washing machine

The washing machine's circulation pump and controlled water flow system effectively capture and contain lint within the machine, addressing the issue of lint discharge and reattachment during tub cleaning.

JP7807340B2Active Publication Date: 2026-01-27HITACHI GLOBAL LIFE SOLUTIONS INC
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Patent Information

Application Number
JP2022126210
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-08-08
Publication Date
2026-01-27
Estimated Expiration
2042-08-08

AI Technical Summary

Technical Problem

Conventional tub cleaning processes in washing machines struggle to capture fine lint in the drainage path, leading to lint discharge outside the machine and reattachment to clothes, potentially causing clogging and re-deposition during subsequent wash cycles.

Method used

A washing machine design incorporating a circulation pump that sprays water into the inner tub from the top of the outer tub when rotated forward and reversely, with controlled rotation speeds and valve operations to direct water flow for effective lint collection and prevention of discharge.

Benefits of technology

Prevents lint from being discharged outside the machine and reattaching to clothes during water draining, ensuring thorough tub cleaning and reducing lint accumulation.

✦ Generated by Eureka AI based on patent content.

Smart Images

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Patent Text Reader

Abstract

To provide a washing machine preventing lint from being discharged to the outside of the machine or reattaching to clothing when discharging water after washing a tank.SOLUTION: A washing machine comprises: a housing; an outer tank that is supported in the housing and stores water; an inner tank that is included in the outer tank and stores clothing; a circulation pump to circulate water in the outer tank; a water channel filter to collect lint included in the water circulated by the circulation pump; a drain valve to discharge water in the outer tank; and a control device to control the inner tank, the circulation pump, and the drain valve. The control device executes a tank washing step to rotate the inner tank in a state in which water is stored in the outer tank by closing the drain valve. The tank washing step has a first washing step in which the inner tank rotates at a first rotation speed while the circulation pump reversely rotates and a second washing step in which the inner tank rotates at a second rotation speed higher than the first rotation speed while the circulation pump reversely rotates.SELECTED DRAWING: Figure 12
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Description

[Technical Field]

[0001] The present invention relates to a washing machine. [Background technology]

[0002] In washing machines, a tub cleaning process may be performed during or separately from the washing operation, as dirt accumulates on the inner and outer tubs. For example, Patent Document 1 discloses a washing machine that, during the tub cleaning process performed during the washing operation, rotates the inner tub at a speed higher than that during the washing process but lower than that during the spin-drying process, thereby stirring up water accumulated in the outer tub (paragraph 0087, etc.). [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2013-39211 Summary of the Invention [Problem to be solved by the invention]

[0004] However, in conventional tub cleaning processes such as the technology described in Patent Document 1, even if the tub can be cleaned by stirring up the water accumulated in the outer tub, it is difficult for the filter in the drainage path to capture the fine lint that has been removed from the tub. As a result, when draining the water after tub cleaning, the lint may pass through the filter in the drainage path and be discharged outside the machine, potentially clogging the drain trap. Furthermore, the removed lint may remain at the bottom of the outer tub even after draining and reattach to clothes during the next wash cycle, etc.

[0005] An object of the present invention is to provide a washing machine that prevents lint from being discharged outside the machine or from re-adhering to clothes when draining water after tub cleaning. [Means for solving the problem]

[0006] In order to solve the above-mentioned problems, the present invention provides a washing machine comprising a housing, an outer tub supported within the housing for storing water, an inner tub enclosed within the outer tub for storing clothes, a circulation pump for circulating the water in the outer tub, a water channel filter for collecting lint contained in the water circulated by the circulation pump, a drain valve for draining the water in the outer tub, and a control device for controlling the inner tub, the circulation pump, and the drain valve, wherein the circulation pump sprays water into the inner tub from the top of the outer tub when rotated forward, and directs water into an inlet formed at the bottom of the outer tub when rotated reversely, and the control device executes a tub cleaning process in which the drain valve is closed and the inner tub is rotated with water stored in the outer tub, and the tub cleaning process includes a first cleaning process in which the inner tub rotates at a first rotation speed while the circulation pump rotates reversely, and a second cleaning process in which the inner tub rotates at a second rotation speed higher than the first rotation speed while the circulation pump rotates reversely. [Effects of the Invention]

[0007] According to the present invention, it is possible to provide a washing machine that prevents lint from being discharged outside the machine or from re-adhering to clothes when draining water after tub cleaning. [Brief explanation of the drawings]

[0008] [Figure 1] FIG. 2 is a perspective view of the drum-type washer-dryer seen from diagonally above the front. [Figure 2] Cross-sectional view of the drum type washer-dryer seen from the right. [Figure 3] FIG. 10 is a front view of the outer tank and the air path filter when the housing and inner tank are not shown. [Figure 4] FIG. 2 is a perspective view of the drum type washer-dryer as viewed obliquely from the front, with the housing not shown. [Figure 5] An enlarged view of the area surrounded by the dotted line in Figure 4. [Figure 6] 6 is a cross-sectional view taken along a cross section in the front-rear direction including line AA in FIG. 5. [Figure 7] FIG. 2 is a vertical cross-sectional view showing a part of the structure of the bellows cleaning device. [Figure 8] FIG. 2 is a perspective view of the drum type washer-dryer as seen obliquely from the front and above, with the housing and outer tub cover not shown. [Figure 9] FIG. 9 is an enlarged view of the area surrounded by the dotted line in FIG. 8. [Figure 10] 6 is a flowchart showing the overall operation performed by the control device of the drum type washer-dryer when the standard course of the washing and drying operation is selected. [Figure 11] 6 is a flowchart showing the overall operation performed by the control device of the drum type washer-dryer when a tub cleaning course is selected. [Figure 12] 10 is a time chart showing the changes in the rotation speed of the inner tub and the changes in the operation of the circulation pump and drain valve during the tub cleaning course. [Figure 13] FIG. 10 is a diagram showing the water level of the circulating shower when the circulating pump is stopped in the comparative example. [Figure 14] FIG. 10 is a diagram showing the water level of the circulating shower when the circulating pump is stopped in the case of Example 2. DETAILED DESCRIPTION OF THE INVENTION

