EP3631872A1 - Dispositif de type petit appareillage électroménager - Google Patents

Dispositif de type petit appareillage électroménager

Info

Publication number
EP3631872A1
EP3631872A1 EP18729897.1A EP18729897A EP3631872A1 EP 3631872 A1 EP3631872 A1 EP 3631872A1 EP 18729897 A EP18729897 A EP 18729897A EP 3631872 A1 EP3631872 A1 EP 3631872A1
Authority
EP
European Patent Office
Prior art keywords
drive
drive element
unit
small appliance
appliance device
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Pending
Application number
EP18729897.1A
Other languages
German (de)
English (en)
Inventor
Thomas Schiepp
Ren SCHNETZLER
Harald Eckhardt
Markus Laufenberg
Anton Blank
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
ETO Magnetic GmbH
Original Assignee
ETO Magnetic GmbH
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by ETO Magnetic GmbH filed Critical ETO Magnetic GmbH
Publication of EP3631872A1 publication Critical patent/EP3631872A1/fr
Pending legal-status Critical Current

Links

Classifications

    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01FMAGNETS; INDUCTANCES; TRANSFORMERS; SELECTION OF MATERIALS FOR THEIR MAGNETIC PROPERTIES
    • H01F10/00Thin magnetic films, e.g. of one-domain structure
    • H01F10/08Thin magnetic films, e.g. of one-domain structure characterised by magnetic layers
    • H01F10/10Thin magnetic films, e.g. of one-domain structure characterised by magnetic layers characterised by the composition
    • H01F10/12Thin magnetic films, e.g. of one-domain structure characterised by magnetic layers characterised by the composition being metals or alloys
    • H01F10/14Thin magnetic films, e.g. of one-domain structure characterised by magnetic layers characterised by the composition being metals or alloys containing iron or nickel
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61CDENTISTRY; APPARATUS OR METHODS FOR ORAL OR DENTAL HYGIENE
    • A61C17/00Devices for cleaning, polishing, rinsing or drying teeth, teeth cavities or prostheses; Saliva removers; Dental appliances for receiving spittle
    • A61C17/16Power-driven cleaning or polishing devices
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61MDEVICES FOR INTRODUCING MEDIA INTO, OR ONTO, THE BODY; DEVICES FOR TRANSDUCING BODY MEDIA OR FOR TAKING MEDIA FROM THE BODY; DEVICES FOR PRODUCING OR ENDING SLEEP OR STUPOR
    • A61M37/00Other apparatus for introducing media into the body; Percutany, i.e. introducing medicines into the body by diffusion through the skin
    • A61M37/0076Tattooing apparatus
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01FMAGNETS; INDUCTANCES; TRANSFORMERS; SELECTION OF MATERIALS FOR THEIR MAGNETIC PROPERTIES
    • H01F1/00Magnets or magnetic bodies characterised by the magnetic materials therefor; Selection of materials for their magnetic properties
    • H01F1/01Magnets or magnetic bodies characterised by the magnetic materials therefor; Selection of materials for their magnetic properties of inorganic materials
    • H01F1/03Magnets or magnetic bodies characterised by the magnetic materials therefor; Selection of materials for their magnetic properties of inorganic materials characterised by their coercivity
    • H01F1/032Magnets or magnetic bodies characterised by the magnetic materials therefor; Selection of materials for their magnetic properties of inorganic materials characterised by their coercivity of hard-magnetic materials
    • H01F1/04Magnets or magnetic bodies characterised by the magnetic materials therefor; Selection of materials for their magnetic properties of inorganic materials characterised by their coercivity of hard-magnetic materials metals or alloys
    • H01F1/047Alloys characterised by their composition
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01FMAGNETS; INDUCTANCES; TRANSFORMERS; SELECTION OF MATERIALS FOR THEIR MAGNETIC PROPERTIES
    • H01F1/00Magnets or magnetic bodies characterised by the magnetic materials therefor; Selection of materials for their magnetic properties
    • H01F1/01Magnets or magnetic bodies characterised by the magnetic materials therefor; Selection of materials for their magnetic properties of inorganic materials
    • H01F1/03Magnets or magnetic bodies characterised by the magnetic materials therefor; Selection of materials for their magnetic properties of inorganic materials characterised by their coercivity
    • H01F1/032Magnets or magnetic bodies characterised by the magnetic materials therefor; Selection of materials for their magnetic properties of inorganic materials characterised by their coercivity of hard-magnetic materials
    • H01F1/04Magnets or magnetic bodies characterised by the magnetic materials therefor; Selection of materials for their magnetic properties of inorganic materials characterised by their coercivity of hard-magnetic materials metals or alloys
    • H01F1/06Magnets or magnetic bodies characterised by the magnetic materials therefor; Selection of materials for their magnetic properties of inorganic materials characterised by their coercivity of hard-magnetic materials metals or alloys in the form of particles, e.g. powder
    • H01F1/08Magnets or magnetic bodies characterised by the magnetic materials therefor; Selection of materials for their magnetic properties of inorganic materials characterised by their coercivity of hard-magnetic materials metals or alloys in the form of particles, e.g. powder pressed, sintered, or bound together
