This application claims priority under 35 U.S.C. § 119 from Japanese Patent Application No. 2020-164751, filed on Sep. 30, 2020, the entire subject matter of which is incorporated herein by reference.
The present disclosure relates to a liquid supplying apparatus having a reservoir chamber to store liquid and a hole for communication with outside.
Conventionally, an image recording apparatus with a tank having a large-capacity reservoir chamber for storing ink is known. The tank may have an injection port, through which the ink may be injected into the reservoir chamber from the outside, and a cap for closing or opening the injection port. The image recording apparatus may have a cover, which is openable/closable to a housing of the image recording apparatus, to cover or expose the cap. When the cover is open, the cap may be removed from the injection port of the tank, and the ink may be injected through the injection port into the reservoir chamber of the tank.
In order to equalize an air pressure in the reservoir chamber to the atmosphere pressure outside the tank, the reservoir chamber in the tank may be open through a hole to the outside. Therefore, when the image recording apparatus, with the reservoir chamber in the tank storing the ink, is moved, tilted, or rotated, the ink in the tank may leak outside through the hole. As a result, an interior of the image recording apparatus may be smeared with the ink.
The present disclosure is advantageous in that a liquid supplying apparatus, in which flowing out of liquid from a reservoir chamber through a hole to the outside may be difficult, is provided.
According to an aspect of the present disclosure, a liquid supplying apparatus, having a tank, a reservoir chamber, and a flow path, is provided. The tank is configured to store liquid and has a hole open to outside of the tank. The reservoir chamber is arranged in the tank and is configured to store a portion of the liquid in the tank. The flow path is arranged in the tank and is configured to store another portion of the liquid in the tank. The flow path connects the reservoir chamber and the hole. The flow path has a first funnel section to reduce a cross-sectional area of a part of the flow path. The first funnel section is located at a position equal to or higher than a surface of a predetermined maximum amount of the liquid storable in the tank being in a usable posture, in which the liquid is suppliable externally from the tank. The first funnel section is configured to create a meniscus with the liquid stored in the tank being in an X1-rotated posture, in which the tank is rotated about a first axis extending along a horizontal direction by a first angle from the usable posture.
According to another aspect of the present disclosure, a liquid supplying apparatus, having a tank, a reservoir chamber, and a flow path, is provided. The tank is configured to store liquid and has a wall, in which a hole open to outside of the tank is formed. The reservoir chamber is arranged in the tank and is configured to store a portion of the liquid in the tank. The flow path is arranged in the tank and is configured to store another portion of the liquid in the tank. The flow path connects the reservoir chamber and the hole. In the tank being in a rotated posture, in which the tank is rotated about an axis extending along a horizontal direction by an angle from a usable posture, in which the liquid is suppliable externally from the tank, the reservoir chamber is configured to create an air layer with a predetermined maximum amount of the liquid storable in the tank. The air layer is enclosed by a surface of the liquid stored in the tank and walls delimiting the reservoir chamber. The walls delimiting the reservoir chamber are different from the wall having the hole therein. A surface of the liquid in the flow path is maintained at a level equal to or lower than a surface of the liquid in the reservoir chamber by a negative pressure produced by the air layer.
According to another aspect of the present disclosure, a liquid supplying apparatus, having a tank, a reservoir chamber, and a flow path, is provided. The tank is configured to store liquid and has a hole open to outside of the tank. The reservoir chamber is arranged in the tank and is configured to store a portion of the liquid in the tank. The flow path is arranged in the tank and is configured to store another portion of the liquid in the tank. The flow path connects the reservoir chamber and the hole. The flow path is delimited at least by a first wall and a second wall. In the tank being in a rotated posture, in which the tank is rotated about an axis extending along a horizontal direction by an angle from a usable posture, in which the liquid is suppliable externally from the tank, one of the first wall and the second wall is located above the other of the first wall and the second wall, and the one of the first wall and the second wall extends in one of a direction along the horizontal direction and a direction slanting to be lower along an orientation of a flow toward the reservoir chamber.
In the following paragraphs, with reference to the accompanying drawings, an embodiment of the present disclosure will be described. It is noted that various connections may be set forth between elements in the following description. These connections in general and, unless specified otherwise, may be direct or indirect and this specification is not intended to be limiting in this respect.
