IMAGE RECORDING APPARATUS
20210394509 · 2021-12-23
Inventors
- Yosuke Takagi (Kanagawa, JP)
- Chiaki Muraoka (Saitama, JP)
- Akira Goto (Kanagawa, JP)
- Kyosuke Toda (Kanagawa, JP)
Cpc classification
B41J2/17566
PERFORMING OPERATIONS; TRANSPORTING
B41J2/0452
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
An image recording apparatus includes a liquid chamber, a first electrode pin and a second electrode pin which are inserted into the liquid chamber, application unit for applying a voltage between the first electrode pin and the second electrode pin, and detection unit for detecting a current which flows between the first electrode pin and the second electrode pin, the image recording apparatus has: a first period in which the application unit applies the voltage between the first electrode pin and the second electrode pin, with the first electrode pin as an anode side and the second electrode pin as a cathode side, and the detection unit detects the current; and a second period in which the application unit applies the voltage between the first electrode pin and the second electrode pin, with the first electrode pin as the cathode side and the second electrode pin as the anode side.
Claims
1. An image recording apparatus comprising: a liquid chamber which stores liquid used for recording of an image; a first electrode pin and a second electrode pin which are inserted into the liquid chamber; application unit for applying a voltage between the first electrode pin and the second electrode pin; and detection unit for detecting a current which flows between the first electrode pin and the second electrode pin, wherein the image recording apparatus has a first period in which the application unit applies the voltage between the first electrode pin and the second electrode pin, with the first electrode pin being used as an anode side and the second electrode pin being used as a cathode side, and the detection unit detects the current, and a second period in which the application unit applies the voltage between the first electrode pin and the second electrode pin, with the first electrode pin being used as the cathode side and the second electrode pin being used as the anode side.
2. The image recording apparatus according to claim 1, further comprising: a liquid ejection cartridge unit; and a liquid supply tube which supplies the liquid from the liquid chamber to the liquid ejection cartridge unit.
3. The image recording apparatus according to claim 1, further comprising: a liquid tank; a liquid ejection cartridge unit which has a recording element substrate and a sub-tank; and a liquid supply tube which supplies the liquid from the liquid tank to the sub-tank, wherein the liquid chamber is a liquid chamber of the sub-tank, and supplies the liquid supplied from the liquid supply tube to the recording element substrate.
4. The image recording apparatus according to claim 1, further comprising: a liquid tank; and a liquid ejection cartridge unit which has a recording element substrate and a sub-tank connected to the liquid tank, wherein the liquid chamber is a liquid chamber of the sub-tank, and temporarily retains the liquid supplied from the liquid tank and supplies the liquid to the recording element substrate.
5. The image recording apparatus according to claim 1, wherein a difference between a length of an application accumulated time of the voltage applied in the first period and a length of an application accumulated time of the voltage applied in the second period falls within ±10% of the length of the application accumulated time of the voltage applied in the first period.
6. The image recording apparatus according to claim 1, wherein an application accumulated time of the voltage applied in the second period is longer than an application accumulated time of the voltage applied in the first period.
7. The image recording apparatus according to claim 1, wherein a pulse width of the voltage applied in the second period is longer than a pulse width of the voltage applied in the first period.
8. The image recording apparatus according to claim 1, wherein an absolute value of the voltage applied in the second period is greater than an absolute value of the voltage applied in the first period.
9. The image recording apparatus according to claim 1, wherein the first period is provided in plurality during a predetermined detection period for detecting a remaining amount of the liquid in the liquid chamber, and the second period is provided in plurality during a non-detection period different from the detection period.
10. The image recording apparatus according to claim 9, wherein the plurality of the second periods are provided successively during the non-detection period.
11. The image recording apparatus according to claim 1, wherein the liquid is an ink which uses self-dispersion type carbon black.
12. An image recording apparatus comprising: a liquid chamber which stores liquid used for recording of an image; a first electrode pin and a second electrode pin which are inserted into the liquid chamber; application unit for applying a voltage between the first electrode pin and the second electrode pin; and detection unit for detecting a current which flows between the first electrode pin and the second electrode pin, wherein the image recording apparatus has a first period in which the application unit applies the voltage between the first electrode pin and the second electrode pin, with the first electrode pin being used as an anode side and the second electrode pin being used as a cathode side, and the detection unit detects the current, and a third period in which the application unit applies the voltage between the first electrode pin and the second electrode pin, with the first electrode pin being used as the cathode side and the second electrode pin being used as the anode side, and the detection unit detects the current.