[0009] DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS Hereinafter, an embodiment of the present invention will be described with reference to the drawings. Note that the washing machine will be described below by taking as an example a drum-type washer-dryer having an inner tub with a rotation axis that is substantially horizontal. [Example]

[0010] <Drum-type washer-dryer configuration> First, the configuration of a drum type washer-dryer 1 (hereinafter, sometimes simply referred to as a washing machine) according to this embodiment will be described with reference to Figures 1 and 2. Figure 1 is a perspective view of the drum type washer-dryer as seen obliquely from above the front, and Figure 2 is a cross-sectional view of the drum type washer-dryer as seen from the right.

[0011] Drum type washer-dryer 1 according to this embodiment includes housing 2, door 2a, outer tub 3, inner tub 4 (washing and spin-drying tub, rotating drum), air blower 5 (air blower 5a, hot air heater 5b, hot air outlet 5c, circulation air duct 5d, air duct hose 5e, sub-air duct filter 5f), drainage channel 6 (internal drainage channel 6a, water channel filter 6b, drain valve 6c, drain hose 6d), air channel filter 7, lint discharge water channel 8, circulation pump 9, and detergent dissolving water channel 10. Although not shown in FIG. 2 , drum type washer-dryer 1 according to this embodiment further includes circulation water channel 11, fluid balancer 12, bellows cleaning mechanism 13, hot water heater 14, water level sensor, water supply unit, and control device.

[0012] As shown in Fig. 1, the housing 2 is a box-shaped member that forms the outer shell of the drum-type washer-dryer 1, and includes a front cover 2b, a pair of left and right side panels 2c, a rear cover 2d, a top cover 2e, and a base 2f. The top cover 2e is provided with a detergent opening, an operation panel, etc., and the front cover 2b is formed with a clothes opening for putting clothes (laundry). The door 2a covers the clothes opening and can be opened and closed via a hinge 2g so that the user can put clothes in and take them out.

[0013] As shown in Figure 2, the outer tub 3 is supported by the housing 2 and can store water inside. An annular outer tub cover 3a is provided at the front opening of the outer tub 3, and an opening for putting clothes in and taking them out is formed near the center of the outer tub cover 3a. The opening of this outer tub cover 3a and the clothes insertion opening in the front cover 2b of the housing 2 are connected via rubber bellows 15 (see Figure 7), ensuring watertightness between the door 2a and the outer tub 3 when closed. In addition, a drain outlet 3b is formed in the lower part of the bottom surface of the outer tub 3.

[0014] The inner tub 4 is contained within the outer tub 3 and rotates around the rotation axis 4a at low or high speed with laundry stored inside during each of the washing, rinsing, spin-drying, and drying processes. Note that during each process of the tub cleaning course described below, the inner tub 4 rotates without any laundry stored inside. Numerous through-holes 4b (not shown in FIG. 2) are formed in the peripheral and bottom walls of the inner tub 4 for water and ventilation. The inner tub 4 also has an opening on its front side, and is supported so that this opening faces the door 2a when closed. Note that the rotation axis 4a of the inner tub 4 may be parallel to the horizontal plane, or may be inclined so that the opening is higher than the bottom (rear) surface.

[0015] During the drying process, the air blower 5 generates circulating air as indicated by the dashed arrows in Figure 2 to dry the clothes. The air blown out from the air blower 5a is heated by the downstream hot air heater 5b and then supplied to the inner tub 4 through the hot air outlet 5c. The hot air supplied to the inner tub 4 heats the wet clothes stored in the inner tub 4 to remove moisture from them, then passes through the through-holes 4b in the inner tub 4 into the space between the inner tub 4 and the outer tub 3, passes through the air path filter 7, and reaches the circulation air path 5d connecting the outer tub 3 and the air blower 5a. The air flowing into the circulation air path 5d has become humid due to removing moisture from the clothes. Therefore, cooling water, as indicated by the solid arrows in Figure 2, is supplied from the top of the circulation air path 5d to cool the humid air, condensing the water vapor and dehumidifying the air. The dry air after dehumidification passes through the air duct hose 5e and the sub-air duct filter 5f (exhaust-side air duct filter) and returns to the blower 5a. In this way, the blower 5 supplies high-temperature dry air to the damp clothes in the inner tub 4, accelerating the drying of the clothes.

[0016] The drain channel 6 is a path for draining water from the outer tub 3, and is composed of an internal drain channel 6a that communicates with the drain outlet 3b on the bottom of the outer tub 3, a water channel filter 6b that collects lint in the wastewater flowing through the internal drain channel 6a, a drain valve 6c that is closed mainly during the washing and rinsing processes and is open mainly during the spin-drying and drying processes, and a drain hose 6d through which the wastewater passes when the drain valve 6c is open. The lint collected by the water channel filter 6b is cleaned up by the user as needed.

