristic evaluation may also be manually recorded in a memo, as long as it can be referenced when determining the rank of the head cartridge (described later).

[0075] The above is a description of the S703 subroutine. In the example in Figure 8, the smaller the change in the heater's resistance, the better the electrical characteristics are evaluated. However, the smaller the change in the resistance of the cavitation-resistant layer, the better the electrical characteristics may also be evaluated.

[0076] The explanation continues below, again referring to Figure 7.

[0077] In S704, the inside of the head cartridge and the ejection port are cleaned.

[0078] At S705, the head cartridges are visually inspected. Head cartridges with damage to the exterior that is immediately apparent as being difficult to recycle may be discarded at S705.

[0079] In the S706, we evaluate the appearance of the head cartridge.

[0080] Figure 9 shows the subroutine for S706. It is difficult to determine whether or not a head cartridge containing a recording element substrate can be recycled based solely on the results of an electrical inspection of the recording element substrate. Therefore, S706 performs an evaluation of the appearance of the head cartridge containing the recording element substrate.

[0081] In S901, an image of the entire ejection port surface of the head cartridge is acquired. For example, in S901, the entire ejection port surface is imaged by an imaging device (not shown). This image is then stored in a ROM (not shown) and retrieved by a CPU (not shown).

[0082] In S902, the total number of ejection ports on the print head cartridge and the number of problematic ejection ports are obtained. For example, by performing a known image analysis using AI on the image of the entire ejection port surface obtained by processing in S901, the total number of ejection ports is obtained and problematic ejection ports are extracted. Examples of problems that can occur in the ejection ports include clogs caused by hardened ink, some kind of damage, and deformation.

[0083] In S903, it is determined whether the proportion of problematic outlets is less than 1% of the total number of outlets. The proportion of problematic outlets can be calculated, for example, by the following (Equation 1).

[0084] (Equation 1) ... Number of problematic outlets / Total number of outlets × 100

[0085] If the proportion of faulty outlets is 1% or more of the total number of outlets, process S904 is performed. On the other hand, if the proportion of faulty outlets is less than 1% of the total number of outlets, process S905 is performed.

[0086] In S904, it is determined whether the proportion of outlets with problems is less than 10% of the total number of outlets.

[0087] If the proportion of faulty outlets is less than 10% of the total number of outlets, the process in S906 is performed. On the other hand, if the proportion of faulty outlets is 10% or more of the total number of outlets, the process in S907 is performed.

[0088] In the S905, the appearance of the head cartridge is rated as "excellent".

[0089] In the S906, the appearance of the head cartridge is rated as "good".

[0090] In the S907, the appearance of the head cartridge is rated as "out of range".

[0091] In S908, the evaluation result of the appearance of the head cartridge is stored. One of the appearance evaluations, "Excellent," "Good," or "Out of Range," is stored in the memory. An example of such memory is the RAM (not shown) provided in the inspection device that inspects the head cartridge. The appearance evaluation may also be manually recorded in a memo, as it can be referenced when determining the rank of the head cartridge (described later).

[0092] Furthermore, in S903 and S904 above, the ratio of the number of problematic discharge ports to the total number of discharge ports was considered. If the total number of discharge ports is a fixed number, it may be sufficient to simply determine whether the number of problematic discharge ports is above a predetermined threshold.

[0093] In addition to the above, a process may also be performed to evaluate the water repellency of the discharge nozzle by dropping a water droplet onto the discharge nozzle surface, measuring the angle between the water droplet and the discharge nozzle, and determining that the smaller the angle, the higher the likelihood of a problem.

[0094] Furthermore, the numerical values ​​shown in this embodiment are merely examples. All threshold values ​​used to determine whether or not a head cartridge is recyclable can be adjusted as appropriate according to the characteristics of the head cartridge.

[0095] The explanation continues below, again referring to Figure 7.

[0096] In S707, the rank of the head cartridge is determined.

[0097] Figure 10 shows the subroutine for S707.

[0098] In S1001, the evaluation results of the electrical inspection and the visual inspection are obtained. As described above, the evaluation results of the electrical inspection and the visual inspection are stored in memory (not shown) when these evaluations are completed. In S1001, the evaluation results of the electrical inspection and the visual inspection stored in said memory are obtained by being read by a CPU (not shown). Of course, information other than the evaluation results of the electrical inspection and the visual inspection may also be obtained in S1001.

