[0001] The present invention relates to a method for rinsing fabric in a washing machine
having a wash chamber rotating about a horizontal axis in a wash tub, comprising the
step of adding water to the tub and spraying rinse water by recirculating it onto
the fabric while spinning the wash chamber at a speed to effect a centrifugal force
on said fabric so that it will not tumble within the wash chamber.
[0002] Such method of rinsing a load of clothes is disclosed by
EP1983088.
[0003] European market for washing machines is developing towards low water consumption,
high rated capacities especially in cotton cycles (large load in small drum - drum
sizes have increased by only 50 % in past 15 years while rated load capacities increased
by 150 %) and very low energy consumption. Market is at a limit where energy reduction
- while keeping good cleaning performance - can only be reached with rigorous methods
such as extremely low water level in main wash combined with recirculation of the
wash liquor and very long wash cycles (from 3 to 6 hours for cotton cycles).
[0004] The situation of washing machines designed about 15 years ago presented the following
general features:
∘ ample drum volume / wash load ratios (no more than 5 kg of dry laundry in 48 l washer
drum)
∘ generous water amounts (e.g. 14 liters and more in the main wash for a 5 kg cotton
wash load)
∘ very few machines with recirculation systems in the market and with a use of recirculation
mainly to improve wash performance, not for reducing water and energy consumption.
[0005] Detergent and soil were well separated from the laundry and accumulated in the lower
part of the tub (so-called sump). Large portion of the detergent and soil was already
drained off at the end of the main wash, then further rinsed out during the rinse
and spin phases after main wash.
[0006] The present situation is characterized by issues arising from low water amounts,
large wash loads, recirculation of wash water are redistribution and re-deposition
onto the laundry of all detergent ingredients, even insoluble detergent components
such as zeolites (water-hardness adsorbents) and dirt.
[0007] Such substances get distributed and re-absorbed very evenly in the laundry, creating
persistent incrustation with the final result that laundry feels stiff and looks yellowed
/ grayed after wash, and dots and accumulations of insoluble detergent ingredients
(e.g. white zeolite spots) are also visible on colored laundry. Moreover, the above
detergent ingredients create so called frothing, i.e. an excessive foam creation as
wash liquor is poured onto load and into free water repeatedly during recirculation.
This frothing can cause bad wash performance as the "foam bath" reduces mechanical
motion / friction of wash load and air bubbles restrict physic-chemical access of
surfactants / enzymes to soils in laundry, over foaming, foam leaking out through
detergent dispenser and unsuccessful rinsing if foaming persists during intermediate
spinning and rinse cycles. As a final result of the above problems, detergent and
dirt stay on load and laundry feels soapy, with perceivably crepitating foam residues
in laundry after wash.
[0008] To avoid this, foam must be broken down by adding water or the machine must interrupt
all motion until foam has settled. This behavior has proven to be very hard to control,
requiring time, energy and more water. Even if there is no excessive foam, it is very
difficult to effectively rinse out soil and detergent. They are embedded into the
load during main wash. Separation of detergent, soil and insoluble such as zeolite
from the laundry must be accomplished during rinse and spin phases alone. Contrary
to the situation of 15 years ago, main wash is not contributing to this process any
longer, and consumers complain about eczemas from detergent residues. While fabrics
made from synthetic fibers are relatively easy to rinse out, especially cotton fabrics
absorb large amounts of detergent and soil and are particularly difficult to rinse
out.
[0009] In order to solve the above problems, appliance producers have designed special antifoam
routines. When foaming is detected, for instance via a pressure sensor, the drum rotation
is set to slower motion or is stopped completely until foam has settled. More advanced
methods include adding fresh water in one or several intervals to beat down the foam
and dilute the wash liquor. A disadvantage of this known method is an increased overall
washing time and a higher amount of water.
[0010] Another known solution is to design washing machines which offer the possibility
of selecting several extra rinses. This means falling back to 1970s state of the art
with for instance five long rinses and from 120 to 160 l of total water consumption.