    • H01F1/083Magnets or magnetic bodies characterised by the magnetic materials therefor; Selection of materials for their magnetic properties of inorganic materials characterised by their coercivity of hard-magnetic materials metals or alloys in the form of particles, e.g. powder pressed, sintered, or bound together in a bonding agent
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02NELECTRIC MACHINES NOT OTHERWISE PROVIDED FOR
    • H02N2/00Electric machines in general using piezoelectric effect, electrostriction or magnetostriction
    • H02N2/0005Electric machines in general using piezoelectric effect, electrostriction or magnetostriction producing non-specific motion; Details common to machines covered by H02N2/02 - H02N2/16
    • H02N2/001Driving devices, e.g. vibrators
    • H02N2/002Driving devices, e.g. vibrators using only longitudinal or radial modes
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02NELECTRIC MACHINES NOT OTHERWISE PROVIDED FOR
    • H02N2/00Electric machines in general using piezoelectric effect, electrostriction or magnetostriction
    • H02N2/02Electric machines in general using piezoelectric effect, electrostriction or magnetostriction producing linear motion, e.g. actuators; Linear positioners ; Linear motors
    • H02N2/06Drive circuits; Control arrangements or methods
    • HELECTRICITY
    • H10SEMICONDUCTOR DEVICES; ELECTRIC SOLID-STATE DEVICES NOT OTHERWISE PROVIDED FOR
    • H10NELECTRIC SOLID-STATE DEVICES NOT OTHERWISE PROVIDED FOR
    • H10N35/00Magnetostrictive devices
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61CDENTISTRY; APPARATUS OR METHODS FOR ORAL OR DENTAL HYGIENE
    • A61C2201/00Material properties
    • A61C2201/007Material properties using shape memory effect
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B26HAND CUTTING TOOLS; CUTTING; SEVERING
    • B26BHAND-HELD CUTTING TOOLS NOT OTHERWISE PROVIDED FOR
    • B26B19/00Clippers or shavers operating with a plurality of cutting edges, e.g. hair clippers, dry shavers
    • B26B19/28Drive layout for hair clippers or dry shavers, e.g. providing for electromotive drive
    • B26B19/282Motors without a rotating central drive shaft, e.g. linear motors

Definitions

  • the invention relates to a small appliance device according to the preamble of claim 1.
  • small appliances especially for body treatment and / or
  • the object of the invention is in particular to provide a generic device with improved properties in terms of handling.
  • an object of the invention is, in particular, to achieve a high level of user comfort.
  • an object of the invention is, in particular, to achieve advantageous properties with regard to variability. The object is achieved by the features of claim 1, while advantageous embodiments and modifications of the invention can be taken from the dependent claims.
  • the invention is based on a small appliance device, preferably a small electrical appliance device, preferably a small electrical appliance, in particular a personal care device and / or a body treatment device, for example a shaver device, a beard trimmer, a hair trimmer, an epilator device, a tattoo machine device, a piercing device, a piercing device, a toothbrush device or the like, with at least one drive unit having at least one drive element. It is proposed that the drive element be at least one magnetic
  • a small appliance device with an advantageous, in particular precise-working and / or precisely adjustable and / or simple and / or precisely controllable, drive can be provided.
  • a drive with a large spectrum with regard to possible movement speeds and / or movement frequencies and / or with respect to an amount of movement can be achieved.
  • a high acceleration of moving components and / or an advantageous development of force can be achieved, whereby, for example hair can be cut and / or removed efficiently and / or reliably and / or precisely and / or painlessly, in particular if used appropriately.
  • short field pulses that are easy to generate can be used for the reliable generation of spontaneously occurring and / or very fast movements.
  • advantageously a low noise of a drive can be achieved.
  • Single-pulse operation can be generated inexpensively and / or easily and / or reliably, in particular a pulse-like movement. Furthermore, a small device can be provided with a pulse-like drive, which in particular allows adaptation to a wide variety of application areas and / or areas of application.
  • a jerky and / or spontaneously occurring advantageously rectangular rather than sinusoidal movement can advantageously be produced.
  • a small appliance device is in particular a, in particular
  • a small device in particular a small electrical appliance, which is preferably intended for use in a, for example, with a hand, held state provided by a user understood.
  • the small appliance device is a small electric appliance device and / or a small household appliance device, in particular as a
  • Household small electrical appliance device formed.
  • the housing small electrical appliance device formed.
  • Small appliance device include the entire small appliance and / or be designed as this.
  • the small device is advantageous as a small electrical appliance and / or as a
  • Household small appliance in particular as a household small electrical appliance formed.
  • the small appliance is portable and / or by a single person
  • the small appliance has a total mass of at most 20 kg, advantageously not more than 10 kg, particularly advantageously not more than 5 kg and preferably not more than 2 kg, in particular not more than 1 kg or not more than 500 g.