[0099] In S1002, the evaluation results of the electrical inspection and the visual inspection obtained in S1001 are referenced to determine whether the evaluation results of the electrical inspection, the visual inspection, or both are "out of range". In other words, it is determined whether there are any inspections that were evaluated as "out of range". If the evaluation results of the electrical characteristics of the head cartridge, the evaluation results of the visual appearance of the head cartridge, or both are "excellent" or "good", the process in S1003 is performed. On the other hand, if the evaluation result of at least one of the electrical characteristics or the visual appearance of the head cartridge is "out of range", the process in S1007 is performed.

[0100] In S1003, it is determined whether both the electrical inspection evaluation result and the visual inspection evaluation result are "Excellent," whether either the electrical inspection evaluation result or the visual inspection evaluation result is "Excellent," or whether both the electrical inspection evaluation result and the visual inspection evaluation result are "Good." For example, in S1003, the above determination is made by referencing the electrical inspection evaluation result and the visual inspection evaluation result obtained in S1001 by a CPU (not shown). If both the electrical inspection evaluation result and the visual inspection evaluation result are "Excellent," the process in S1004 is performed. If either the electrical inspection evaluation result or the visual inspection evaluation result is "Excellent" and the other is "Good," the process in S1005 is performed. If both the electrical inspection evaluation result and the visual inspection evaluation result are "Good," the process in S1006 is performed.

[0101] In S1004, the head cartridge is assigned the rank "Rank A". The assigned rank is stored in fuse ROM 124 (see Figure 1).

[0102] In S1005, the head cartridge is assigned the rank "Rank B". The assigned rank is stored in at least the fuse ROM 124 (see Figure 1).

[0103] In S1006, the head cartridge is assigned the rank "Rank C". The assigned rank is stored in at least the fuse ROM 124 (see Figure 1).

[0104] In the S1007, the head cartridge is assigned the rank "Out of Range".

[0105] In S1008, the assigned rank is stored in the fuse ROM 124 (see Figure 1). However, this rank may also be stored in a memory other than the fuse ROM 124 (for example, a memory not shown in the inspection device that inspects the head cartridge) as long as it can be read when determining whether or not to discard the head cartridge (described later).

[0106] The explanation continues below, again referring to Figure 7.

[0107] In the S708, it is determined whether or not to recycle the head cartridge.

[0108] Figure 11 shows the subroutine for S708.

[0109] In S1101, the rank of the head cartridge stored in memory (for example, fuse ROM 124 (see Figure 1)) is read and obtained. Note that in S1101, information other than the cartridge rank may also be obtained.

[0110] In S1102, the rank of the head cartridge obtained in the process of S1101 is referenced to determine whether the rank of the head cartridge is one of the ranks from "Rank A" to "Rank C", or whether it is "outside the range". In other words, it is determined whether the rank of the head cartridge is "outside the range". If the rank of the head cartridge is one of the ranks from "Rank A" to "Rank C", this subroutine terminates and the process in S709 (see Figure 7) is performed. On the other hand, if the rank of the head cartridge is "outside the range", the process in S1103 is performed.

[0111] In S1103, the head cartridge is discarded. After the completion of S1103, the head cartridge recycling process in this embodiment is terminated.

[0112] The explanation continues below, again referring to Figure 7.

[0113] In the S709, ink is filled into the print head cartridge. In this embodiment, the amount of ink filled varies depending on the rank of the print head cartridge.

[0114] Figure 12 shows the subroutine for S709. In this embodiment, the amount of ink filled increases in the order of "Rank A," "Rank B," and "Rank C." This is because it is rational to replenish more ink to the head cartridge in better condition.

[0115] In S1201, the rank of the head cartridge stored in memory (for example, fuse ROM 124 (see Figure 1)) is referenced to determine whether the rank is "Rank A", "Rank B", or "Rank C". If the rank of the head cartridge is "Rank A", the process in S1202 is performed. If the rank of the head cartridge is "Rank B", the process in S1203 is performed. If the rank of the head cartridge is "Rank C", the process in S1204 is performed.

[0116] In S1202, a first amount of ink is filled into the head cartridge. For example, the same amount of ink as that filled into a new (initial) cartridge is filled into the head cartridge. After the completion of S1202, the head cartridge recycling process in this embodiment is terminated.

[0117] In step S1203, a second amount of ink, which is less than the first amount, is filled into the head cartridge. After the completion of step S1203, the head cartridge recycling process in this embodiment is terminated.

[0118] In S1204, a third amount of ink, which is less than the second amount, is filled into the head cartridge. After the completion of S1204, the head cartridge recycling process in this embodiment is terminated.