[0017] Air path filter 7 and sub-air path filter 5f (exhaust-side air path filter) are mesh filters for capturing lint contained in the circulating air, and air path filter 7 is placed between the lower (upstream) side of circulation air path 5d and the back surface of outer tub 3, while sub-air path filter 5f (exhaust-side air path filter) is placed between air path hose 5e and blower 5a (i.e., on the exhaust side of circulation air path 5d). Details regarding the collection and discharge of lint by air path filter 7 will be described later. The lint discharge channel 8 connects the lower part of the circulating air channel 5d to the internal drainage channel 6a.

[0018] The circulation pump 9 is a pump that circulates water in the outer tub 3, and is composed of a motor, an impeller, a casing, etc. (not shown). The casing has one intake port and two discharge ports. The intake port is connected to the downstream side of the water channel filter 6b, the first discharge port is connected to the circulation water channel 11, and the second discharge port is connected to the detergent dissolving water channel 10.

[0019] The circulation water channel 11 (see Figure 4 or Figure 5) is a water channel that guides wash water or rinse water from the first discharge port of the circulation pump 9 to a water spray nozzle (not shown) formed on the outer peripheral surface of the upper front side of the outer tub cover 3a. The water spray nozzle is formed in a slit shape so that the water sprayed into the inner tub 4 spreads in a thin film.

[0020] The detergent dissolving water channel 10 (see Figure 5) is a water channel that guides washing water or rinsing water from the second outlet of the circulation pump 9 to an inlet 3c formed in front of a concave recess 3d provided in the bottom of the outer tub 3.

[0021] The fluid balancer (see FIG. 7) is a component for suppressing eccentricity due to uneven positioning of clothes, etc. It is installed near the edge of the opening of the inner tub 4 and rotates integrally with the inner tub 4. The hot water heater 14 (see FIG. 9) heats the wash water accumulated at the bottom of the outer tub 3 and is installed in the recessed portion 3d of the outer tub 3. The water level sensor (not shown) detects the water level by measuring the pressure of the water accumulated in the outer tub 3. The water supply unit (not shown) includes a detergent water supply solenoid valve, a softener water supply solenoid valve, a cooling water supply solenoid valve, and a shower water supply solenoid valve. When the shower water supply solenoid valve opens, the water supply branches into three branches: shower water that is sprayed into the inner tub 4; bellows water that washes away lint adhering to the inner surface of the bellows (see FIG. 7); and duct cleaning that washes away lint adhering to the sub-air duct filter 5f and the circulation air duct 5d. The control device (not shown) controls the opening and closing operations of the solenoid valves and drain valve 6c of the water supply unit, the rotation of the motors that drive the inner tank 4 and circulation pump 9, and the operation of the air blower 5 and hot water heater 14, etc.

[0022] <Collecting and discharging lint using air duct filters> 3 is a front view of the outer tub and air duct filter when the housing and inner tub are not shown. In the washing machine of this embodiment, the blower 5a is located above the right side of the outer tub 3, so the circulation air duct 5d from the outer tub 3 to the blower 5a is located below the blower 5a and behind the outer tub 3 to connect them in the shortest distance. In addition, in the washing machine of this embodiment, in order to reduce the ventilation resistance from the outer tub 3 to the blower 5a and increase the volume of circulating air, a large, vertically elongated air intake 3e is provided on the back of the outer tub 3, and this air intake 3e is covered with a wide-area air duct filter 7.

[0023] In a washing machine, the mechanical force of clothes rubbing against each other in the inner tub 4 during the washing and rinsing cycles, and the mechanical force of the air supplied to the inner tub 4 during the drying cycle, cause clothes fibers to peel off and generate lint. The generated lint is wet and heavy at the beginning of the drying cycle and does not float, but as the drying progresses it becomes lighter and begins to float. Of the floating lint, lint larger than the mesh of the air duct filter 7 is collected by the air duct filter 7 and discharged into the internal drainage channel 6a during the subsequent washing and rinsing cycles, or when the tub cleaning course described below is executed.

[0024] Meanwhile, lint that floats during the drying process and is smaller than the mesh size of air path filter 7 passes through air path filter 7 and enters circulation air path 5d. Furthermore, it is thought that the floating lint may be more likely to be sucked into blower 5a via open portion 9 or to accumulate on heater 5b. Therefore, the above problem can be solved by providing sub-air path filter 10 between air path hose 5e and blower 5a to capture lint that moves with the drying air.

[0025] Fine lint particles that enter the circulation air duct 5d absorb the cooling water supplied to the air duct for dehumidification during the drying process or the water supplied to the water tub during the washing or rinsing process, coalescing with surrounding lint and forming lint clumps that accumulate on the backside of the filter. However, because the lint clumps are initially small enough, they are discharged through the lint discharge channel 8 to the internal drainage channel 6a along with the cooling water during the drying process or along with the drainage from the outer tub 3 after the washing or rinsing process. At this time, the lint discharge channel air duct-side connector 8a is located lower than the maximum height reached by the water flow caused by the swell during the standard tub cleaning process described below or the third tub cleaning process in the tub cleaning course described below. Furthermore, it is desirable that the lint discharge channel air duct-side connector 8a be located lower than the maximum height reached by the water flow caused by the swell during the second tub cleaning process in the tub cleaning course described below. This allows for the lint to be discharged not only by the cooling water but also by the water used to wash the tank, thereby enabling more reliable lint discharge.