In the following description, directivity indicated by a pointing arrow, from a root of a stem toward a pointing head, will be expressed by a term “orientation,” whereas back or forth movability along a line extending through a stem and a pointing head of an arrow will be expressed by a term “direction.” Moreover, positional relation within the printer 100 and each part or item included in the printer 100 will be mentioned on basis of a posture of the printer 100 in an ordinarily usable condition as indicated by the bi-directionally pointing arrows in
[Overall Configuration of Printer 100]
The printer 100 as shown in
The printer 100 has a housing 300, a cover 400, and a user interface (UI) 500.
[Housing 300]
The housing 300 may have a shape of an approximately rectangular cuboid. As shown in
[Internal Configuration of Printer 100]
As shown in
[Feeder Tray 110]
As shown in
[Ejection Tray 120]
In the housing 300, at a position above the feeder tray 110, a sheet outlet 370 is formed. Through the sheet outlet 370, the sheet M, on which an image is recorded through a liquid-discharging action by the printer 100, may be ejected. The sheet M with the image recorded thereon may be called as a printed material M. The ejection tray 120 is arranged at a lower-frontward position with respect to the sheet outlet 370. The ejection tray 120 may support the printed material M.
[Feeder 130]
The feeder 130 includes a shaft 131, a feeder arm 132, a feeder roller 133, and a driving-force transmission assembly 134.
The shaft 131 is supported by a frame, which is not shown, and extends in the widthwise direction 9 at a position above the bottom 111. The feeder arm 132 is supported by the shaft 131 at a basal end part thereof. The feeder arm 132 is pivotable in a circumferential direction 3B of an axis of the shaft 131. The feeder arm 132 extends lower-rearward from the basal end part. The feeder roller 133 is attached to a tip end part of the feeder arm 132. The feeder roller 133 is rotatable in a circumferential direction 3C of a shaft 135, which is parallel to the shaft 131. The driving-force transmission assembly 134 may include a gear train and a driving belt and may be arranged inside the feeder arm 132.
The feeder roller 133 may contact an uppermost one of the sheets M stacked on the bottom 111 of the feeder tray 110. The driving-force transmission assembly 134 may transmit a force generated by a motor, which is not shown, to the feeder roller 133. The feeder roller 133 may be rotated by the transmitted force and apply a rearward conveying force to the uppermost sheet M. Thereby, the uppermost sheet M may be conveyed rearward on the bottom 111 and guided by an inclined surface of the guide member 112 to a conveyer path P through a sheet inlet P0.
[Conveyer Path P]
As shown in
[Conveyer Roller Pair 160]
As shown in
The driving roller 161 may rotate by the force generated in a motor, which is not shown. The pinch roller 162 may be rotated by the rotation of the driving roller 161. The driving roller 161 and the pinch roller 162 may nip the sheet M and rotate to convey the sheet M in a conveying orientation 4, e.g., frontward. Thereby, the sheet M may be conveyed downstream in the linear path P2.
[Ejection Roller Pair 170]
As shown in
The driving roller 171 may rotate by the force generated in the motor, which is not shown. The spur roller 172 may be rotated by the rotation of the driving roller 171. The driving roller 171 and the spur roller 172 may nip the sheet M and rotate to convey the sheet M further downstream in the conveying orientation 4. Thereby, the sheet M may be ejected outside through the sheet outlet 370.
[Platen 180]
The platen 180 is located between the conveyer roller pair 160 and the ejection roller pair 170 in the front-rear direction 8. The platen 180 has a supporting surface 181 spreading in the front-rear direction 8 and the widthwise direction 9. The supporting surface 181 delimits a lowermost part of the linear path P2 and may support the sheet M from below. The supporting surface 181 may be formed of upper-end faces of a plurality of ribs protruding upward from the platen 180 and longitudinally extending in the front-rear direction 8. Optionally, however, the supporting surface 181 may be a plain upper surface of the platen 180.
