Shredding machine
09669410 ยท 2017-06-06
Assignee
Inventors
Cpc classification
B02C18/0007
PERFORMING OPERATIONS; TRANSPORTING
B02C2018/164
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A shredding machine for domestic or office use having a feed passage 3 leading to a cutting mechanism 10, 11 powered by an electric motor, has a thickness measuring device 15 for measuring the thickness of bundles of paper fed through the feed passage and the machine is controlled by a microprocessor which receives signals from the thickness measuring device and prevents the cutting mechanism from being energized if the thickness measured is above a threshold determined by the microprocessor. The microprocessor varies the threshold in accordance with electrical supply voltage, the electric motor temperature and the electric current drawn by the motor during a previous shredding operation, so that the maximum thickness the shredder will accept can be reduced automatically when motor temperature increases or as the effectiveness of the machine deteriorates throughout its working life.
Claims
1. A shredder comprising: a housing having a feed passage for receiving material to be shredded; a shredding machine received in the housing and including an electrically powered motor and cutters, the shredding machine enabling the material to be shredded to be fed into the cutters and the motor being operable in a shredding direction to drive the cutters to shred the material fed therein; a thickness gauging device configured to detect a thickness of the material to be shredded received by the feed passage; and a processor coupled to the motor and the thickness gauging device, the processor being configured to determine, prior to operation of the motor, whether the thickness gauging device detects that the thickness of the material to be shredded received by the feed passage is less than or greater than a capacity threshold thickness, and in response, (a) prevent operation of the motor if the thickness gauging device detects that the material to be shredded received by the feed passage is greater than the capacity threshold thickness; and (b) operate the motor in the shredding direction to drive the cutters to shred the material received by the feed passage if the thickness of the material is less than the capacity threshold thickness; wherein the thickness gauging device is deactivated by the processor during shredding until the material is shredded so that rippling or flapping of the material within the feed passage will not cause false readings as to the amount of material inserted into the feed passage.
2. The shredder of claim 1, wherein the thickness gauging device includes an actuating arm that extends into the feed passage, and the thickness of material to be shredded is determined by displacement of the arm.
3. The shredder of claim 2, wherein the thickness gauging device is configured to measure a thickness of the material to be shredded received by the feed passage.
4. The shredder of claim 3, wherein the arm is movable from a first limiting position engaging or relatively close to one major wall of the feed passage, and the thickness gauging device further includes means for measuring displacement of the arm from the first limiting position.
5. The shredder of claim 4, wherein the means for measuring displacement of the actuating element comprises a member provided with a series of markers of alternately high and low light transmissivity or of alternatively high and low light reflectivity and optical sensing means sensitive to the passage of the markers through a measuring zone, the member being part of or mechanically coupled with, the element so that the displacement of the actuating element will cause the markers to traverse the measuring zone, the apparatus including counting means operable to count displacement of the markers through the measuring zone.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) So that the invention may be more readily understood, and so that further features thereof may be appreciated, embodiments of the present invention will now be described, by way of example, with reference to the accompanying drawings, in which:
(2)
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DETAILED DESCRIPTION
(10) Referring initially to
(11) The shredding machine comprises a relatively large plastic container or bin 1, on top of which sits a housing 2 inside which the operative parts of the paper shredder are located, as will be described in more detail hereinafter. The housing 2 is provided with a feed slot or passage 3 which provides an elongate entrance aperture having a length sufficient to accommodate sheets of appropriate size to be shredded by the machine. During operation, sheet material to be shredded, such as sheets of paper or card or the like, is inserted into the paper feed slot to pass into the feed passage or chute, where the sheets are drawn into the shredding mechanism in a manner known per se and shredded into a plurality of strips which then exit the shredding mechanism from the bottom of the housing 2 so as to fall from the housing and be collected in the bin 1 located therebelow.
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(13) The features of the shredding machine described above with reference to
(14)
(15) The feed slot or feed passage 3 is defined, in the absence of the top part of the housing 2, by a pair of substantially parallel upstanding feed walls 5, 6. As can be seen from
(16) As will be appreciated from a comparison of
(17)
(18) Upon energisation of the electric motor 9, the two cutters 10, 11 are caused to rotate, such that the forwardmost cutter 10 rotates in a clockwise sense as viewed in
(19) As also illustrated in
(20) The actuating arm 17 is spring biased into the feed passage 3 and is free to extend, under the spring bias, so far into the feed passage 3 as to engage the opposing wall 5 of the feed passage in the absence of any paper sheets to be shredded. This makes possible a self-calibrating function as described below.
(21) Although not essential to the operation of the present invention, it will be seen from the accompanying drawings that the shredding machine is also provided with a pair of photo-sensors, indicated generally at 38 and 39 in
(22) In the embodiment of the present invention under discussion, the shredding machine incorporates a microprocessor which controls energisation of the electric motor driving the cutting mechanism and the feed mechanism and which, on the basis of various sensors (see below) establishes, as an optimal sheet capacity threshold, a maximum thickness of a stack or bundle of paper sheets or the like which, for prevailing conditions, the machine can comfortably deal with. Measuring the thickness of a stack of paper sheets inserted is effected by the device 15 and associated circuitry which provides corresponding information to the microprocessor.