[0026] The diameter of the lint discharge channel 8 may be on the order of several mm, but it is preferable to design the lint discharge channel 8 to have a diameter of about 6 to 10 mm so that even lint clumps that have grown to a certain extent can be discharged. Also, it is preferable to connect the lint discharge channel drainage channel side connector 8b provided at the lower end of the lint discharge channel 8 to the upstream side of the channel filter 6b so that the lint discharged via the lint discharge channel 8 can be collected by the channel filter 6b, but it is also possible to connect the lint discharge channel drainage channel side connector 8b to the downstream side of the channel filter 6b so that the lint clumps can be directly discharged into a sewer or the like.

[0027] <Rotation direction of the circulation pump and the generated water flow> FIG. 4 is a perspective view of the drum type washer-dryer as viewed diagonally from the front, with the housing omitted from the illustration; FIG. 5 is an enlarged view of the area surrounded by the dotted line in FIG. 4; and FIG. 6 is a cross-sectional view of the washer-dryer taken along a cross section in the front-to-rear direction including line AA in FIG. 5.

[0028] When the motor of the circulation pump 9 rotates forward, the wash water or rinse water accumulated at the bottom of the outer tub 3 is guided to the water channel filter 6b via the drain outlet 3b and the internal drain channel 6a. The water, from which lint has been removed by the water channel filter 6b, flows into the casing through the intake port, where it becomes a swirling flow due to the centrifugal force of the impeller and is discharged from the first outlet. The water discharged from the first outlet is guided to the sprinkler nozzle via the circulation water channel 11 and is sprayed from the sprinkler nozzle into the inner tub 4 as a circulating shower. The sprayed water then circulates again to the drain outlet 3b of the outer tub 3 via the through-hole 4b in the inner tub 4. The water flow generated when the motor of the circulation pump 9 rotates forward is indicated by the black arrows in Figures 4 and 5.

[0029] When the motor of the circulation pump 9 rotates in reverse, the wash water or rinse water accumulated at the bottom of the outer tub 3 is guided to the water channel filter 6b via the drain outlet 3b and the internal drain channel 6a. The water, from which lint has been removed by the water channel filter 6b, flows into the casing through the intake port, becomes a swirling flow due to the centrifugal force of the impeller, and is discharged from the second outlet. The water discharged from the second outlet is guided through the detergent dissolving water channel 10 to the inlet 3c at the front of the bottom of the outer tub 3, then flows rearward and circulates again to the drain outlet 3b of the outer tub 3. The water flow generated when the motor of the circulation pump 9 rotates in reverse is indicated by the white arrows in Figures 4 to 6.

[0030] <Structure of Bellows Cleaning Device> FIG. 7 is a vertical cross-sectional view showing a portion of the bellows cleaning structure. The bellows cleaning mechanism 13 is composed of a shower water supply solenoid valve (not shown), a bellows cleaning water channel 13a, and a bellows cleaning nozzle 13b. The bellows cleaning water channel 13a connects the shower water supply solenoid valve and the bellows cleaning nozzle 13b and extends radially inward along the inner surface of the outer tub cover 3a so as to face the fluid balancer. The bellows cleaning nozzle 13b is a nozzle that discharges tap water from the front side of the outer tub cover 3a toward the upper inner surface of the bellows 15, washing away lint adhering to the bellows 15. The washed-out lint is discharged together with the tap water into the internal drainage channel 6a via the drain outlet 3b of the outer tub 3 and collected by the water channel filter 6b.

[0031] <Hot water heater structure> FIG. 8 is a perspective view of the drum-type washer-dryer as seen obliquely from the front and above, with the housing and outer-tub cover omitted, and FIG. 9 is an enlarged view of the area surrounded by the dotted line in FIG. 8. As described above, the hot water heater 14 heats the wash water accumulated at the bottom of the outer tub 3 and is provided in the recessed portion 3d of the outer tub 3. Some lint that has peeled off from clothes during the washing and rinsing cycles may accumulate around the hot water heater 14. However, when the motor of the circulation pump 9 rotates in reverse while water is accumulated at the bottom of the outer tub 3, a water flow, as shown by the arrows in FIG. 9, is generated in the recessed portion 3d of the outer tub 3. This water flow causes lint adhering around the hot water heater 14 to be discharged into the internal drainage channel 6a via the drain outlet 3b of the outer tub 3 and collected by the water channel filter 6b.

[0032] <Operational behavior of the washer / dryer on the standard course> FIG. 10 is a flowchart showing the overall operation performed by the control device of a drum-type washer-dryer when the standard wash / dry cycle is selected. When the standard cycle is selected and the start button is pressed on the operation panel, the control device sequentially performs a washing process (step S1), a rinsing process (step S2), a standard tub cleaning process (step S3), a spin-drying process (step S4), and a drying process (step S5), as shown in FIG. 10. Each process will be described in detail below. Hereinafter, rotating the motor driving the inner tub 4 forward (reverse) may be simply referred to as "rotating the inner tub 4 forward (reverse)," and rotating the motor of the circulation pump 9 forward (reverse) may be simply referred to as "rotating the circulation pump 9 forward (reverse). Furthermore, the rotation speed of the motor of the inner tub 4 may be simply referred to as the rotation speed of the inner tub 4, and the rotation speed of the motor of the circulation pump 9 may be simply referred to as the rotation speed of the circulation pump 9.

[0033] <Washing process> First, the control device calculates the amount of laundry before water is dispensed based on the rotation speed and current value of the motor (not shown) when rotating the inner tub 4. For example, if the current flowing through the motor is large, the load for rotating the inner tub 4 is large, and it can be assumed that the amount of laundry is large.