13. The image recording apparatus according to claim 12, wherein the image recording apparatus further has a second period in which the application unit applies the voltage between the first electrode pin and the second electrode pin, with the first electrode pin being used as the cathode side and the second electrode pin being used as the anode side, and a fourth period in which the application unit applies the voltage between the first electrode pin and the second electrode pin, with the first electrode pin being used as the anode side and the second electrode pin being used as the cathode side.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0022]
[0023]
[0024]
[0025]
[0026]
[0027]
[0028]
[0029]
[0030]
DESCRIPTION OF THE EMBODIMENTS
[0031] Hereinafter, a description will be given, with reference to the drawings, of embodiments (examples) of the present invention. However, the sizes, materials, shapes, their relative arrangements, or the like of constituents described in the embodiments may be appropriately changed according to the configurations, various conditions, or the like of apparatuses to which the invention is applied. Therefore, the sizes, materials, shapes, their relative arrangements, or the like of the constituents described in the embodiments do not intend to limit the scope of the invention to the following embodiments.
First Embodiment
[0032]
[0033] In any method shown in
[0034]
[0035] The liquid ejection cartridge unit 2 is a unit in which a head unit 5 is combined with a sub-tank 6. Ink supplied from the ink tank 3 or the ink supply tube 4 is caused to flow into the liquid ejection cartridge unit 2 from each of joint sections 7 which are equal in number to the number of ink colors and are provided in the sub-tanks 6 independently of each other. A sub-tank liquid chamber 8 is formed in the sub-tank 6, and the supplied ink is temporarily retained and stored in the sub-tank liquid chamber 8 and is then guided to a recording element substrate 9 through an ink supply passage formed in the case of the head unit 5.
[0036] In each sub-tank liquid chamber 8, two electrode pins 10 are inserted in order to detect the presence or absence of ink in the sub-tank liquid chamber 8. Note that
[0037]
[0038] In the configuration described above, a voltage dividing ratio between the detection resistor 15 and the electrical resistance R of the ink is used as an output, and a current detector 16 of the image recording apparatus 1 detects the output and transmits the output to a control section 18 which controls the operation of the image recording apparatus 1. As voltage application unit, the control section 18 can control a power supply circuit which uses a commercial power supply 17 to which the image recording apparatus 1 is connected as a power supply source, and optionally control the magnitude and polarity of a voltage applied, as an electric signal, between the electrode pins 10a and 10b. The control section 18 can acquire the voltage between the electrode pins 10a and 10b with a current value detected by the current detector 16 serving as current detection unit connected to such a power supply circuit, and detect the ink remaining amount in each sub-tank liquid chamber 8 with the magnitude of the voltage. The configuration described thus far constitutes a liquid remaining amount detection mechanism in the image recording apparatus 1 of the present embodiment.
[0039] In the case where ink is not present in the sub-tank liquid chamber 8, a state between the anode-side and cathode-side electrode pins 10a and 10b is an electrically open state, and hence a current does not flow to the side of the liquid ejection cartridge unit 2. Consequently, a voltage close to an input signal is detected at the output port 14b. On the other hand, in the case where ink is present in the sub-tank liquid chamber 8, the anode-side and cathode-side electrode pins 10a and 10b are electrically connected via the ink, and hence the current flows to the side of the liquid ejection cartridge unit 2. Consequently, the signal detected at the output port 14b is an output having a voltage level lower than that of the input signal.
[0040] With regard to the above-described output level,
[0041]
[0042] When the remaining amount detection output value relative to the ink remaining amount is constant, it is possible to detect the remaining amount with high accuracy by setting the threshold value in a manner described above. However, when a metal material such as an SUS material (SUS304) is used as the material of the electrode pins 10a and 10b and an operation of causing a current to flow in one direction between the electrode pins 10a and 10b via the ink is repeated, there are cases where an oxidation-reduction reaction occurs on the surfaces of the electrode pins 10a and 10b. The oxidation-reduction reaction is, e.g., a phenomenon in which oxidation progresses on the surface of the anode-side electrode pin 10a, and reduction progresses on the surface of the cathode-side electrode pin 10b. When such a reaction progresses, the electrical resistance is increased due to an influence of oxidation of the anode-side electrode pin 10a, and hence the current value of the current flowing between the electrode pins 10a and 10b is decreased irrespective of the state in which the ink is present, and the remaining amount detection output is increased.
[0043]
[0044] Based on the above situation, a configuration for preventing the oxidation-reduction phenomenon of the electrode pin 10 caused by current application in one direction and suppressing the change of the remaining amount detection output, which is a characteristic part of the present embodiment, will be described by using
[0045]
[0046] In contrast, the signal mode in Example 1 of the present invention is shown in
[0047] In the present example, a length of an application accumulated time of a voltage signal in the first period and a length of an application accumulated time of the voltage signal in the second period are substantially identical to each other, and an absolute value of a voltage value of an application signal in the first period and that in the second period are also substantially identical to each other (voltage levels are substantially identical to each other). For example, the application accumulated time in the second period is controlled such that a difference between the application accumulated time in the second period and the application accumulated time in the first period falls within ±10% of the length of the application accumulated time in the first period.