[Carriage 190]
The printer 100 further has guide rails 191A, 191B arranged inside the housing 300. As shown in
As shown in
[Conveyer 210]
As shown in
[Head 200]
As shown in
The head 200 may move above the supporting surface 181 of the platen 180 while the carriage 190 moves for a pass in one way, i.e., leftward or rightward. The head 200 moving along with the carriage 190 may discharge ink through the nozzles 203 to record a line of image for the pass on the sheet M.
[Tank 220]
As shown in
The tank 220 may store the ink therein. A color of the ink may be, for example, black. As shown in
As shown in
The tank 220 includes a body 222 and a sheet 223. As shown in
As shown in
An upper end of the front wall 230 is continuous with a front end of the upper wall 234. A lower end of the front wall 230 is continuous with a front end of the sub-lower wall 236. An upper end of the rear wall 231 is continuous with a rear end of the upper wall 233. A lower end of the rear wall 231 is continuous with a rear end of the lower wall 235. Leftward ends of the front wall 230, the rear wall 231, the upper wall 233, the sub-upper wall 234, the lower wall 235, and the sub-lower wall 236 are continuous with the left-side wall 232.
The upper wall 233 and the sub-upper wall 234 are separated in the vertical direction 7 and in the front-rear direction 8. A front end of the front wall 230 and a rear end of the sub-upper wall 234 are connected by an upper-step wall 237. A lower end of the upper-step wall 237 is located to be lower than the sub-upper wall 234. The lower wall 235 and the sub-lower wall 236 are separated in the vertical direction 7 and in the front-rear direction 8. A front end of the lower wall 235 and a rear end of the sub-lower wall 236 are connected by a lower-step wall 238. Leftward ends of the upper-step wall 237 and the lower-step wall 238 are continuous with the left-side wall 232.
In the upper wall 233, an air communication hole 240 is formed. The air communication hole 240 is formed through the upper wall 233 in the vertical direction 7. The air communication hole 240 connects a flow path 244 in the tank 220 with the atmosphere outside the tank 220. In other words, the flow path 244 in the tank 220 and the atmosphere outside the tank 220 communicate through the air communication hole 240. The air communication hole 240 is open at all time. Therefore, a reservoir chamber 243 is open to the outside atmosphere through the air communication hole 240 and the flow path 244.
In the sub-upper wall 234, an injection port 241 is formed. The injection port 241 is formed through the sub-upper wall 234 in the vertical direction 7. The injection port 241 may connect the reservoir chamber 243 in the tank 220 with the outside of the tank 220. The ink may be injected into the reservoir chamber 243 through the injection port 241. The injection port 241 may be, although not shown in the drawings, sealed by, for example, a rubber plug or a cap.
In the rear wall 231, at a lower position close to the lower end of the rear wall 231, the outflow port 242 is formed. The outflow port 242 is formed through the rear wall 231 in the front-rear direction 8. The outflow port 242 connects a sub-reservoir chamber 245 in the tank 220 with the outside of the tank 220. The ink stored in the sub-reservoir chamber 245 may flow outward through the outflow port 242. Although not shown in the drawings, the outflow port 242 may be connected with the head 200 through a flow path, which may be formed of, for example, a tube or a flow path member made of resin, so that the ink may flow through the flow path to reach the head 200.
The body 222 of the tank 220 may be formed mainly of a translucent material, e.g., transparent resin. Therefore, a user may visually recognize a surface level of the ink stored in the tank 220. As shown in
[Inner Structure of Tank 220]
As shown in
As shown in
As shown in
As shown in
As shown in
As shown in
As shown in
As shown in
As shown in
As shown in
As shown in
The second funnel section 272 is delimited by the third partition wall 263, the fourth partition wall 264, and the sheet 223. The second funnel section 272 occupies a part of the upper flow path 244U, and a cross-sectional area of the second funnel section 272 along the vertical direction 7 and the widthwise direction 9 is smaller than a cross-sectional area of the upper flow path 244U, except at the part of the upper flow path 244U where the second funnel section 272 occupies, along the vertical direction 7 and the widthwise direction 9. A space delimited by the fourth partition wall 264, the third partition wall 263, and the upper-step wall 237 forms a second buffer chamber 282.