[0034] Next, the control device opens the detergent water supply solenoid valve to supply tap water to the detergent dispenser. The tap water supplied to the detergent dispenser is then supplied to the outer tub 3 via a hose together with the detergent. Furthermore, the control device generates a water flow as shown by the white arrows in Figures 4 to 6 by rotating the circulation pump 9 in reverse while rotating the inner tub 4 while keeping the detergent water supply solenoid valve open. In the case of powder detergent, this water flow dissolves the detergent, producing a highly concentrated detergent solution. In the case of liquid detergent, the detergent dissolving operation of rotating the circulation pump 9 in reverse may be omitted. The rotational speed of the circulation pump 9 when dissolving the detergent is, for example, 1500 rpm.

[0035] Thereafter, the control device rotates the circulation pump 9 in the forward direction while repeatedly rotating the inner tub 4 in the forward and reverse directions, thereby performing a pre-wash by spraying a highly concentrated detergent solution from the sprinkler nozzles into the inner tub 4, as shown by the black arrows in Figures 4 and 5. The rotation speed of the circulation pump 9 when spraying water from the sprinkler nozzles is, for example, 2500 rpm.

[0036] Next, the control device opens the detergent water supply solenoid valve to supply water based on the detection value of the water level sensor until the water level reaches a predetermined level. After that, the control device performs the main wash by rotating the circulation pump 9 forward while repeatedly rotating the inner tub 4 forward and backward. During the main wash, the hot water heater 14 is turned on to heat the water at the bottom of the outer tub.

[0037] <Rinsing process> The rinsing process basically involves a first rinse and a second rinse (final rinse).

[0038] In the first rinse, the control device first opens the drain valve 6c to drain the wash water used in the washing process. After draining is complete, the control device rotates (reversely rotates) the inner tub 4 at a high speed (e.g., 1250 rpm) to spin off the wash water contained in the clothes.

[0039] Next, the control device closes the drain valve 6c and opens the shower water supply solenoid valve to supply tap water to the outer tub 3. At this time, the control device rotates the inner tub 4 at a low speed while driving the circulation pump 9 in the forward direction, thereby performing rinsing while spraying rinsing water from the spray nozzles into the inner tub 4, as shown by the black arrows in Figures 4 and 5.

[0040] The control device first stops the inner tub 4 and the circulation pump 9, and opens the drain valve 6c to drain the rinse water from the outer tub 3. After draining is complete, the control device rotates the inner tub 4 at high speed to dehydrate the rinse water contained in the clothes. This completes the first rinse cycle.

[0041] Next, in the second rinse, the control device closes the drain valve 6c and opens the softener water supply solenoid valve to supply tap water to the outer tub 3. Subsequently, the control device closes the softener water supply solenoid valve and opens the detergent water supply solenoid valve and the shower water supply solenoid valve to supply tap water to the outer tub 3. At this time, the control device rotates the inner tub 4 at a low speed and drives the circulation pump 9 in the forward direction to spray rinse water containing softener (a finishing agent) into the inner tub 4 from the spray nozzles, thereby allowing the softener to soak into the clothes. Furthermore, when the shower water supply solenoid valve is opened, as described above, tap water reaches the bellows wash nozzle 13b via the bellows wash water passage 13a and is sprayed toward the upper inner surface of the bellows 15, thereby washing away lint adhering to the bellows 15. The lint washed away at this time includes lint that adhered to the bellows 15 during the drying process of the previous operation.

[0042] <Standard tank cleaning process> In the standard tub cleaning process, the control device first opens the drain valve 6c to drain the rinse water used in the rinsing process. After draining is complete, the control device rotates (reversely rotates) the inner tub 4 at high speed (e.g., 900 rpm) for a predetermined time to dehydrate the rinse water contained in the clothes.

[0043] Next, the control device reduces the rotation speed of the inner tub 4, and when the rotation speed of the inner tub 4 reaches a predetermined speed (for example, 350 rpm), closes the drain valve 6c. Note that the rotation speed of the inner tub 4 at this time is not limited to 350 rpm, as long as it is higher than the rotation speed in the washing step and the first tub cleaning step in the tub cleaning course described below, and lower than the high-speed rotation speed in the spin-dry step.

[0044] The control device then alternately opens the detergent water supply solenoid valve and the shower water supply solenoid valve while keeping the drain valve 6c closed, allowing tap water to accumulate at the bottom of the outer tub 3. While allowing tap water to accumulate at the bottom of the outer tub 3, the control device maintains the rotation speed of the inner tub 4 at a relatively high speed of 350 rpm, thereby causing the tap water to be spouted upward. When the shower water supply solenoid valve is opened, as described above, tap water reaches the bellows cleaning nozzle 13b via the bellows cleaning water passage 13a and is sprayed toward the upper inner circumferential surface of the bellows 15, washing away lint adhering to the bellows 15. When the control device detects that the water has reached a predetermined level using a water level sensor or time control based on dynamic water pressure, it closes the shower water supply solenoid valve, but maintains the rotation speed of the inner tub 4 as is, and tap water continues to be spouted up.

[0045] After a predetermined time, the control device opens the drain valve 6c while maintaining the rotation speed of the inner tub 4, thereby draining the lint-containing water without contacting the clothes in the inner tub 4, and the lint is collected by the water channel filter 6b. Once drainage is complete, the machine moves to the spin cycle.