A common method of measuring the rinsing efficiency of a wash cycle is the so called
"alkalinity method". After the wash cycle is finished, the laundry is taken out of
the washer and its remaining moisture content is measured by weighing it on a precise
scale and subtracting the dry load weight in an environment with standard air humidity
and temperature from this value. Then the wet wash load is spun out in standard spin
extractors, using a standard-defined wash load and standard-defined loading schemes
for the washer and the spin extractors. The liquor spun out by the spin extractors
is collected and titrated with a hydrochloric acid solution of defined concentration.
The volume of hydrochloric acid required to reach a pH value of 4.5 is measured, multiplied
by the remaining moisture content and a standard factor. The resulting value is internationally
known in the technical field of washing machines as "alkalinity" of the spun-out water-detergent
solution in equivalents of milligrams of sodium hydroxide (mg NaOH).
[0011] Typical state-of-the art alkalinities of the residual water in the laundry for a
full all-cotton wash load are as follows:
- without optimization: 240 mg NaOH
- with traditional optimization: 2 to 3 rinses with 4 to 6 min tumbling duration, medium
rotation speed of intermediate spins (e.g. 900 rpm), optimized distribution of water
amounts and rinse durations while saving water and time: 160 to 200 mg NaOH. This
is still perceivably turbid.
- cycles working with extreme amounts of water, very high spinning-speed and long intermediate
spins, 5 rinse cycles and long rinsing times: 35 to 50 mg NaOH. This means residual
water appears transparent, clear, and "clean".
[0012] An object of the present invention is to provide a method of the type mentioned at
the beginning of the description according to which a low alkalinity of the rinsing
water is reached without increasing the overall washing time and the water consumption.
[0013] The above object is reached thanks to the features listed in the appended claims.
[0014] According to the invention, by rinsing the load with water recirculated for a predetermined
short time (i.e. shorter than 50 sec), while maintaining it in a satellized configuration
of the load, it is possible to achieve excellent rinse result of 30 to 45 mg NaOH
consistently with 90 to 100 l of water for 80 % of rated capacity all-cotton load
in washers with recirculation system with a dedicated recirculation pump.
[0015] The pumping rate (measured as l/min) is preferably comprised between 0,2 and 1,7,
more preferably between 0,3 and 1,5 of the fabric dry load (measured in kg). For a
dry load of 5 kg the flow rate of the recirculation pump is therefore comprised between
1,5 and 7,5 l/min, with a total volume of water loaded in the tub comprised between
5 and 8 liters, more preferably within 6,5 and 7 liters.
[0016] The above preferred values apply to usual drums of washing machines having a diameter
from 470 to 500 mm and a total volume from 50 to 65 l.
[0017] The applicant has discovered the above surprising results by carrying out several
tests based on combinations of conservative and extreme wash cycle parameter settings
in a cotton wash cycle, then looking for the optimum composite of short and long rinse
cycles, small and large water amounts, and optimum drum movement. From previous experience
the applicant did not expect to get down below 48 mg NaOH but it was surprised to
find that some of the settings gave a breakthrough result. These settings succeeded
not only in one washer model but in many different models with different drum volumes
ranging from 50 l to 65 l. This range of drum volumes is typical of today's EU wash
market.
[0018] The above surprising result in term of low final alkalinity of the rinsing water
seems mainly due to the centrifugal recirculation of the rinsing water for a strictly
limited time in order to avoid stirring up of soil/detergent from the sump of the
tub.
[0019] The applicant has also discovered that good final result can be obtained by combining
the above centrifugal recirculation, preferably repeated two or more times, with a
final tumbling rinse whose duration is preferably longer than 7 minutes and with a
water amount which is preferably comprised between 0,7 and 1 of the total water amount
used in the washing phase. The applicant has discovered another beneficial ancillary
step of performing short tumbling rinses with a reduced amount of water (i.e. the
only water loaded before centrifugal recirculation) in order to quickly release concentrated
superficial soil/detergent combined with longer rinses in which the wash load is flooded
with higher amount of water in order to rinse out deep-bound soil/detergent.