(23) A stack of paper sheets or the like can be inserted into the feed slot to pass between the walls 5 and 6 for engagement by the cutting mechanism therebelow, the cutting mechanism being switched on and off in response to signals from the lower level photo sensor 38, (which signals are also sent to the microprocessor). If the thickness of the stack of papers inserted into the feed slot is less than the currently determined optimal sheet capacity threshold, then the cutting mechanism will be switched on and the stack of sheets shredded. However, should a stack of papers be inserted into the feed slot which stack has a thickness greater than the currently determined optimal sheet capacity threshold, as determined by displacement of the actuating arm 17, then the microprocessor will terminate supply of electricity to the motor driving the cutting mechanism and will activate an alarm signal to alert the operator to the fact that too thick a stack of paper sheets had been inserted.
(24) The stack of paper sheets inserted into the feed slot will pass between the wall 5 and the surface 18 of the actuating arm 17 thereby urging the actuating arm to move against its spring and so to generate signals to the microprocessor from which the latter can determine how far the actuating arm has moved and thus determine the thickness of the stack of sheets inserted. As noted above, the microprocessor thus prevents operation of the cutting mechanism located below the feed slot, even when the leading edge of the stack passes the lower level photo sensor 38 which would, if the stack of papers was not of excessive thickness, trigger operation of the cutting mechanism.
(25) In one form of the thickness measuring device 15 shown schematically in
(26) With the arrangement illustrated in
(27)
(28) The thickness gauging devices described with reference to
(29) If a stack of paper sheets or the like is inserted into the feed slot 3 so as to pass between the wall 5 and the arm 17 or probe roller 301 and that stack of papers has a thickness, (sensed by displacement of the arm 17 or probe roller 301), less than the optimal sheet capacity threshold thickness determined for the time being by the shredder processor, then the electric motor powering the cutting mechanism will be switched on in response to signals from the lower level photo-sensor 38 and the paper will be shredded, with the motor being switched off again once the paper has cleared the sensor 38. However, should a stack of papers be inserted into the feed slot which has a thickness, (sensed by displacement of the arm 17 or probe roller 301), greater than the optional sheet capacity threshold thickness, the shredder microprocessor will prevent energisation of the cutter motor and thus prevent operation of the cutting mechanism located below the feed slot, even when the leading edge of the stack passes the lower level photo-sensor 38. The microprocessor will also light a warning lamp to signal that the paper bundle inserted is too thick.
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(31) When paper is inserted, as sensed by sensor 38, (see above), the shredder motor runs, feeding the inserted sheets past the sensing arm 17 or probe 300. At stage 426, the processor determines whether the thickness actually sensed is below or at or above the optimal capacity threshold and if the sensed thickness is below or at the threshold allows shredding to proceed (stages 428, 430). If the processor determines (stages 432, 434) that the thickness of the paper bundle fed into passage 3 is excessive, the processor does not energise the shredder motor but actuates a warning light at 435 to inform the operator that too much paper has been inserted and once the paper has been removed from the passage 3, the processor returns to stage 410. If the optimal capacity threshold is not reached or exceeded, the inserted paper is shredded (stage 430), whilst the motor current is monitored at 440 and stored at 415. The optimal sheet capacity thickness-measuring facility is deactivated (stage 441) during shredding until the inserted paper clears the sensor 38 (stage 443). The reason for this is that when paper is shredded it ripples and flaps within the feed passage 3, which can cause the arm 17 or probe 300 to be constantly moved and can cause false readings as to the amount of paper inserted.
(32) Once the inserted paper has been shredded and has passed the sensor 38 (stage 443), the processor returns to stage 408 once again, re-activating the optimal sheet capacity thickness-measuring facility.
(33) If, during shredding, the shredder jams, despite the thickness monitoring, this condition is sensed at 450, a warning light is lit (stage 452) and the shredder motor and hence the shredder mechanism is reversed, either automatically or by operation of a manual switch (stage 454), to free the jam. The processor then returns to the initial stage 400.
(34) The preferred embodiment of the invention is also operable to break up CDs, or credit cards. When used for this purpose, the thickness measuring optimal sheet capacity facility is by-passed (stages 401,403,405) whilst the CD or credit card is being broken up. A manual switch or optical detector may be used to inform the processor that the optimal capacity facility is to be by-passed.
(35) When used in this specification and claims, the terms comprises and comprising and variations thereof mean that the specified features, steps or integers are included. The terms are not to be interpreted to exclude the presence of other features, steps or components.
(36) The features disclosed in the foregoing description, or the following claims, or the accompanying drawings, expressed in their specific forms or in terms of a means for performing the disclosed function, or a method or process for attaining the disclosed result, as appropriate, may, separately, or in any combination of such features, be utilised for realising the invention in diverse forms thereof.