As shown in
[Rotation of Tank 220]
As shown in
The ink may be injected into the tank 220 through the injection port 241. While the ink is being injected, the air in the reservoir chamber 243 may flow out through the injection port 241. When the surface of the ink in the reservoir chamber 243 reaches the upper index 225, injection of the ink ends, and the injection port 241 may be sealed by, for example, a rubber plug. Therefore, the reservoir chamber 243 is not open to the outside atmosphere.
The ink entering the reservoir chamber 243 may flow through the hole 246 into the sub-reservoir chamber 245. As the ink flows in the sub-reservoir chamber 245, the air in the sub-reservoir chamber 245 may flow into the reservoir chamber 243. Therefore, when the tank 220 stores the maximum storable amount of ink, the sub-reservoir chamber 245 is filled with the ink.
The ink entering the reservoir chamber 243 may also flow to the flow path 244. As the ink flows in the flow path 244, the air in the flow path 244 may flow outside the tank 220 through the air communication hole 240. At the time when injection of the ink ends, the injection port 241 is open; therefore, both the reservoir chamber 243 and the flow path 244 are at the atmospheric pressure. Accordingly, the surface of the ink in the reservoir chamber 243 and the surface of the ink in the flow path 244 are at an equal level. When the tank 220 stores the maximum storable amount of ink, a surface 290 of the ink in the flow path 244, which is at the equal level to a surface 290 of the ink in the reservoir chamber 243, is substantially at a same position as the first funnel section 271.
When the tank 220 is in the X1-rotated posture, the lower flow path 224L extends substantially vertically, and the vertical flow path 244M extends substantially horizontally. In the flow path 244, the upper flow path 244U is open to the outside atmosphere through the air communication hole 240; therefore, the ink in the vertical flow path 244M may tend to flow toward the upper flow path 244U by the own weight of the ink. However, the ink may form a meniscus 291 in the first funnel section 271, and due to an effect of surface tension of the meniscus 291, the ink may be restrained from flowing from the vertical flow path 244M to the upper flow path 244U. In other words, the first funnel section 271 may create the meniscus 291 with the ink when the amount of the ink in the tank 220 being in the X1-rotated posture is the maximum storable amount. Accordingly, the ink in the vertical flow path 244M or the lower flow path 244L may not be replaced with the air, and the surface 290 of the ink in the flow path 224 may stay at the level substantially equal to the front end of the fourth divider wall 254.
In the flow path 244, the upper flow path 244U is open to the outside atmosphere through the air communication hole 240; therefore, the ink may tend to flow toward the upper flow path 244U by the own weight of the ink. Therefore, the meniscus 291 formed of the ink in the first funnel section 271 may collapse, and the ink may flow from the lower flow path 244L and the vertical flow path 244M to the upper flow path 244U. The ink flowing into the upper flow path 244U may be stored in the first buffer chamber 281. The ink overflowing from the first buffer chamber 281 may flow on the third partition wall 263 and may be stored in the second buffer chamber 282.
The upper flow path 244U is open to the outside atmosphere through the air communication hole 240. Therefore, when the surface of the ink in the second buffer chamber 282 rises to a level higher than the second funnel section 272, the ink may tend to flow from the second buffer chamber 282 toward the air communication hole 240. However, the ink may form a meniscus 293 in the second funnel section 272, and due to the effect of surface tension of the meniscus 293, the ink may be restrained from flowing from second buffer chamber 282 to the air communication hole 240. In other words, the second funnel section 272 may create the meniscus 293 with the ink when the amount of the ink in the tank 220 being in the X2-rotated posture is the maximum storable amount. Accordingly, the ink in the second buffer chamber 282 may not be replaced with the air, and the surface 292 of the ink in the flow path 224 may stay at the level substantially equal to the lower end, or an upper end when the tank 220 is in the X2-rotated posture, of the fourth partition wall 264. When the tank 220 is in the X2-rotated posture, moreover, an amount of the ink remaining in the vertical flow path 244M may be reduced, and the ink may form the meniscus 291 once again in the first funnel section 271.