[0046] In this standard tub cleaning process, tap water is spun up to a relatively high position, washing away dirt and lint adhering to the upper part of the outer tub 3, including the outer tub cover 3a. Furthermore, the tap water spun up during the standard tub cleaning process reaches the air duct filter 7, and the water flow washes away lint adhering to the front and rear of the air duct filter 7. In particular, during the standard tub cleaning process, the inner tub 4 rotates in the reverse direction (counterclockwise when viewed from the front), spun up mainly toward the upper right side, efficiently cleaning the entire upper edge of the air duct filter 7, located at the rear right side of the outer tub 3. Furthermore, since the standard tub cleaning process uses fresh water rather than wash water or rinse water, it is also possible to prevent lint from re-adhering. Furthermore, by spinning the inner tub 4 at a high speed of 900 rpm before rotating at 350 rpm to spun up tap water, foaming during spun-up can be prevented, even if a small amount of detergent solution remains on the clothes before the tub cleaning process.

[0047] ≪Dehydration process≫ During the spin-drying process, the control device further increases the rotation speed of the inner tub 4 and rotates it in the reverse direction at high speed (e.g., 1000 rpm) while keeping the drain valve 6c open, thereby (finally) spinning out the water contained in the clothes. After the spin-drying process has been performed for a predetermined time, the process transitions to the drying process.

[0048] ≪Drying process≫ During the drying process, the control device opens the cooling water supply solenoid valve, energizes the hot air heater 5b, and drives the blower 5a to accelerate drying of the clothes. Specifically, the air blown out from the blower 5a is heated by the downstream hot air heater 5b and then supplied to the inner tub 4 through the hot air outlet 5c. The hot air supplied to the inner tub 4 removes moisture from the clothes, then passes through the through-holes in the inner tub 4, passes through the air path filter 7, and reaches the circulation air path 5d. The high-humidity air that flows into the circulation air path 5d is dehumidified by the cooling water supplied from the cooling water supply solenoid valve and returns to the blower 5a through the air path hose 5e.

[0049] <Operational behavior of washer-dryer during tub cleaning course> In addition to a standard course that performs a washing operation including a washing step, a rinsing step, and a spin cycle, and a washing and drying operation that also includes a drying step, the drum type washer-dryer of this embodiment can also be set to a tub cleaning course that performs a dedicated operation to clean the outer tub 3 and the like without loading clothes. For example, if a drying operation that does not include a washing step and only includes a drying step is performed three times in a row, or if a clogged air duct filter 7 is detected during the drying operation due to a temperature increase or a decrease in airflow, a message prompting the user to select the tub cleaning course is output to an operation panel (not shown) or the like.

[0050] Fig. 11 is a flowchart showing the overall operation performed by the control device of a drum type washer-dryer when a tub cleaning course is selected, and Fig. 12 is a time chart showing the changes in the rotation speed of the inner tub and the changes in the operation of the circulation pump and drain valve during the tub cleaning course. When the tub cleaning course is selected and the start button is operated on the operation panel, the control device sequentially performs a water supply step (step S11), a first tub cleaning step (step S12), a second tub cleaning step (step S13), a draining step (step S14), a third tub cleaning step (step S15), and a spin-drying step (step S16), as shown in Fig. 11. Each step will be described in detail below.

[0051] ≪Water supply process≫ First, the control device opens the detergent water supply solenoid valve with the drain valve 6c closed to supply water and accumulate tap water at the bottom of the outer tub 3. While repeatedly rotating the inner tub 4 forward and backward, the control device closes the detergent water supply solenoid valve when it detects, based on the water level sensor, that the water level has reached a predetermined level.

[0052] <First tank cleaning process> Once the water supply is complete, the control device drives the circulation pump 9 in the reverse direction, for example, at 1500 rpm, while keeping the drain valve 6c closed (i.e., with tap water remaining in the outer tub 3). This generates a water flow at the bottom of the outer tub 3 in the direction indicated by the white arrows in Figures 4-6. Lint accumulated on the hot water heater 14 at the bottom of the outer tub 3 is discharged through the drain outlet 3b of the outer tub 3 into the internal drainage channel 6a and collected by the water channel filter 6b. In addition to cleaning the hot water heater 14, this water flow also serves to clean dirt from the inner surfaces of pipes and other components along the path indicated by the white arrows in Figures 4-6. In the first-tub cleaning step, the inner tub 4 continues to rotate forward and backward from the water supply step, and its rotation speed (first rotation speed) is approximately the same as that in the washing step, for example, 40 to 50 rpm.

[0053] <Second tank cleaning process> After a predetermined time has elapsed since the start of the first tank cleaning process (reverse rotation of the circulation pump 9), the process transitions to the second tank cleaning process. In the second tank cleaning process, as in the first tank cleaning process, the control device drives the circulation pump 9 in the reverse direction, for example, at 1500 rpm, while keeping the drain valve 6c closed, i.e., while tap water remains in the outer tub 3. However, in the second tank cleaning process, the inner tub 4 rotates in one direction (reverse direction) at a higher rotation speed (second rotation speed), for example, 100 rpm, than in the first tank cleaning process. Therefore, the tap water rises to a higher position than in the first tank cleaning process, washing away, for example, parts of the side and back surfaces of the outer tub 3 (e.g., the air duct filter 7). In particular, in the second tank cleaning process, the inner tub 4 rotates in the reverse direction, primarily toward the upper right, effectively cleaning the upper end of the air duct filter 7 located at the rear right side of the outer tub 3.