  • the small appliance device is for connection to a mains voltage, preferably an AC mains voltage, in particular with a different mains voltage from a high voltage, advantageously with a
  • Mains voltage of a low-voltage network for example, 100 V or 1 10 V or 120 V or 220 V or 230 V or 240 V or any other, especially common, voltage value, provided as a supply voltage, both a connection to a shop, such as an internal energy storage .
  • the small appliance device is designed for example as a portable battery-powered small appliance device, as well as, in particular alternatively or additionally, a connection to a direct power supply of the small appliance device, preferably if the small appliance device as a wired
  • the drive unit is provided for generating at least one, in particular repetitive and / or pulsed and / or pulse-like, drive movement.
  • at least one drive parameter of the drive unit can be predetermined and / or selected and / or controlled.
  • the drive parameter may, for example, a
  • the drive unit can be connected to at least one driven unit of the small appliance device and / or the small appliance and / or connected.
  • the driven unit can in particular at least one
  • Insertion tool such as a shaving head and / or a cutting blade and / or an epilation, in particular an epilation roller, and / or a needle and / or a brush head or the like.
  • the drive element is provided to at least one
  • the actuating movement corresponds to the drive movement.
  • the actuating movement and the drive movement preferably run parallel to one another and / or along a common axis.
  • the drive unit has at least one translation unit which is provided for a conversion of the actuating movement in the drive movement, wherein the translation unit in particular at least one transmission element such as a gear, a friction wheel, a lever, a slide, a transmission, a Cam or the like.
  • the drive unit is free from an eccentric and / or components for converting a rotational movement into a linear movement.
  • the actuating movement is a linear movement, in particular along an axis, in particular along the longitudinal axis of the drive element.
  • the drive element is a magnetically deformable drive element.
  • the drive element is in one piece and / or formed as a solid body. But it is also conceivable that the
  • Triggering element in particular at least in sections, as a hollow body, for example as a hollow cylinder, and / or is designed as a solid body with recesses and / or cavities or the like.
  • the triggering element is at least a large part, in particular completely, formed from the shape-changing material. Basically, of course, it is conceivable that the
  • actuating elements can be arranged next to one another and / or behind one another and / or operatively connected in series and / or in parallel in order to adapt a total stroke and / or a total actuating force.
  • actuating elements Preferably that is
  • Drive element in particular at least sectionwise, elongated and / or pin-shaped and / or tappet-like and / or cuboidal and / or cylindrical.
  • the drive element in particular along its
  • the longitudinal axis of the drive element is at least substantially parallel to a main extension direction of the drive element or at least substantially perpendicular to this arranged.
  • the longitudinal axis of the drive element is at least substantially parallel to a main extension direction of the drive element or at least substantially perpendicular to this arranged.
  • the longitudinal axis of the drive element is at least substantially parallel to a main extension direction of the drive element or at least substantially perpendicular to this arranged.
  • Drive element arranged at least substantially parallel or at least substantially perpendicular to a direction of movement of the actuating movement.
  • a "main direction of extension" of an object should be understood to mean, in particular, a direction which runs parallel to a longest edge of a smallest imaginary cuboid which just completely encloses the object be understood to a reference direction, in particular in a plane, wherein the direction relative to the reference direction is a deviation
  • an object has an "at least substantially constant cross section", that for any arbitrary first cross section of the object along at least one direction and any second cross section of the object along the direction of a minimum surface area of a differential area, which is formed when superimposing the cross sections, a maximum of 20%, advantageously not more than 10% and most preferably not more than 5% of the area of the larger of the two cross sections.
  • the drive element is preferably provided to convert at least one external stimulus, in particular at least one magnetic signal, into the actuation movement.
  • the drive element is provided in dependence on the external stimulus its shape, in particular by means of at least one contraction and / or by means of at least one expansion, preferably in one direction at least in the Substantially parallel to the longitudinal axis of the drive element to change, preferably while keeping constant a volume of the drive element.
  • generation of the actuating movement involves a change in length of the drive element, in particular along its longitudinal axis, by at least 1.5%, advantageously by at least 2%, particularly advantageously by at least 3% and preferably by at least 4%, with even greater changes in length, for example by at least 5% or at least 6%, are conceivable.
  • a, in particular magnetically induced, shape change of the drive element, in particular for generating the actuating movement a, in particular in an actuating direction, advantageously at least substantially parallel to the longitudinal axis of the drive element, acting, force development of at least 1 N, preferably of at least 1, 5 N, more preferably of at least 2 N per 1 mm 2 cross-sectional area of the drive element, in particular a cross-section perpendicular to the longitudinal axis of the drive element.
  • the magnetically deformable material could for example be a magnetostrictive material.
  • the magnetically deformable material is advantageously a magnetically active and / or active shape memory material, in particular a magnetic shape memory material, and particularly preferably a magnetic shape memory material
  • the magnetically deformable material is monocrystalline.