[0119] As explained above, in this embodiment, an electrical inspection is performed, and head cartridges with problems in their electrical characteristics are removed from the recycling process. Therefore, even if a head cartridge passes the visual inspection, if it has problems in its electrical characteristics, it will be removed from the recycling process.

[0120] This recycling method helps prevent the inclusion of head cartridges with internal problems but no external issues in the recycling process, thereby improving the reliability of the assessment. As a result, it becomes possible to reduce the margin used in the threshold for the number of days elapsed since the cartridge was installed in the printer, extending the continuous use period and improving usability.

[0121] Furthermore, in the recycling method of this embodiment, the higher the rank of the head cartridge, the greater the amount of ink it is filled with. This method is rational because head cartridges that are likely to be used for a long period of time after recycling are filled with a large amount of ink.

[0122] On the other hand, in the method of this embodiment, the lower the rank of the head cartridge, the less ink is filled. As a result, even if the recycled head cartridge becomes unusable due to its poor condition compared to a rank A head cartridge, the amount of wasted ink can be reduced.

[0123] Therefore, according to the method of this embodiment, it is possible to determine with greater accuracy whether or not a cartridge can be recycled than with the conventional technology.

[0124] [Second Embodiment] This embodiment aims to provide a method for determining whether or not a cartridge can be recycled with greater accuracy than the first embodiment.

[0125] In the following description, components similar to or corresponding to those in the first embodiment will be denoted by the same reference numerals and their descriptions will be omitted, while the differences will be the main focus of the description.

[0126] Figure 13 is a flowchart showing a method for recycling a head cartridge that can be applied to this embodiment.

[0127] As shown in Figure 13, in this embodiment, S1301 is performed instead of S706 in the first embodiment, and S1302 is performed instead of S708. Furthermore, other steps may be performed after the completion of S1302 and before the start of S709.

[0128] In S1301, the appearance of the head cartridge in this embodiment is evaluated.

[0129] Figure 14 shows the subroutine for S1301. Note that the steps indicated with the same reference numerals as in Figure 9 are equivalent to those explained in Figure 9, and therefore their explanation in Figure 14 is omitted.

[0130] In S1401, known image analysis is performed on the image of the entire discharge port surface obtained in S901. Then, among the multiple cavitation-resistant layers 404 (see Figure 4), the cavitation-resistant layer 404 whose color has changed by more than a specified value from the initial state is extracted.

[0131] When the discharge port surface of this embodiment is viewed from the direction of discharge, a cavitation-resistant layer 404 exists directly below the discharge port 301 (see Figure 4). By looking at the cavitation-resistant layer 404 from the discharge port 301, it is possible to infer a decrease in the performance of the discharge port 301.

[0132] For example, suppose the heat generated by the heater 405 causes the cavitation-resistant layer 404 to scorch, resulting in a darker color compared to the initial state. In this case, it can be inferred that the performance of the discharge port 301 corresponding to the cavitation-resistant layer 404 has decreased compared to the initial state. As described above, the multiple heaters 405 in this embodiment include the actual heater used for discharge and dummy heaters not used for discharge. In S1401, the color of all cavitation-resistant layers 404 is acquired, but the color of the cavitation-resistant layer 404 connected to the dummy heater is acquired as the color of the initial state.

[0133] In S1402, it is determined whether the percentage of cavitation-resistant layers whose color has changed by more than a specified value from the initial state is less than 1% of the total number of cavitation-resistant layers. For example, the percentage of outlets with problems can be determined by the following (Equation 2). Note that the total number of cavitation-resistant layers is the same as the total number of outlets.

[0134] (Equation 2) ... Number of cavitation-resistant layers with changed color / Total number of cavitation-resistant layers × 100

[0135] If the percentage of cavitation-resistant layers whose color has changed is 1% or more of the total number of cavitation-resistant layers, treatment S1403 is performed. On the other hand, if the percentage of cavitation-resistant layers whose color has changed is less than 1% of the total number of cavitation-resistant layers, treatment S905 is performed.

[0136] In S1403, it is determined whether the percentage of cavitation-resistant layers whose color has changed by more than a specified value from their initial state is less than 10% of the total number of cavitation-resistant layers.

[0137] If the percentage of cavitation-resistant layers whose color has changed is less than 10% of the total number of cavitation-resistant layers, the S906 process is performed. On the other hand, if the percentage of cavitation-resistant layers whose color has changed is 10% or more of the total number of cavitation-resistant layers, the S907 process is performed.