[0048] Various types of inks can be used as the target ink to be detected and, in the present example, among self-dispersion type pigments, it is assumed that an ink which uses carboxylic acid type self-dispersion type carbon black is selected and used in consideration of image performance and material cost. In the above ink, it is determined that the output is increased due to the oxidation phenomenon of the electrode pin 10a caused by the application of the remaining amount detection pulse 12, and the increase of the output is suppressed by the application of the reduction pulse 13, and it is possible to obtain an effect of implementation of the present invention. Note that the oxidation phenomenon occurs in the case where other inks are used, and hence it is possible to obtain the effect.
[0049] As described thus far, according to the present embodiment, even in the case where oxidation occurs on the surface of a first electrode pin (anode side) due to the signal applied during the remaining amount detection period, it is possible to effect the reduction action by applying the signal of which the polarity is inverted during the non-remaining amount detection period to suppress the progress of oxidation of the electrode pin. In particular, in the case where the metal material (SUS304, SUS384, SUS316) which tends to effect the oxidation action on the electrode pin 10 is used and the ink which tends to effect the oxidation action is used, it is possible to suppress the oxidation of the electrode pin. That is, it is possible to suppress an increase in the electrical resistance of the electrode pin surface, and maintain the current value of the current flowing between the electrode pins in the state in which the ink is present at a constant level. Consequently, it is possible to obtain stable and higher detection accuracy and, therefore, perform the ink remaining amount detection with high accuracy.
[0050] In the mode in which the ink supply of the tube supply method is performed, in some cases, air can passe through and enter the tube due to leaving the tube for a long period, or air can be present irregularly in a supply path and ejection can be thereby influenced. In order to detect such an influence on printing to prevent idle ejection, the configuration of the present embodiment capable of performing the ink remaining amount detection with high accuracy is effective.
[0051] In the present embodiment, while the present invention is applied to the ink remaining amount detection in the liquid ejection cartridge unit 2, the present invention can also be applied to the ink presence-absence detection in the ink tank 3 or in other ink supply paths.
[0052] On the contrary to the present embodiment, a configuration may also be adopted in which the remaining amount detection is performed with the second electrode pin 10b being used as the anode side and the first electrode pin 10a being used as the cathode side, the polarities of the electrode pins are interchanged, and the reduction application is then performed with the second electrode pin 10b being used as the cathode side and the first electrode pin 10a being used as the anode side.
[0053] In the present embodiment, the electrode pin is inserted into the liquid chamber vertically downward from above, but the insertion direction is not limited. In addition, the number of electrode pins is not limited to two. For example, it is also possible to dispose a plurality of anode pins with respect to one cathode pin and perform detection, and the detection accuracy may be increased by making penetration depths of the electrode pins into the liquid different from each other or setting a plurality of detection positions in the liquid chamber by using three or more electrode pins.
Second Embodiment
[0054]
[0055] Example 2 shown in
[0056] As in Example 3 shown in
[0057] As in Example 4 shown in
[0058] In Example 5 shown in
[0059] As in Example 6 shown in
[0060] As in Example 7 shown in
[0061] As in each example described above, the proper reduction pulse 13 may be used appropriately according to various restrictions such as the electrode pin 10 to be used, an ink recipe, and a detection interval.
Modification
[0062]
[0063] In the above embodiments, the remaining amount detection is performed with the first electrode pin 10a being used as the anode side and the second electrode pin 10b being used as the cathode side, but it is possible to perform the remaining amount detection after the polarity is inverted. In the present modifications, there are provided a third period in which the remaining amount detection is performed with the second electrode pin 10b being used as the anode side and the first electrode pin 10a being used as the cathode side, and a fourth period in which the reduction application is performed with the first electrode pin 10a being used as the anode side and the second electrode pin 10b being used as the cathode side, and the remaining amount detection is not performed.
[0064] In Modification 1 shown in
[0065] In Modification 2 shown in
[0066] According to the modifications described above, in the case where the application of the remaining amount detection pulse needs to be performed frequently, it is possible to perform the remaining amount detection while effectively suppressing the progress of the oxidation. In addition, it is possible to reduce the number of times of the application of the reduction signal or eliminate the application of the reduction signal, and hence it can be expected that apparatus life will be extended.
[0067] While the present invention has been described with reference to exemplary embodiments, it is to be understood that the invention is not limited to the disclosed exemplary embodiments. The scope of the following claims is to be accorded the broadest interpretation so as to encompass all such modifications and equivalent structures and functions.
[0068] This application claims the benefit of Japanese Patent Application No. 2020-104689, filed on Jun. 17, 2020, which is hereby incorporated by reference herein in its entirety.