When the tank 220 is in the Y1-rotated posture, the upper flow path 244U is open to the outside atmosphere through the air communication hole 240. Therefore, the ink may tend to flow toward the upper flow path 244U from the vertical flow path 244M by the own weight of the ink. However, the ink may form the meniscus 291 in the first funnel section 271, and due to the effect of surface tension of the meniscus 291, the ink may be restrained from flowing from the vertical flow path 244M to the upper flow path 244U. In other words, the first funnel section 271 may create the meniscus 291 with the ink when the amount of the ink in the tank 220 being in the Y1-rotated posture is the maximum storable amount. Accordingly, the ink in the vertical flow path 244M or the lower flow path 244L may not be replaced with the air, and the surface 290 of the ink in the flow path 224 and the surface 290 of the reservoir chamber 243 may stay at a level higher than the first funnel section 271.
When the tank 220 is in the Y1-rotated posture, if, for example, the meniscus 291 formed in the first funnel section 271 collapses, the ink may flow from the vertical flow path 244M to the upper flow path 244U. In such an event, however, the ink may form another meniscus in the second funnel section 272. Therefore, the ink may still be restrained from flowing from the second buffer chamber 282 toward the air communication hole 240. Moreover, when the tank 220 is in the Y1-rotated posture, the amount of the ink remaining in the vertical flow path 244M may be reduced. Therefore, the ink may once again form the meniscus 291 in the first funnel section 271.
[Benefits]
According to the embodiment described above, when the tank 220 is in the X1-rotated posture, the ink in the flow path 244 may be restrained from flowing toward the air communication hole 240 by the meniscus 291 formed in the first funnel section 271.
Moreover, when the tank 220 is in the X2-rotated posture, the ink in the flow path 244 may be restrained from flowing toward the air communication hole 240 by the meniscus 293 formed in the second funnel section 272.
Moreover, when the tank 220 is in the X2-rotated posture, the ink in the flow path 244 may be restrained from flowing toward the air communication hole 240 by the menisci 291, 293 formed in the first funnel section 271 and the second funnel section 272.
Furthermore, when the tank 220 is in the Y1-rotated posture, the ink in the flow path 244 may be restrained from flowing toward the air communication hole 240 by the meniscus 293 formed in the first funnel section 271 and/or the meniscus formed in the second funnel section 272.
Meanwhile, the tank 220 having the body 222 and the sheet 223 may be formed easily in a synthetic resin. In the embodiment described above, the body 222 is formed to have the opening 224 on the rightward side alone; however, the body 222 may have openings, each on the rightward side and the leftward side, and the sheet 223 may be attached to each of the rightward end and the leftward end of the body 222. If the body 222 has the openings on both rightward and leftward sides, the first funnel section 271 and the second funnel section 272 may be delimited by a different one of the sheets 223. In other words, the first funnel section 271 may be located on one side of the flow path 244 in the widthwise direction 9, and the second funnel section 272 may be located on the other side of the flow path 244 in the widthwise direction.
Furthermore, the upper flow path 244U has the first buffer chamber 281 and the second buffer chamber 282, which may store the ink therein. Therefore, when the tank 220 is in the X1-rotated posture or the X2-rotated posture, the ink may be prevented from flowing outward through the air communication hole 240.
Although an example of carrying out the invention has been described, those skilled in the art will appreciate that there are numerous variations and permutations of the liquid supplying apparatus that fall within the scope of the invention as set forth in the appended claims. It is to be understood that the subject matter defined in the appended claims is not necessarily limited to the specific features or act described above. Rather, the specific features and acts described above are disclosed as example forms of implementing the claims. In the meantime, the terms used to represent the components in the above embodiment may not necessarily agree identically with the terms recited in the appended claims, but the terms used in the above embodiment may merely be regarded as examples of the claimed subject matters. Below will be described modified examples of the present embodiment.
For example, in the embodiment described above, the first funnel section 271 is formed by the first partition wall 261, which is located in the vertical flow path 244M. However, the first partition wall 261 may not necessarily be provided, or the first funnel section 271 may not necessarily be formed in the vertical flow path 244M.