[0054] ≪Drainage process≫ After a predetermined time has elapsed since the start of the second tank cleaning process, the process transitions to the drainage process. In the drainage process, the control device stops the circulation pump 9 and opens the drainage valve 6c to start draining water. The control device then gradually increases the rotation speed of the inner tank 4, for example, from 100 rpm to 350 rpm while draining water. During this process, lint washed away from the front side of the air duct filter 7 in the second tank cleaning process is discharged directly into the internal drainage channel 6a, and lint washed away from the back side of the air duct filter 7 is discharged into the internal drainage channel 6a via the lint discharge water channel 8. The lint discharged into the internal drainage channel 6a is then collected by the water channel filter 6b before reaching the drainage valve 6c.

[0055] <Third tank cleaning process> When the control device detects that drainage is complete based on the water level sensor, it closes the drain valve 6c and proceeds to the third-tub cleaning process. In the third-tub cleaning process, the control device first closes the drain valve 6c and alternately opens the detergent water supply solenoid valve and the shower water supply solenoid valve to collect tap water at the bottom of the outer tub 3. While collecting tap water at the bottom of the outer tub 3, the control device maintains the rotation speed of the inner tub 4 at 350 rpm, thereby causing the tap water to be spouted upward. When the shower water supply solenoid valve opens, as described above, tap water reaches the bellows cleaning nozzle 13b via the bellows cleaning water passage 13a and is sprayed toward the upper inner surface of the bellows 15, washing away lint adhering to the bellows 15. When the control device detects that the water level has reached a predetermined level using the water level sensor or time control based on dynamic water pressure, it closes the shower water supply solenoid valve, but maintains the rotation speed of the inner tub 4 and continues to spout tap water. The rotation speed of the inner tub 4 (third rotation speed) is not limited to 350 rpm, as long as it is higher than the rotation speed in the second tub cleaning step and lower than the high-speed rotation speed in the spin-drying step.

[0056] In the third tank cleaning process, tap water is raised to high positions that could not be reached in the first and second tank cleaning processes, so that dirt and lint adhering to the upper part of the outer tub 3, including the outer tub cover 3a, can also be washed away. In addition, at the end of the third tank cleaning process, the control device drives the circulation pump 9 in the reverse direction at, for example, 1500 rpm, so that lint and other particles peeled off from the inner surface of the outer tub 3 in the third tank cleaning process are efficiently collected by the water channel filter 6b.

[0057] The control device then stops the circulation pump 9 and opens the drain valve 6c to start draining, and the lint contained in the water collected in the third tank cleaning step is further collected by the water channel filter 6b. Once draining is complete, the process moves to the spin-drying step.

[0058] ≪Dehydration process≫ In the spin-drying process, the control device further increases the rotation speed of the inner tub 4 while keeping the drain valve 6c open, and rotates it in the reverse direction at high speed (for example, 1000 rpm), thereby using centrifugal force to remove water adhering to the inner tub 4. When the spin-drying process has been performed for a predetermined time, the tub cleaning course ends.

[0059] <Effects of Example 1> As explained above, in this embodiment, even when the standard course is selected, the standard tub cleaning process is executed between the rinsing process and the spin-drying process, so that dirt adhering to the outer tub 3 and lint adhering to the air duct filter 7 can be washed away. However, when a drying operation is executed that does not include a washing process or the like and includes only a drying process, the standard tub cleaning process is not executed, so that dirt and lint accumulate on the outer tub 3 and the air duct filter 7. Therefore, when the drying operation is executed a predetermined number of times (for example, three times) in succession, the tub cleaning course can be executed to wash away the accumulated dirt and lint in a shorter time than the standard course.

[0060] Furthermore, the water used in the first, second, and third tank cleaning steps of the tank cleaning course is clean water, not wash water or rinse water, which prevents dirt and lint from re-adhering. Furthermore, in the tank cleaning course, the circulation pump 9 is rotated in reverse to generate a strong water flow that is sucked into the water channel filter 6b at the bottom of the outer tub 3, concentrating the lint in the water channel filter 6b and preventing it from being discharged outside the machine when the drain valve 6c opens. If the circulation pump 9 were not driven, when the drain valve 6c opens, fine lint would not only be easily discharged outside through the water channel filter 6b, but would also be likely to remain at the bottom of the outer tub 3. The lint remaining at the bottom of the outer tub 3 becomes even finer in the third tank cleaning step, where the rotation speed of the inner tub 4 is high, making it easier to discharge outside the machine. Furthermore, when the circulation pump 9 is rotated in the reverse direction, lint and hairs that have accumulated on the hot water heater 14 at the bottom of the outer tub 3 can be removed by the strong water flow. The lint collection operation may be performed before draining the water in the standard washing course. By driving the circulation pump 9 before draining the water, fine lint is collected in the water channel filter 6b, which prevents the lint from being discharged outside the machine and clogging the drain trap. [Example]

[0061] The second embodiment relates to the control of the circulation pump 9 when the water spray (circulation shower) from the water spray nozzles is stopped during the washing process or rinsing process.

[0062] As described above, when water is sprayed from the spray nozzles, the circulation pump 9 rotates forward at a high speed, for example, 2500 rpm. As a comparative example, if the circulation pump 9 is suddenly stopped from rotating at high speed when water spraying is stopped, a large amount of water lifted by the circulation pump 9 still remains in the circulation water channel 11 when the pump stops. FIG. 13 shows the water level of the circulation shower when the circulation pump stops in the comparative example. As shown in FIG. 13, if the water level of the circulation shower is higher than the water surface level accumulated in the outer tub 3, immediately after the circulation pump 9 stops, water equivalent to this difference returns to the water surface level. As a result, a backflow occurs in the circulation pump 9, and the collected lint may overflow from the water channel filter 6b.