[0138] In this embodiment, the process in S908 is performed after the completion of S905, S906, or S907.

[0139] Let's return to the explanation of Figure 13. In S1302, it is determined whether or not the head cartridge of this embodiment can be recycled.

[0140] Figure 15 shows the subroutine for S1302.

[0141] As shown in Figure 15, in this embodiment, after the determination in S1102, if the rank of the head cartridge is any of "Rank A" to "Rank C", the process in S1501 is performed.

[0142] In S1501, the rank of the head cartridge is written to and stored in fuse ROM 124 (Figure 1). Alternatively, a rewritable EEPROM or OTP (One Time Programmable) memory may be used instead of fuse ROM 124. However, if OTP memory is used, a dedicated memory area for recycling must be provided, anticipating that the cartridge will be reused.

[0143] By writing the head cartridge rank to a memory device (e.g., fuse ROM 124), it becomes unnecessary to refill the ink immediately after determining the head cartridge rank. In other words, it becomes possible to refill the ink at any time after determining the head cartridge rank.

[0144] As explained above, in this embodiment, compared to the first embodiment, the amount of change in the color of the cavitation-resistant layer is also taken into consideration when determining the rank of the head cartridge. The rank of the head cartridge is then stored in the fuse ROM 124.

[0145] Therefore, according to the method of this embodiment, the condition of the print head cartridge can be determined with greater accuracy. Furthermore, after determining the rank of the print head cartridge, ink can be refilled at any desired timing.

[0146] [Other embodiments] In the first and second embodiments, the description assumed a thermal head cartridge using a heater, but the recycling method of this disclosure can also be applied to a piezo head cartridge.

[0147] The first and second embodiments can also be combined with the reference examples described above. For example, the flow of the first or second embodiment may include a step in which it is determined that a head cartridge is not recyclable if the elapsed time since it was newly installed in the liquid dispensing device is longer than a predetermined time. Conversely, it may include a step in which it is determined that a head cartridge is recyclable if the elapsed time since it was newly installed in the liquid dispensing device is less than a predetermined time.

[0148] Furthermore, the flow of the first or second embodiment may include a step in which it is determined that a head cartridge is not recyclable if the number of printed pages printed using the head cartridge exceeds a predetermined number. Conversely, it may include a step in which it is determined that a head cartridge is recyclable if the number of printed pages printed using the head cartridge is less than a predetermined number.

[0149] Furthermore, the flow of the first or second embodiment included steps in which electrical characteristics, appearance, and the rank of the head cartridge were stored in memory. In these steps, this evaluation and rank information may be stored manually. The decision of whether or not to recycle the head cartridge may then be made manually by referring to this information.

[0150] This disclosure includes the following methods or configurations:

[0151] [Method 1] A tank for holding ink, A plurality of recording elements that generate energy to eject ink in response to an electrical signal, and a recording element substrate having a plurality of ejection ports formed at positions corresponding to the plurality of recording elements, A wiring board to which electrical signals supplied to the recording element substrate are input, A method for recycling the cartridges provided, An electrical evaluation step in which power is supplied from the wiring board to the recording element board and the electrical characteristics of the recording element board are evaluated, An appearance evaluation step in which the appearance of the cartridge is evaluated based on the number of outlets among the plurality of outlets in which a problem occurs, A decision step is made to determine whether or not to recycle the cartridge based on the results of the electrical evaluation step and the results of the visual evaluation step. A recycling method characterized by including [a certain component]. [Method 2] The process further includes a filling step of filling the tank with ink, In the aforementioned determination process, a rank is determined according to the condition of the cartridge, In the filling process, the amount of ink to be filled is changed according to the rank. The recycling method described in Method 1. [Method 3] In the filling process, the higher the rank, the greater the amount of ink to be filled. The recycling method described in Method 2. [Method 4] In the filling process, if the cartridge is in the best condition, a first rank, then a first amount of ink is filled. If the rank is a second rank lower than the first rank, fill with a second amount of ink that is less than the first amount. Recycling method as described in Method 3. [Method 5] In the aforementioned electrical evaluation process, The resistance value of a dummy element among the multiple recording elements that is not used for ejection is obtained as the initial resistance value. The resistance value of the element used for ejection among the multiple recording elements is obtained. The ratio by which the resistance value of the element deviates from the resistance value of the dummy element is less than the first ratio. In the aforementioned appearance evaluation step, if the number of outlets with problems among the plurality of outlets is less than the first number, In the determination step, the first rank is determined from among a plurality of ranks indicating the condition of the cartridge. The recycling method described in Method 4. [Method 6] In the electrical evaluation step, the amount by which the resistance value of the present element deviates from the resistance value of the dummy element is less than the first ratio. In the aforementioned appearance evaluation step, if the number of discharge ports with problems among the plurality of discharge ports is greater than or equal to the first number but less than a second number greater than the first number, In the filling step, the second amount of ink is filled. The recycling method described in Method 5. [Method 7] In the filling process, if the rank is a third rank lower than the second rank, a third amount of ink less than the second amount is filled. The recycling method described in Method 6. [Method 8] In the electrical evaluation step, the ratio by which the resistance value of the element deviates from the resistance value of the dummy element is greater than or equal to the first ratio and less than the second ratio. In the aforementioned appearance evaluation step, if the number of discharge ports with problems among the plurality of discharge ports is greater than or equal to the first number but less than the second number, In the filling step, the third amount of ink is filled. The recycling method described in Method 7. [Method 9] In the electrical evaluation step, if the percentage by which the resistance value of the element deviates from the resistance value of the dummy element is greater than or equal to the second percentage, In the aforementioned decision-making process, it is determined that the cartridge cannot be recycled. A recycling method as described in any one of methods 6 through 8. [Method 10] In the aforementioned appearance evaluation step, if the number of discharge ports with problems among the plurality of discharge ports is equal to or greater than the second number, In the aforementioned decision-making process, it is determined that the cartridge cannot be recycled. A recycling method as described in any one of methods 6 through 9. [Method 11] The aforementioned appearance evaluation step further evaluates the change in color of the surface covering the recording element, The determination step determines that the cartridge cannot be recycled if the amount of change in the color of the surface from its initial color exceeds a predetermined amount. A recycling method as described in any one of methods 6 to 10. [Method 12] The surface covering the recording element is a cavitation-resistant layer for protecting the ejection element. The recycling method described in Method 11. [Method 13] The recording element is a heater. A recycling method as described in any one of Methods 1 through 12. [Method 14] In the aforementioned visual evaluation step, the discharge port in which clogging occurs among the plurality of discharge ports is designated as the discharge port in which the problem occurs. A recycling method as described in any one of Methods 1 through 13. [Method 15] The cartridge further comprises a storage means for storing the rank, The process further includes a writing step of writing the rank to the storage means. A recycling method as described in any one of Methods 2 through 14. [Method 16] The determination step determines whether or not to recycle the cartridge based on the results of the electrical evaluation step and the visual evaluation step, if the time elapsed since the cartridge was installed in the liquid ejection device that ejects ink is less than a predetermined time. The recycling method described in Method 15. [Method 17] The storage means is configured to store the number of times an ink ejection record has been made onto the recording medium. The aforementioned determination step is performed if the number of records is less than a predetermined number. Based on the results of the electrical evaluation step and the visual evaluation step, a decision is made as to whether or not to recycle the cartridge. Recycling method as described in Method 15 or 16. [Composition 18] A tank for holding ink, A plurality of recording elements that generate energy to eject ink in response to an electrical signal, and a recording element substrate having a plurality of ejection ports formed at positions corresponding to the plurality of recording elements, A wiring board to which electrical signals supplied to the recording element substrate are input, A memory that stores information regarding the feasibility of recycling based on the evaluation results of the electrical characteristics of the recording element substrate and the evaluation results regarding the number of discharge ports among the plurality of discharge ports that are experiencing problems, A cartridge characterized by having the following features. [Composition 19] The aforementioned information regarding the feasibility of recycling includes multiple ranks, The amount of ink contained in the tank increases with higher rank. The cartridge described in configuration 18. [Configuration 20] The memory is a fuse ROM or an EEPROM. The cartridge described in configuration 18 or 19.

Claims

1. A tank for holding ink, A plurality of recording elements that generate energy to eject ink in response to an electrical signal, and a recording element substrate having a plurality of ejection ports formed at positions corresponding to the plurality of recording elements, A wiring board to which electrical signals supplied to the recording element substrate are input, A method for recycling the cartridges provided, An electrical evaluation step in which power is supplied from the wiring board to the recording element board and the electrical characteristics of the recording element board are evaluated, An appearance evaluation step in which the appearance of the cartridge is evaluated based on the number of outlets among the plurality of outlets in which a problem occurs, A decision step is made to determine whether or not to recycle the cartridge based on the results of the electrical evaluation step and the results of the visual evaluation step. A recycling method characterized by including [a certain component].