  • the magnetically deformable material is monocrystalline.
  • the triggering element is composed of several, in particular of some, for example, two or three or four or five individual single crystals. As a result, in particular an advantageously large lifting effect can be achieved.
  • the magnetically deformable material is polycrystalline.
  • the shape-changing material contains nickel, manganese and gallium.
  • the shape-changing material is a nickel-manganese-gallium alloy.
  • the magnetically deformable material preferably based on a weight, contains at least 20%, advantageously at least 30%, particularly advantageously at least 40% and preferably at least 45% and / or at most 80%, advantageously at most 70%, more preferably at most 60% and preferably at most 55% nickel.
  • the magnetically deformable material preferably based on a weight, in particular at least 10%, advantageously at least 15% and particularly advantageously at least 20% and / or at most 50%, advantageously at most 40%, particularly advantageously at most 35% and preferably at most 30% Manganese.
  • the magnetically deformable material preferably based on a weight, in particular at least 10%, advantageously at least 15% and particularly advantageously at least 20% and / or at most 50%, advantageously at most 40%, particularly advantageously at most 35% and preferably at most 30% Gallium.
  • a particularly easily achievable deformability can be realized with an advantageously large moving distance.
  • the shape-changing material could also be an iron-palladium alloy and / or an iron-palladium-containing alloy.
  • form variable material may also be formed as a foam and / or as a composite structure and / or as granules and / or as a porous material, wherein in particular in the case of a composite material is conceivable that nickel, manganese and / or gallium components, preferably NiMnGa pieces and / or crystallites, may be embedded in a matrix. High reliability and / or low cost manufacturability can
  • the drive element is formed as a solid body.
  • Drive unit comprises at least one magnet unit, which is provided for generating at least one time-variable shape changing magnetic field for the drive element.
  • the magnet unit is controllable.
  • the magnet unit is provided to generate in dependence on at least one drive signal, in particular of a time-varying actuation current and / or of a time-varying actuation voltage, at least one, in particular corresponding, time-varying magnetic field.
  • the magnet unit has at least one magnetic element, in particular an inductive magnetic element,
  • the small device device has at least one control and / or regulating unit, which is used to control the Magnet unit, in particular in response to a, for example, selectable by a user, operating mode is provided. It is conceivable that the control and / or regulating unit at least one, in particular wireless, interface to
  • operating mode dependent and / or operating mode defining parameters are obtainable from the external database.
  • application-specific drive parameters such as a nature of magnetization pulses, an actuation force, an actuation movement, PID values for controlling magnetization and / or movement of the drive element and the like, can be stored and / or stored in the control unit and / or or from the
  • the magnet unit is provided, in at least one operating state, in particular in a pulse operating state, individual, preferably rectangular and / or sawtooth and / or triangular and / or bell-shaped, magnetic field pulses, advantageously in selectable and / or by a pulse operating state, individual, preferably rectangular and / or sawtooth and / or triangular and / or bell-shaped, magnetic field pulses, advantageously in selectable and / or by a pulse operating state, individual, preferably rectangular and / or sawtooth and / or triangular and / or bell-shaped, magnetic field pulses, advantageously in selectable and / or by a pulse operating state, individual, preferably rectangular and / or sawtooth and / or triangular and / or bell-shaped, magnetic field pulses, advantageously in selectable and / or by a pulse operating state, individual, preferably rectangular and / or sawtooth and / or triangular and / or bell-shaped, magnetic field pulses, advantageously in selectable and /
  • the drive unit is operable in a single-pulse mode, in which in particular a single cutting movement can be triggered by the user, for example by pressing a button.
  • any repetition rates for the drive movement are conceivable, in particular also very slow repetition rates such as less than 100 Hz, less than 50 Hz, less than 20 Hz or even less than 10 Hz.
  • even repetition rates of less than 1 Hz are conceivable.
  • the drive element allows any lowering of a
  • Movement frequency wherein a movement speed and / or a
  • Motion acceleration nevertheless assume a high value and in particular do not have to be lowered with the frequency.
  • this can be a reliable function of a small device, in particular a reliable generation of a Cutting, stabbing, shearing and / or tearing movement, advantageously, without a number of corresponding movements per time must be increased.
  • the magnet unit has at least one coil element which at least partially surrounds the drive element, in particular its longitudinal axis.
  • the coil element completely surrounds the drive element in a view along the longitudinal axis of the drive element.
  • a coil axis of the coil element corresponds to the longitudinal axis of the
  • the drive element is arranged within the coil element.
  • the coil element in particular along the same
  • the coil element in at least one operating state, in particular during actuation and / or generation of the actuating movement, the coil element generates a magnetic field whose field lines are arranged at least in sections, in particular in a region arranged within the coil element and within the drive element, which advantageously extends over at least 50%.
  • the drive unit in particular in this case, free of one
  • the coil element is designed as an air coil.
  • a high space efficiency in particular with regard to an arrangement of a coil and a drive element, can advantageously be achieved.