As shown in
Meanwhile, in the flow path 244, the upper flow path 244U is open to the outside atmosphere through the air communication hole 240. Therefore, the ink may tend to flow toward the upper flow path 244U by the own weight of the ink. However, due to a negative pressure produced by the air layer 294, the ink in the vertical flow path 244M or the lower flow path 244L may not be replaced with the air, and a meniscus 291 may be formed between the upper flow path 244U and the vertical flow path 244M. In other words, the flow path 244 may create the meniscus 291 with the ink at a position between the upper flow path 244U and the vertical flow path 244M when the amount of the ink in the tank 220 being in the X1-rotated posture is the maximum storable amount. Accordingly, the surface 290 of the ink in the flow path 244 may stay at the level substantially equal to the front end of the fourth divider wall 254.
Moreover, even if, for example, the ink flows into the upper flow path 244U, with the amount of the ink remaining in the vertical flow path 244M being reduced, the ink may be restrained from flowing by the negative pressure of the air layer 294. In this occasion, the surface 290 of the ink in the flow path 244 may be at a level lower than the front end of the fourth divider wall 254.
In the first modified example described above, the sixth divider wall 256 slants gradually upper-rearward, similarly to the sixth divider wall 256 in the embodiment described earlier. However, for another example, the sixth divider wall 256 may not necessarily slant gradually upper-rearward as illustrated in the first modified example. In other words, the sixth divider wall 256 may slant gradually upper-frontward. More specifically, a gap between the sixth divider wall 256 and the rear wall 231 may be gradually reduced in the front-rear direction 8 as the sixth divider wall 256 extends downward.
As shown in
For another example, when the tank 220 is in the X1-rotated posture, the vertical flow path 244M may not necessarily extend along the horizontal direction as long as the vertical flow path 244M extends in a direction including a horizontal component, in other words, as long as the vertical flow path 244M extends in a direction including a vertical component when the tank 220 is in the usable posture.
For another example, when the tank 220 is in the usable posture, and when the tank 220 stores the maximum storable amount of ink, the surface 290 of the ink may not necessarily be at the level substantially equal to the first funnel section 271 but may be at a level lower than the first funnel section 271.
For another example, the flow path 244 may not necessarily be a single flow path having the first funnel section 271 and the second funnel section 272 arranged serially. For example, two (2) flow paths 244 may be arranged in parallel between the reservoir chamber 243 and the air communication hole 240, and the first funnel section 271 may be arranged in one of the flow paths 244 while the second funnel section 272 may be arranged in the other of the flow paths 244.
For another example, the tank 220 may be removable from the head 200. For another example, the tank 220 may be dividable into two parts: one having the reservoir chamber 243 and the flow path 244, and the other having the sub-reservoir chamber 245; and the part having reservoir chamber 243 and the flow path 244 may be removable from the head 200 while the other part having the sub-reservoir chamber 245 may be immovably fixed to the head 200. For another example, the sub-reservoir chamber 245 may be omitted. In this arrangement, the reservoir chamber 243 and the head 200 may communicate through the hole 246 to allow the ink to flow through.
For another example, the opening, through which the ink may leak outside the tank 220 may not necessarily be limited to the air communication hole 240. For example, the injection port 241 may be the opening, through which the ink may leak.
For another example, the printer 100 may not necessarily be limited to the monochrome image recording apparatus but may be a printer capable of recording a full-colored or multicolored image on the sheet M, and the printer 100 may have the tank 220 for each of a plurality of colored inks to be used in the full-color or multicolor image recording.
For another example, the liquid supplying apparatus may not necessarily be limited to the printer 100 but may include a multifunction peripheral machine, a copier, and a facsimile machine. The multifunction peripheral machine may be an apparatus equipped with a plurality of functions among a printing function, a copying function, and a facsimile transmitting/receiving function.
For another example, the printer 100 may have a line-formation printing head in place of the serial-formation printing head 200. In the printer 100 with the line-formation printing head 200, the head 200 may not be conveyed in a scanning direction, e.g., the widthwise direction 9, but may stay still at a position above the platen 180 while ejecting the ink.
For another example, the tank 220 may not necessarily be the on-carriage tank but may be a so-called off-carriage tank, which may not be mounted on the carriage 190 but may be located separately from the carriage 190.
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2020-164751 | Sep 2020 | JP | national |
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Entry |
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Number | Date | Country | |
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20220097395 A1 | Mar 2022 | US |