2. The process further includes a filling step of filling the tank with ink, In the aforementioned determination process, a rank is determined according to the condition of the cartridge, In the filling process, the amount of ink to be filled is changed according to the rank. The recycling method according to claim 1.

3. In the filling process, the higher the rank, the greater the amount of ink to be filled. The recycling method according to claim 2.

4. In the filling process, if the cartridge is in the best condition, a first rank, then a first amount of ink is filled. If the rank is a second rank lower than the first rank, a second amount of ink less than the first amount is filled. The recycling method according to claim 3.

5. In the aforementioned electrical evaluation process, The resistance value of a dummy element among the multiple recording elements that is not used for ejection is obtained as the initial resistance value. The resistance value of the element used for ejection among the multiple recording elements is obtained. The ratio by which the resistance value of the element deviates from the resistance value of the dummy element is less than the first ratio. In the aforementioned appearance evaluation step, if the number of discharge ports with problems among the plurality of discharge ports is less than the first number, In the determination step, the first rank is determined from among a plurality of ranks indicating the condition of the cartridge. The recycling method according to claim 4.

6. In the electrical evaluation step, the amount by which the resistance value of the present element deviates from the resistance value of the dummy element is less than the first ratio. In the aforementioned appearance evaluation step, if the number of discharge ports with problems among the plurality of discharge ports is greater than or equal to the first number and less than a second number greater than the first number, In the filling process, the second amount of ink is filled. The recycling method according to claim 5.

7. In the filling process, if the rank is a third rank lower than the second rank, a third amount of ink less than the second amount is filled. The recycling method according to claim 6.

8. In the electrical evaluation step, the ratio by which the resistance value of the element deviates from the resistance value of the dummy element is greater than or equal to the first ratio and less than the second ratio. In the aforementioned appearance evaluation step, if the number of discharge ports with problems among the plurality of discharge ports is greater than or equal to the first number but less than the second number, In the filling process, the third amount of ink is filled. The recycling method according to claim 7.

9. In the electrical evaluation step, if the ratio by which the resistance value of the element deviates from the resistance value of the dummy element is greater than or equal to the second ratio, In the aforementioned decision-making process, it is determined that the cartridge cannot be recycled. The recycling method according to claim 6.

10. In the aforementioned appearance evaluation step, if the number of discharge ports with problems among the plurality of discharge ports is equal to or greater than the second number, In the aforementioned decision-making process, it is determined that the cartridge cannot be recycled. The recycling method according to claim 6.

11. The aforementioned appearance evaluation step further evaluates the change in color of the surface covering the recording element, The determination step determines that the cartridge cannot be recycled if the amount of change in the color of the surface from its initial color exceeds a predetermined amount. The recycling method according to claim 6.

12. The surface covering the recording element is a cavitation-resistant layer for protecting the ejection element. The recycling method according to claim 11.

13. The recording element is a heater. The recycling method according to claim 1.

14. In the aforementioned visual evaluation step, the discharge port in which clogging occurs among the plurality of discharge ports is designated as the discharge port in which the problem occurs. The recycling method according to claim 1.

15. The cartridge further comprises a storage means for storing the rank, The process further includes a writing step of writing the rank to the storage means. The recycling method according to claim 2.

16. The determination step determines whether or not to recycle the cartridge based on the results of the electrical evaluation step and the visual evaluation step, if the time elapsed since the cartridge was installed in the liquid ejection device that ejects ink is less than a predetermined time. The recycling method according to claim 15.

17. The storage means is configured to store the number of times an ink ejection record has been made to the recording medium. The aforementioned determination step is performed if the number of records is less than a predetermined number. Based on the results of the electrical evaluation step and the visual evaluation step, a decision is made as to whether or not to recycle the cartridge. The recycling method according to claim 15.

18. A tank for holding ink, A plurality of recording elements that generate energy to eject ink in response to an electrical signal, and a recording element substrate having a plurality of ejection ports formed at positions corresponding to the plurality of recording elements, A wiring board to which electrical signals supplied to the recording element substrate are input, A memory that stores information regarding the feasibility of recycling based on the evaluation results of the electrical characteristics of the recording element substrate and the evaluation results regarding the number of discharge ports among the plurality of discharge ports that are experiencing problems, A cartridge characterized by having the following features.

19. The aforementioned information regarding the feasibility of recycling includes multiple ranks, The amount of ink contained in the tank increases with higher rank. The cartridge according to claim 18.

20. The memory is a fuse ROM or EEPROM. The cartridge according to claim 18.

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