The present invention is concerned with an electrically driven device, for example an electric toothbrush, an electric hair-removal device, or an electric skin-treatment device.
An electric toothbrush with a drive mechanism comprising gearwheels is known for example from DE 39 37 854 A1. The drive mechanism converts a continuous rotary movement of the drive shaft of an electric motor into a reciprocating pivoting of a driven shaft. EP 0 850 027 B1 and EP 1 357 854 B1 disclose further drive mechanisms with gearwheels wherein the mechanisms further generate an additional pivoting of the drive shaft about a swiveling axis. The use of gearwheels may contribute to increased sound emissions.
US 2006/0101598 A1 discloses an electric toothbrush with a scotch yoke mechanism converting a continuous rotary movement of the drive shaft of an electric motor into a reciprocating longitudinal displacement of a driven shaft.
Further, U.S. Pat. No. 5,381,576 describes an electric toothbrush comprising a housing, an electric motor with a drive shaft having a first rotary axis and a drive pin connected to the drive shaft eccentrically with respect to the rotary axis, and a driven shaft having a second rotary axis and mounted in the housing for performing a pivoting about the second rotary axis. The driven shaft is indirectly coupled to the drive pin by a gear mechanism converting a rotary motion of the drive shaft into a reciprocating pivoting of the driven shaft. The gear mechanism comprises an elastically deformable transmission member.
WO 2006/130643 A2 discloses an electrically driven apparatus for applying a cosmetic comprising a mechanism for converting a rotary motion of a drive shaft into a reciprocating pivoting motion of a driven shaft about its longitudinal axis. The mechanism comprises a rod with a longitudinal slot receiving an eccentrically arranged pin. The rod is connected to the driven shaft by means of a further rod.
U.S. Pat. No. 5,822,821 and EP 0 110 327 A2 disclose electrically driven toothbrushes comprising a scotch yoke mechanism for converting a rotary motion of a drive shaft into a reciprocating pivoting motion of a driven shaft about its longitudinal axis.
It is an object of the present disclosure to provide an electrically driven device with reduced sound emissions. It is a further object to provide a less complex electrically driven device with a reduced number of component parts.
In accordance with one aspect there is provided an electrically driven device comprising a housing, an electric motor mounted in the housing and comprising a drive shaft having a first rotary axis, a driven shaft having a second axis and mounted in the housing for performing a movement relative to the housing. The driven shaft may be indirectly coupled to the drive shaft by means of a gear mechanism, for example a gear mechanism comprising a scotch yoke mechanism, i.e. a slotted link mechanism, converting a rotary motion of the drive shaft into a reciprocating pivoting motion of the driven shaft. A drive pin may be connected to the drive shaft eccentrically with respect to the rotary axis. The gear mechanism comprises a cross slider having a sliding support which extends perpendicular to the first rotary axis and which receives the drive pin. The cross slider is guided in the housing by means of at least two pivotable links which may be directly coupled to the housing or indirectly, e.g. via an adapter and/or a spring. The driven shaft is coupled to the cross slider by means of one of the at least two pivotable links thereby converting a rotary motion of the drive shaft into a reciprocating pivoting of the driven shaft. The eccentric drive pin may be directly connected to the drive shaft or may be indirectly connected to the drive shaft, e.g. by means of one or more interposed elements and/or a gear.
The electrically driven device may be a platform for different applications, for example as a toothbrush, as a skin-treatment device, or as a hair-removal device.
Current toothbrush drive systems performing an oscillating pivoting of the cleaning element, e.g. a bristle, are perceived as being too loud. In particular, it is desirable to provide an electrically driven device with sound emissions below 55 dB (A) sound power level, especially at current drive frequency of 83 Hz. An important factor for noise is the form of the motion over time. The velocity is the first derivative of the displacement, the acceleration the second derivative of the motion. Higher accelerations and therefore inertia forces occur if the wave form is not a sine wave or harmonic. These periodic forces translate into bearing reaction forces and thus create an excitation to the structure of the device and this can cause undesired noise of elements oscillating in their natural frequency. Another source of noise is two bodies hitting each other and creating a rattling noise. This occurs for example in cam driven systems.
In accordance with one aspect, a gear mechanism is provided converting a rotary motion of the drive shaft into a reciprocating pivoting of the driven shaft, preferably a sinusoidal movement of the driven shaft or a substantially sinusoidal movement of the driven shaft. This contributes in reducing the noise generated in use of the device.