  • a short reaction time and / or a spontaneous response can be achieved.
  • the magnet unit has at least one
  • the magnet unit has at least one magnetic circuit which is provided for introducing the shape changing magnetic field into the drive element.
  • the magnet unit to generate the Shape change magnetic field is provided such that its field lines, in particular in a region of the drive element and / or within the
  • Drive elements at least substantially perpendicular or alternatively at least substantially parallel to the longitudinal axis of the drive element extend. Preferably, this can optionally produce a contraction or expansion of the drive element.
  • a coil element can have at least one wire coil and / or at least one tape reel, in particular with at least one conductor made of copper and / or of aluminum and / or of another highly conductive metal, and / or be formed as such.
  • the coil element is formed low impedance, which due to a low inductance advantageously within a short time, a magnetic field can be removed.
  • the shape change magnetic field is generated in particular by means of an energization of the coil element.
  • a single energizing time of the coil element is at most 20 ms, particularly advantageously at most 10 ms, preferably at most 5 ms and particularly preferably at most 2 ms.
  • Magnet unit is provided for triggering a contraction of the drive element parallel to the actuating direction.
  • the actuation direction is arranged at least substantially parallel to the longitudinal axis of the drive element.
  • the drive element is biased in a non-actuated state in an expanded state and / or along its longitudinal axis with a train.
  • the actuating movement is generated by means of the contraction of the drive element. This can provide advantageous properties in terms of a
  • Small appliance device comprises a reset unit, which is intended to act on the drive element with a restoring force.
  • the reset unit is part of the drive unit.
  • the return unit and the drive unit are at least partially formed in one piece.
  • the return unit and the drive unit are formed separately from each other.
  • the restoring force acts on the generation of the Actuating movement counteracted generated force.
  • the restoring force acts in a direction at least substantially parallel to the longitudinal axis of the
  • the restoring force counteracts expansion or contraction of the drive element in a direction perpendicular to the longitudinal axis of the drive element.
  • the return unit is provided for a reverse deformation of the drive element, in particular after its deformation for generating the actuating movement.
  • Rebuild one in particular the actuating movement opposing, generate further actuation movement.
  • a controlled movement generation can advantageously be achieved.
  • the reset unit is provided to counteract a contraction of the drive element parallel to the actuation direction.
  • the restoring unit acts on the drive element with at least one tensile force, in particular at least substantially parallel to the longitudinal axis of the drive element.
  • the actuating movement by means of a contraction of the drive element and a further actuation movement by means of a subsequent, in particular gurverformenden, expansion of the drive element preferably in each case at least substantially parallel to the longitudinal axis of the
  • This can advantageously be a jerky movement and / or a very high acceleration, especially at the same time a compact
  • the return unit is provided to an expansion of the drive element parallel to the actuation direction
  • the restoring unit acts on the drive element with a pressure force, in particular at least substantially parallel to the longitudinal axis of the drive element.
  • the reset unit has at least one return element with a degressive spring characteristic.
  • a high energy content of a restoring element and / or an effective return can be achieved.
  • the reset unit in particular alternatively or additionally, at least one return element having a progressive and / or at least one return element having a linear spring characteristic.
  • a restoring element for example, a spring element, in particular a spiral spring element, for example a compression spring and / or a tension spring and / or a leaf spring and / or a
  • Disc spring and / or a torsion spring and / or one in particular suitable for achieving a desired spring characteristic bent, other spring element or the like in question.
  • air springs and / or magnetic springs and / or other suitable return elements are conceivable and in particular any combinations of suitable spring elements.
  • the return element is provided for generating a compressive force and / or a tensile force as a restoring force.
  • a reverse deformation of the drive element is produced by means of at least one bending and / or shearing and / or torsion.
  • the reset unit has at least one force transducer which is provided for a translation of a restoring force and / or a change in the direction thereof.
  • a tension spring for acting on the drive element with a pressure force and / or a compression spring for acting on the drive element can be used with a tensile force.
  • a plurality of return elements may be arranged such that they together generate a restoring force.
  • the reset unit at least one
  • Magnetic element in particular a permanent magnet element and / or a
  • the reset unit has at least one magnetic spring, which comprises the magnetic element.
  • the reset unit comprises a combination of at least one magnetic spring with at least one mechanical spring. This can advantageously a spring characteristic
  • Driving elements and in at least a second stable expansion state, in particular an expansion at least substantially parallel to the longitudinal axis of the drive element, can be transferred.
  • End positions of the drive unit correspond.
  • an expansion of the drive element moves in an operation between the first stable expansion state and the second stable expansion state.
  • the first stable expansion state and / or the second stable expansion state preferably all expansion states, stable without a supply of energy.
  • the expansion states are generated and / or generated by utilizing a hysteresis of the magnetically deformable material.
  • a high energy efficiency can advantageously be achieved.
  • a high variability in terms of realizable states of motion and rest positions can be achieved.
  • the small device device has at least one holding unit, the one to a
  • Expansion state is provided, and having at least one holding magnet element.