[0020] Further advantages and features of a method of rinsing the load in a washing machine
according to the invention will become clear from the following detailed description,
provided as non-limiting example, with reference to the attached drawings in which:
- figure 1 is a perspective view of a washing machine according to the invention,
- figure 2 is a diagram of total washing cycle and rinsing cycle according to the invention,
where water consumption and drum speed are reported vs. time,
- figure 3 is an enlarged view of a portion of diagram of figure 2, and
- figure 4 is an enlarged view of another portion of diagram of figure 2.
[0021] With reference to the drawings, a washing machine 10 comprises a rotating drum 12
mounted in a tub 14. A pump 16 is provided for spraying water from the lowest part
of the tub 14 (i.e. the sump 15) in a recirculation pattern through a conduit 17 towards
a spraying nozzle 18. The washing machine 10 comprises a control unit (not shown)
which drives all the components of the machine according to a certain predetermined
program and according to a selection of such program by a user through a user interface
(not shown).
[0022] With reference to a wash cycle for cotton fabrics, according to one embodiment of
the invention such cycle comprises the following combination:
- water amount in the main wash: from 18.5 to 22.5 liters depending on drum volume;
- after main wash, a traditional multistep intermediate spin is performed with maximum
rotation speed plateau of 800 to 1200 rpm, preferably 960 rpm;
- from 6 to 7.5 liters of fresh water for rinsing are injected in the tub 14 at the
end of the above intermediate spin while spinning with a lightly satellized load,
e.g. at 100 rpm rotation speed in a washer drum with 470 to 500 mm drum diameter.
By "satellized" we mean that the load is attached to the drum wrapper through centrifugal
force such that it cannot perform any tumbling / falling movement. By "lightly satellized"
we mean that no strong compression force is exerted to the wash load, load items are
loosely stacked on each other inside the drum wrapper. Duration of plateau depends
on flow rate of freshwater inlet valve. 100 seconds duration is suitable if inlet
valve has 5.5 l/min flow rate. The fresh water is brought directly into the load by
activating the recirculation pump for a short time, preferably 30 s after end of filling
for 8 l/min pumping rate. This short recirculation phase is indicated with reference
R in the drawings. During this short recirculation phase the drum rotation at "light
satellization" speed is still maintained. Longer recirculation than 50 s (in case
of 8 l/min pumping rate) should be avoided. The applicant has discovered that best
result in terms of alkalinity can be obtained if the recirculation time is shorter
than 35 s, preferably shorter than or equal to 30 s. The applicant found that longer
recirculation worsens the rinsing efficiency as it takes sedimented soil and detergent
from the bottom of the basket / tub back into the laundry. The method of loading fresh
water into the tub while load is satellized and bringing the water directly onto the
load during satellization is called in the following "centrifugal fill" (CF in the
drawings). The main advantage of performing this centrifugal fill is that fresh water
is centrifugally pressed through the fabric layers of the wash load, releasing large
amounts of detergent and soil. It is important to notice that in figure 2 the 2nd, 4th and 5th addition of water in the tub (upper part of figure 2) is made by a first step during
the centrifugal fill CF and by a second step W where water is added during the subsequent
tumbling rinse.
[0023] Figure 3 shows the water inlet and spin speed profile versus time as described in
the above preliminary rinse step.
[0024] Several (preferably two) time-saving short rinses and spins (called "interval rinse"
and indicated with reference A in the drawings) are carried out. Each interval rinse
has a tumbling duration of 1 to 5 minutes (preferably 3 minutes), short motor-on /
motor-off times in reversing with slow rotation to achieve good distribution of water
and laundry (preferably tumbling 4 seconds clockwise at 35 rpm, 4 seconds no movement,
4 seconds counterclockwise at 35 rpm, 4 seconds no movement and so on) followed by
a short spin peak (called "interval peak" and indicated in the drawings with reference
B) of 800 to 1200 rpm, preferably 960 rpm. At the end of each spin peak B, after water
is pumped out of the tub, a centrifugal fill CF is performed.