[0063] Therefore, when stopping the circulation pump 9 rotating in the forward direction, the control device of this embodiment does not suddenly stop the circulation pump 9 rotating at high speed, but instead reduces the rotation speed in stages. The rotation speed may be reduced, for example, from 2500 rpm by 500 rpm or 1000 rpm at predetermined time intervals until the pump is finally stopped, or it may be reduced all at once from 2500 rpm to about 1000 rpm and then stopped after a predetermined time.

[0064] FIG. 14 is a diagram showing the water level of the circulating shower when the circulating pump is stopped in Example 2. When the control device drives the circulating pump 9 at a low speed, for example, about 1000 rpm, and then stops it, as shown in FIG. 14, the water level of the circulating shower when the circulating pump is stopped is lower than the height of the water surface accumulated in the outer tank 3. Therefore, even immediately after the circulating pump 9 is stopped, backflow to the circulating pump 9 is unlikely to occur, and the overflow of collected lint from the water channel filter 6b can be prevented. Note that if a decrease in the circulating flow rate of the circulating shower can be tolerated, the rotation speed of the circulating pump 9 may be set to 1000 rpm or less from the beginning.

[0065] Next, a modification of the second embodiment will be described. In this modification, the control device controls the rotation speed of the circulation pump 9 based on the detection value of the water level sensor. Specifically, the relationship between the height of the water surface accumulated in the outer tub 3 and the target rotation speed of the circulation pump 9 is stored in advance as a table in the control device. Then, the control device controls the circulation pump 9 to reach the target rotation speed according to the detection value of the water level sensor, and finally stops the circulation pump 9. This has the advantage that the circulation pump 9 can be driven at the highest possible rotation speed before being stopped, within a range that prevents backflow after the circulation pump 9 is stopped.

[0066] The above-described embodiments have been described in detail to clearly explain the present invention, and are not necessarily limited to those including all of the described configurations. For example, the above-described tub cleaning process can be applied not only to drum-type washer-dryers, but also to vertical washer-dryers and washing machines without a drying function. It is also possible to replace part of the configuration of one embodiment with the configuration of another embodiment, or to add the configuration of another embodiment to the configuration of one embodiment. Furthermore, it is also possible to add, delete, or replace part of the configuration of each embodiment with other configurations. [Explanation of symbols]

[0067] 1...drum type washer-dryer, 2...casing, 2a...door, 2b...front cover, 2c...side panel, 2d...rear cover, 2e...top cover, 2f...base, 2g...hinge, 3...outer tub, 3a...outer tub cover, 3b...drain outlet, 3c...inlet, 3d...recess, 3e...air intake, 4...inner tub, 4a...rotating shaft, 4b...through hole, 5...blower device, 5a...blower, 5b...hot air heater, 5c...hot air outlet, 5d...circulation air duct, 5e...air duct hose, 5f...sub-air duct filter , 6...drainage channel, 6a...internal drainage channel, 6b...water channel filter, 6c...drainage valve, 6d...drainage hose, 7...air channel filter, 8...lint discharge channel, 8a...lint discharge channel air channel side connection, 8b...lint discharge channel drainage channel side connection, 9...circulation pump, 10...detergent dissolving channel, 11...circulation channel, 12...fluid balancer, 13...bellows cleaning mechanism, 13a...bellows cleaning channel, 13b...bellows cleaning nozzle, 14...hot water heater, 15...bellows

Claims

1. The housing and an outer tank supported within the housing and configured to store water; an inner tub that is contained in the outer tub and that stores clothes; a circulation pump that circulates the water in the outer tank; a water channel filter that collects lint contained in the water circulated by the circulation pump; a drain valve for draining water from the outer tank; a control device that controls the inner tank, the circulation pump, and the drain valve; a blower for supplying air into the inner tank; an air passage connecting the outer tank and the blower; an air path filter provided in the air path to capture lint contained in the air, When the circulation pump rotates forward, water is sprayed into the inner tank from the top of the outer tank, and when the circulation pump rotates backward, water is guided to an inlet formed at the bottom of the outer tank, When the control device detects that the air duct filter is clogged during the drying process, the control device outputs a display prompting the user to set a tub cleaning course different from a standard course including a washing process, a rinsing process, and a spin-drying process; When the tank cleaning course is selected, The control device executes a tank cleaning process in which the inner tank is rotated while the drain valve is closed and water is stored in the outer tank, The tank cleaning step includes: a first cleaning step in which the circulation pump rotates in a reverse direction while the inner tank rotates at a first rotation speed; a second cleaning step in which the circulation pump rotates in a reverse direction and the inner tank rotates at a second rotation speed higher than the first rotation speed; A washing machine characterized by having:

2. The washing machine according to claim 1, a hot water heater provided at the bottom of the outer tub to heat the water stored in the outer tub; In the first washing step, lint adhering to the hot water heater is washed away.

3. The washing machine according to claim 1, The washing machine is characterized in that the water stirred up in the second cleaning step reaches the air path filter.

4. The washing machine according to claim 1, the tank cleaning step further includes a third cleaning step in which the inner tank is rotated at a third rotation speed higher than the second rotation speed; The washing machine is characterized in that the water stirred up in the third washing step reaches an outer tub cover provided at an opening on the front side of the outer tub.

5. The washing machine according to claim 4, The washing machine is characterized in that the circulation pump rotates in reverse at the end of the third washing step.

Citation Information

Patent Citations

  • Washing machine

    JP2005131115A

  • Drum washing machine

    JP2013039211A

  • Washing machine

    JP2013223551A

  • Washing and drying machine

    JP2018079172A

  • Washing machine

    JP2022033597A