  • the holding magnetic element may, for example, at least one
  • the holding unit comprises at least one
  • Biasing element that is provided for generating at least one biasing force, in particular a compressive force and / or a tensile force, for the drive element, which preferably acts at least substantially parallel to its longitudinal axis.
  • the holding unit in particular the biasing element, may be formed at least partially in one piece with the return unit, in particular with the return element.
  • the holding magnet element is provided for generating at least one permanent magnetic field applied to the drive element, which is superimposed in particular on the shape changing magnetic field and this
  • the holding magnet element at least one
  • magnetizable permanent magnet which may be formed, for example, at least partially made of an aluminum-nickel-cobalt alloy.
  • the magnetizable permanent magnet is an AINiCo magnet.
  • the magnet unit is provided to the ummagnetisierbaren
  • the stable expansion states can be stabilized.
  • an advantageous structural simplicity can be achieved.
  • the small appliance device at least a second
  • Drive unit which is arranged antagonistic to the drive unit.
  • the second drive unit has at least one second drive element.
  • the drive unit and the second drive unit are arranged such that an expansion of the drive element, a compression of the second
  • Actuator causes and preferably reversed.
  • the drive units can be connected via at least one force transducer.
  • the drive element and the second drive element act on opposite sides of a rocker arm.
  • the drive unit and the second drive unit are arranged opposite one another and / or coaxially.
  • a longitudinal axis of the second drive element corresponds to the longitudinal axis of the first drive element.
  • the drive unit and the second drive unit jointly form a bistable actuator, for example a push-push actuator or a pull-pull actuator. This can advantageously be provided a precisely controllable actuator.
  • end positions can be approached quickly and / or reliably.
  • the second drive element has at least one magnetically deformable material.
  • the second drive element is designed as a magnetically deformable drive element.
  • the drive element and the second drive element are at least substantially identical and / or in particular mirror-symmetrical to one another.
  • the drive unit and the second drive unit can at least substantially be identical and / or in particular mirror-symmetrical to each other.
  • the second drive unit forms the holding unit at least partially.
  • the drive unit and the second drive unit stabilize each other, in particular with regard to
  • Responsiveness can be provided.
  • advantageously a bistability of end positions can be achieved.
  • the small appliance device at least one
  • Reluctance unit which is provided for generating a supporting driving force and / or a supporting drive movement.
  • the drive unit is designed as a hybrid drive unit, in particular as an MSM reluctance hybrid drive unit.
  • the reluctance unit is a part of
  • the reluctance unit has at least one reluctance drive element which is used to generate the assisting drive force and / or the assistive drive movement under the effect of the shape changing magnetic field
  • Magnet unit is provided. In this way, advantageously, an actuating force and / or an actuating movement can be variably adjusted.
  • the drive unit has at least one bearing element for the drive element, which at least partially integral with the
  • Reluctance unit is formed.
  • the bearing element forms the
  • the bearing element is designed as an anchor element, which is connected to the drive element and which forms the reluctance drive element.
  • the bearing element and / or the reluctance drive element is at least partially made of one
  • Drive unit has at least one further drive element which is connected in series with respect to a drive effect with the drive element and whose longitudinal axis is different from a longitudinal axis of the drive element.
  • the further drive element is designed as a magnetically deformable drive element.
  • the further drive element has at least one magnetically deformable material.
  • the drive element and the further drive element are at least substantially identical to each other.
  • the drive element and the further drive element are arranged side by side, in particular in alignment.
  • the drive unit has at least one Hubübertragungselement, which is provided for a coupling, in particular an at least partial addition, one of the drive element and a hub generated by the further drive element.
  • Hubenedtragungselement connected to a front end side of the drive element and with a rear end face of the further drive element.
  • the Hubübertragungselement is step-shaped.
  • the drive element and the further drive element are advantageously arranged in a common magnetization region.
  • the magnet unit is provided to the
  • Form change magnetic field to provide as a common shape change magnetic field for the drive element and the further drive element.
  • drive elements are assigned to different magnet units, for example, to be able to precisely set a total stroke.
  • the drive unit may have any desired number of drive elements coupled in such a way, which may in particular be designed to be at least substantially identical or different to one another. In this way, advantageously, a large stroke can be achieved with a compact design at the same time.
  • the small appliance device at least one
  • Power supply unit having at least one energy storage, in particular at least one capacitor and / or at least one battery, in particular a lithium-ion battery having.
  • the energy supply unit can have an interface for connection to the mains voltage, for example, to charge the energy store and / or to operate the drive unit.
  • the power supply unit is a cable-free power supply of
  • the small appliance as a razor, a beard trimmer, a
  • Hair clipper, an epilator, a tattoo machine, a puncture device, a piercing device, an electric toothbrush or the like may be formed.
  • the small device may be a combination device, which combines, for example, at least two of the devices described or their functionalities, such as a combined hair and beard trimmer, a razor with additional beard trimmer, an epilator with additional shaver, a combined tattooing and puncturing device or the like.