[0025] A longer rinse cycle (7 to 12 min duration, preferably 8 min, called "basic rinse"
and indicated with reference C in the drawings) is performed after some of the above
interval peak B. One of such basic tumbling rinses C is shown in figure 4, and its
preferred duration is comprised between 3 and 8 minutes. In addition to the 6 to 7.5
liters of fresh water injected while spinning at approx. 100 rpm, a moderate amount
of fresh water (0.7 to 0.8 times the water amount of the main wash) is injected after
the laundry satellization is ended. Again, a tumbling (reversing) rhythm is performed
with short on/off times and slow rotation to achieve good mixing of water and wash
load (preferably 4 seconds clockwise at 35 rpm, 4 seconds no movement, 4 seconds counterclockwise
at 35 rpm, 4 seconds no movement).At the end of the spin peak B, a centrifugal fill
is performed.
[0026] The last phase of the overall rinsing process according to the invention is a very
long tumbling phase of a last rinse E, with duration of at least 10 minutes, preferably
12 min. In addition to the 6 to 7.5 liters of fresh water loaded while spinning at
approx. 100 rpm, again a moderate amount of fresh water is loaded after the laundry
satellization is ended. This water amount in final rinse should be higher than in
the other long rinse cycles C in order to efficiently soak the load, obtain good dilution
of the detergent and soil bound in the fabrics and release these impurities from the
fabrics. This water amount should be around 0.85 times the water amount of the main
wash. A tumbling (reversing) rhythm with short on/off times and slow rotation is carried
out to achieve good distribution of water and laundry but preferably longer / higher
than in the other rinse cycles C (preferably 8 seconds clockwise at 40 rpm, 8 seconds
no movement, 8 seconds counterclockwise at 40 rpm, 4 seconds no movement). At the
end a traditional final spinning F is carried out to extract as much liquor as possible
from the wash load.
[0027] According to a further feature of the invention, through the user interface it is
possible to activate an "intensive rinse" or "extra rinse" program corresponding to
the rinsing and spinning parameters described above. If this strong rinsing is not
needed and the option is not selected by the user, a shorter cycle consuming less
water and energy will be performed.
1. Method for rinsing fabric in a washing machine (10) having a wash chamber (12) rotating
about a horizontal axis in a wash tub (14), comprising the step of adding water to
the tub (14) and spraying rinse water by recirculating it onto the fabric while spinning
the wash chamber (12) at a speed to effect a centrifugal force on said fabric so that
it will not tumble within the wash chamber (12), characterized in that during said step (CF) the rinse water is sprayed for a time lower than 50 s.
2. Method according to claim 1, wherein recirculated water is sprayed at a flow rate
measured as l/min that is comprised between 0.2 and 1.7, more preferably between 0.3
and 1.5 times the dry load of fabric in the wash chamber (12) measured as kg.
3. Method according to claim 2, wherein the time during which the water is spayed on
the fabric is lower than 40 s.
4. Method according to claim 2, wherein the time during which the water is spayed on
the fabric is lower than 35 s, preferably lower than or equal to 30 s.
5. Method according to any of the preceding claims, wherein the total amount of water
recirculated in the recirculation step is comprised between 5 to 8 liters, preferably
between 6,5 to 7 liters.
6. Method according to any of the preceding claims, wherein it comprises a final tumbling
rinse phase (E) longer than 7 minutes during which the added rinsing water is comprised
between 0.5 and 1.2, more preferably between 0.7 and 1 of the total amount of water
used during the washing phase.
7. Method according to any of the preceding claims, wherein the step of spraying water
on the fabric is repeated several times with intermediate tumbling phases (A, C) followed
by spinning phases (B) for water extraction.
8. Method according to claim 7, wherein each of said intermediate tumbling phases (C)
has a duration comprised between 3 minutes and 8 minutes.
9. Method according to claim 8, wherein said intermediate tumbling phases (C) are shorter
than 4 minutes.
10. Washing machine (10) comprising a wash chamber (12) rotating about a horizontal axis
in a wash tub (14) and a recirculation system (15, 16, 17, 18) for spraying water
onto fabric loaded in the wash chamber (12), characterized in that it comprises a control circuit configured to carry out a method according to any
of the preceding claims.