According to an aspect, the gear mechanism comprises a scotch yoke mechanism with the cross slider being guided in the housing by means of at least two pivotable links. The scotch yoke mechanism of the gear mechanism may convert a continuous rotary motion of the drive shaft into a sinusoidal reciprocating movement of the cross slider. For example, the gear mechanism converts a continuous rotary motion of the drive shaft into a sinusoidal or a substantially sinusoidal reciprocating rotation of the driven shaft. The movement of the cross slider may be a rotational motion which may be close to a linear motion guided by a parallel lever design in the form of a parallelogram by means of the at least two pivotable links. For example, each of the at least two pivotable links is pivotably hinged to a bearing point of the housing, e.g. by means of a bearing pin, and pivotably hinged to a bearing point of the cross slider, e.g. by means of a bearing pin, such that the cross slider is guided to be moveable on a curved track with respect to the housing. The distance between the bearing point of the housing and the bearing point of the cross slider may be identical for each of the pivotable links. The cross slider may have a cylindrical opening defining the sliding support of a sliding block with a long hole provided in the sliding support receiving the drive pin. As an alternative, the drive pin may be directly guided within the sliding support of the cross slider.
According to an aspect of the present disclosure, the driven shaft is one of the bearing points of the housing. In this respect, the rotary axis of the driven shaft may be the axis about which the at least one pivotable link rotates during use of the device. For transmitting the pivoting movement of the link to the driven shaft, the driven shaft may be rotationally constrained to one of the at least two pivotable links and may further be rotatably guided in the housing. Such a design of the electrically driven device provides for a very compact gear mechanism requiring only a few component parts. For example, the number of the component parts of the gear mechanism between the drive pin and the driven shaft is less than ten, preferably seven or less. The reduce number of component parts compared to other known devices does not only decrease the costs of the device due to less component parts required but also has a beneficial effect on the effort and costs for assembly of the device.
The housing may be a single, unitary component part suitable for encasing and/or mounting further component parts of the device. In other embodiments, the housing may comprise different component parts, for example an outer shell, an insert, a chassis and/or a frame. According to one aspect, the housing may comprise a frame having a first bearing sleeve rotatably guiding the driven shaft and a second bearing sleeve rotatably guiding a bearing pin which is the bearing point of the other of the at least two pivotable links. Such a frame may contribute in guiding and supporting the gear mechanism and the driven shaft. In addition or as an alternative, the housing may comprise a motor support and/or an external housing shell.
The gear mechanism of the electrically driven device may be a mate robust preventing tilting of the pivotable links e.g. if each of the at least two pivotable links comprises two lever sections extending parallel to each other. For example, the lever sections of each link may be connected with each other and may each comprise a bearing sleeve engaging the driven shaft and a bearing pin, respectively.
The electrically driven device may further comprise a sliding block having a bearing receiving the drive pin. For example, the sliding block may be axially guided in the sliding support of the cross slider. In other words, the gear mechanism may work similar to the scotch yoke mechanism translating a continuous rotation of the drive pin into a reciprocating pivoting movement of the cross slider and of the driven shaft. As an alternative to the provision of a sliding block within the cross slider, the drive pin may directly engage the sliding support of the cross slider, e.g. having the form of a slotted hole.
The drive pin may be directly fixed, e.g. welded, to the drive shaft of the motor. As an alternative, a further gear mechanism may be interposed between the drive shaft and the drive pin. For example, a pinion may be rotationally constrained to the drive shaft meshing with a ring gear which carries the drive pin. Such an additional gear mechanism may have benefits regarding an adaption of the voltage or the torque of the motor to the individual requirements of the electrically driven device. If the electrically driven device is a toothbrush, it may comprise a standard DC motor. The motor may have a torque of at least 2 mNm, for example 2.5 mNm, at a speed of 4,800 to 7,200 rpm at a voltage of 3 to 4V. This voltage may be supplied by a Li-Ion battery or any other battery combination providing voltages above 3V and low internal resistance. In addition or as an alternative, the motor may be connected to the mains supply.
According to a further aspect, a sealing may be provided between the driven shaft and the housing, e.g. for preventing contamination of the electronic component parts with dirt and/or humidity. For example, the sealing may permit pivoting of the driven shaft with respect to the housing. In this respect, the sealing may comprise a sealing sleeve often elastically deformable material fixed to the driven shaft and fixed to the housing.
In the embodiment depicted in
In the exemplary embodiment depicted in
The drive pin 3 is rotationally guided in a sliding block 5 which may have at least partially a substantially cylindrical outer shape. The sliding block 5 is guided in a sliding support 6 of a cross slider 7. The sliding support 6 may have the form of a cylindrical hole receiving the sliding block 5. Further, the sliding support 6 may be provided with a long hole at its lower side as seen in
The cross slider 7 is supported in the housing, e.g. on motor support 4, by means of a first pivotable link 8 and a second pivotable link 9. The cross slider 7 is connected to the pivotable links 8 and 9 by means of bearing points in the form of bearing pins 10. On the opposite side of the respective pivotable links 8 and 9 further bearing points are provided in the form of a bearing pin 11 for pivotable link 8 and a driven shaft 12 forming the bearing pin for pivotable link 9. In other words, the cross slider 7 is supported by means of the pivotable links 8 and 9 such that the cross slider 7 may swivel about the respective bearing points 11 and 12 on a circular path. Due to the small angle of rotation of the cross slider 7, the movement of the cross slider 7 is close to a longitudinal reciprocating movement.