  • the small appliance device according to the invention and / or the small appliance according to the invention for personal care and / or body treatment, for example for shaving, hair cutting, beard trimming, epilation, tattooing, piercing, tooth cleaning or the like.
  • a high degree of user comfort and / or advantageous handling can be achieved.
  • the invention comprises a method with at least one small device according to the invention and / or with at least one small appliance according to the invention, wherein at least one personal care, for example shaving and / or hair cutting and / or epilation and / or cleaning or the like, and / or at least a body treatment such as tattooing and / or piercing and / or an especially piercing, skin treatment or the like is performed.
  • at least one personal care for example shaving and / or hair cutting and / or epilation and / or cleaning or the like
  • / or at least a body treatment such as tattooing and / or piercing and / or an especially piercing, skin treatment or the like
  • a high variability with regard to adaptation to an application and / or high comfort and / or high precision of care and / or treatment can be achieved by a corresponding method.
  • the invention comprises a method with at least one small device according to the invention and / or with at least one small device according to the invention, wherein at least one movement
  • the invention comprises a method for producing a small appliance device according to the invention.
  • the small appliance device according to the invention the small appliance according to the invention and the method according to the invention are not intended to be the same as those described above
  • Fig. 1 a small appliance with a small appliance device in a schematic
  • Fig. 2 shows a part of the small appliance device with a drive unit of
  • Fig. 3 are schematic representations of alternative reset units for the
  • Drive unit, 4 shows a first alternative magnet unit for the drive unit in a perspective view
  • FIG. 5 shows a second alternative magnet unit for the drive unit in a schematic sectional view
  • Fig. 6 shows a first alternative small appliance device in a schematic
  • Fig. 7 shows a second alternative small appliance device in a schematic
  • Fig. 8 shows a third alternative small appliance device in a schematic
  • FIG. 1 1 shows a fifth alternative small appliance device in a schematic
  • Fig. 12 is a sixth alternative small appliance device in a schematic
  • FIG. 14 is a perspective view of a first alternative small appliance
  • FIG. 15 is a perspective view of a second alternative small appliance
  • FIG. 14 is a perspective view of a first alternative small appliance
  • FIG. 15 is a perspective view of a second alternative small appliance
  • FIG. 14 is a perspective view of a first alternative small appliance
  • FIG. 15 is a perspective view of a second alternative small appliance
  • FIG. 15 is a perspective view of a second alternative small appliance
  • FIG. 1 shows a small appliance 54a with a small appliance device 10a in a schematic plan view.
  • the small appliance 54 a is a
  • the small appliance 54a could be embodied as any other small personal care device and / or small body treatment device.
  • the small appliance 54a may be a beard trimmer, a hair trimmer, an epilator, a tattoo machine, a puncher, a piercing device, an electric toothbrush, or the like. Furthermore, it is conceivable that the small appliance 54a a Combi device that has functions of multiple devices.
  • the small appliance device 10a is designed in the present case as a shaver device, but could be formed in any other way analogous to the small appliance 54a.
  • the small appliance device 10a may be any small electrical appliance device and / or small household appliance device and / or household small electrical appliance device.
  • the small appliance 54a and / or the small appliance device 10a can be used for personal care and / or body treatment. Furthermore, a method can be carried out with the small appliance 54a and / or with the small appliance device 10a, wherein at least one body care operation and / or at least one body treatment is carried out.
  • the small appliance device 10a has a power supply unit 50a with at least one energy store 52a.
  • the energy storage 52a is designed as a battery, in particular as a lithium-ion battery.
  • the energy storage 52a could alternatively also at least one supercapacitor, at least one lithium-polymer battery, at least one capacitor or any other
  • the energy supply unit 50a comprises at least one in the present case
  • Interface 56a for connection to a supply network, in particular to a
  • the small appliance device 10a is supplied with energy directly via the interface 56a.
  • the small appliance 54a may be designed as a small battery pack or as a small appliance.
  • the small appliance device 10a has at least one insertion tool 58a.
  • the insert tool 58a is formed as a combination of shear blades.
  • the insert tool 58a is formed as a combination of shear blades.
  • FIG. 2 shows a part of the small appliance device 10a in a schematic sectional representation.
  • the small appliance device 10a has a drive unit 12a.
  • the drive unit 12a is provided for driving the insertion tool 58a.
  • the drive unit 12a is for generating at least one drive movement and advantageously provided for their transfer to the insert tool 58a.
  • the insert tool 58a and its connection to the drive unit 12a are shown here only schematically in FIG. In particular, a movement of the insert tool 58a can be deflected and / or translated in comparison to a directly generated movement of the drive unit 12a, in particular using at least one corresponding gear, at least one force converter, at least one transmission element and the like.
  • the drive unit 12a is provided for driving a cutter blade of the insertion tool 58a, while another shear blade of the insertion tool 58a, for example relative to a housing, remains at rest, so that the shear blades move relative to one another.