In the exemplary embodiment depicted in
The pivotable link 8 may be rotatable relative to bearing pin 11 or may be rotationally constrained to bearing pin 11. The pivotable link 9 is rotationally constrained to the driven shaft 12 such that rotation of the pivotable link 9 is directly transmitted to the driven shaft 12 which defines a second rotary axis II.
As shown for example in
In the following, the function of the electrically driven device as depicted in
The gear mechanism between the drive pin 3 and the driven shaft 12 of the exemplary embodiment depicted in
The dimensions and values disclosed herein are not to be understood as being strictly limited to the exact numerical values recited. Instead, unless otherwise specified, each such dimension is intended to mean both the recited value and a functionally equivalent range surrounding that value. For example, a dimension disclosed as “40 mm” is intended to mean “about 40 mm.”
Every document cited herein, including any cross referenced or related patent or application and any patent application or patent to which this application claims priority or benefit thereof, is hereby incorporated herein by reference in its entirety unless expressly excluded or otherwise limited. The citation of any document is not an admission that it is prior art with respect to any invention disclosed or claimed herein or that it alone, or in any combination with any other reference or references, teaches, suggests or discloses any such invention. Further, to the extent that any meaning or definition of a term in this document conflicts with any meaning or definition of the same term in a document incorporated by reference, the meaning or definition assigned to that term in this document shall govern.
While particular embodiments of the present invention have been illustrated and described, it would be obvious to those skilled in the art that various other changes and modifications can be made without departing from the spirit and scope of the invention. It is therefore intended to cover in the appended claims all such changes and modifications that are within the scope of this invention.
Number | Date | Country | Kind |
---|---|---|---|
16191027 | Sep 2016 | EP | regional |
Number | Name | Date | Kind |
---|---|---|---|
3233265 | Hartmann | Feb 1966 | A |
3474795 | Hantman | Oct 1969 | A |
3562566 | Kircher | Feb 1971 | A |
3699952 | Waters | Oct 1972 | A |
4506400 | Klein | Mar 1985 | A |
4628605 | Clowers | Dec 1986 | A |
5283921 | Ng | Feb 1994 | A |
5311633 | Herzog | May 1994 | A |
5381576 | Hwang | Jan 1995 | A |
5689850 | Shekalim | Nov 1997 | A |
5769102 | Zebuhr | Jun 1998 | A |
5822821 | Sham | Oct 1998 | A |
5974615 | Schwarz-hartmann | Nov 1999 | A |
6237178 | Krammer | May 2001 | B1 |
6363565 | Paffrath | Apr 2002 | B1 |
7120960 | Hilscher | Oct 2006 | B2 |
7614107 | Cobabe | Nov 2009 | B2 |
7636976 | Banning | Dec 2009 | B2 |
7810200 | Fujimoto | Oct 2010 | B2 |
7861348 | Chan | Jan 2011 | B2 |
8256055 | Kressner | Sep 2012 | B2 |
8443476 | Hilscher | May 2013 | B2 |
8701235 | Kressner | Apr 2014 | B2 |
8875335 | Kloster | Nov 2014 | B2 |
8943634 | Sokol | Feb 2015 | B2 |
9089390 | Klemm | Jul 2015 | B2 |
20030131427 | Hilscher | Jul 2003 | A1 |
20060027266 | Kim | Feb 2006 | A1 |
20060101598 | Fujimoto | May 2006 | A1 |
20100089414 | Wyatt | Apr 2010 | A1 |
20120284937 | Kloster | Nov 2012 | A1 |
20150173874 | Johnson | Jun 2015 | A1 |
20180087631 | Kramp | Mar 2018 | A1 |
20180087632 | Fritsch | Mar 2018 | A1 |
20180087633 | Fritsch | Mar 2018 | A1 |
20180091018 | Fritsch | Mar 2018 | A1 |
Number | Date | Country |
---|---|---|
3544256 | Jun 1987 | DE |
H09177923 | Jul 1997 | JP |
2001198145 | Jul 2001 | JP |
2013226202 | Nov 2013 | JP |
20080069373 | Jul 2008 | KR |
WO2011077285 | Jun 2011 | WO |
Entry |
---|
PCT/IB2017/055342 International Search Report with written opinion; dated Nov. 3, 2017, 13 pages. |
Number | Date | Country | |
---|---|---|---|
20180091019 A1 | Mar 2018 | US |