  • the drive unit 12a moves a plurality of shear blades, in particular in opposite directions, relative to a housing and / or relative to each other.
  • the drive unit 12a is provided for generating a repetitive and / or pulsed and / or pulse-like drive movement.
  • the drive unit 12a is provided to be different depending on at least one, in particular selectable by a user, operating condition
  • Drive movements that differ, for example, in terms of a repetition rate and / or an amplitude and / or a pulse pattern or the like to generate.
  • a driving force and / or a movement speed of the shear blades of the insertion tool 58a and / or the amplitude can be selected by a user. It is also conceivable that the
  • Drive unit 12a is operable in a single-pulse mode, in which in particular a single cutting movement can be triggered by the user, for example by pressing a button.
  • any repetition rates for the drive movement are conceivable, in particular also very slow repetition rates such as less than 100 Hz, less than 50 Hz, less than 20 Hz or even less than 10 Hz.
  • even repetition rates of less than 1 Hz are conceivable.
  • a Einzepimpuls aim and / or a single pulse energy is independent of the advantageous
  • the drive unit 12a has at least one drive element 14a.
  • Drive element 14a has at least one magnetically deformable material 16a on.
  • the drive element 14a is designed as a magnetically deformable drive element.
  • the drive element 14a is formed pin-shaped.
  • the drive element 14a has an at least substantially rectangular or square cross-section.
  • the drive element 14a has a constant cross section along its longitudinal axis 48a.
  • the drive element 14a is formed as a solid body.
  • the drive element 14a may be formed at least in sections as a hollow body.
  • the drive element 14a is provided for, by at least one magnetically induced change in shape, an actuating movement in at least one
  • Actuation direction 20a to produce The actuating movement can correspond to the drive movement or be converted into this, for example using mentioned conversion and / or translation.
  • the actuating movement in the present case corresponds to a change in length of the drive element 14a along its longitudinal axis 48a.
  • the actuating direction 20a is arranged parallel to the longitudinal axis 48a of the drive element 14a.
  • the longitudinal axis 48a of the drive element 14a is arranged parallel to its main extension direction 60a.
  • the magnetically deformable material 16a is a magnetic one
  • the magnetically deformable material 16a is a shape memory magnetic alloy. In principle, however, it is also conceivable that the magnetically deformable material 16a is a magnetostrictive material.
  • the magnetically deformable material 16a is monocrystalline in the present case.
  • the drive element 14a is formed as a single crystal of the magnetically deformable material 38a.
  • the magnetically deformable material 16a contains nickel, manganese and gallium.
  • the magnetically deformable material 16a is a nickel-manganese gallium shape memory alloy. In the present case, this is magnetic
  • variable-shape material 16a based on a weight, between 45% and 55% nickel, between 20% and 30% manganese and between 20% and 30% gallium, wherein, as mentioned above, other compositions are also conceivable.
  • the drive unit 12a has a magnet unit 18a, which is used to generate at least one temporally variable shape change magnetic field for the
  • Drive element 14a is provided.
  • the shape change magnetic field is applied to the drive element 14a when actuated.
  • the shape changing magnetic field causes a magnetic shape change of the driving member 14a.
  • the magnet unit 18a is controllable, for example by means of electrical pulses. in the
  • the small appliance device 10a has a control and regulating unit (not shown), which is provided for controlling the magnet unit 18a, for example as a function of an operating state that can be selected, in particular by a user.
  • the control and regulating unit is intended to regulate an actuating movement generated by the drive element 14a, for example in FIG.
  • the magnet unit 18a has at least one coil element 21a.
  • the coil element 21 a is formed as a wire coil.
  • the coil element 21 a surrounds the
  • the coil element 21 a completely surrounds the drive element 14a and / or its longitudinal axis 48a in a viewing along the longitudinal axis 48a of the drive element 14a.
  • a coil axis 64a of the coil element 21a corresponds to the longitudinal axis 48a of the drive element 14a.
  • the coil element 21 a is wound such that its turns around the
  • Drive element 14a run around. The drive element 14a is within the
  • Coil element 21 a arranged.
  • the coil element 21 a is provided to generate the shape changing magnetic field.
  • field lines of the shape changing magnetic field extend in a region of the drive element 14a,
  • the magnet unit 18a is provided for triggering a contraction of the driving member 14a in parallel to the operating direction 20a.
  • the drive element 14a shortens in response to a field pulse of
  • Shape change magnetic field out which the drive element 14a in particular penetrated parallel to its longitudinal axis 48a.
  • Form change magnetic field is generated by means of short-term current supply, advantageously for at most 10 ms, particularly advantageously for at most 5 ms and preferably for at most 2 ms or for even shorter times, of the coil element 21a.
  • Shape change magnetic field also conceivable that the drive element 14a is disposed outside of the coil member 21a and the magnet unit 18a has correspondingly formed Magnetleitiata.
  • the magnet unit 18a has a plurality of coil elements 21 a, which may be at least substantially identical or different and / or connected in parallel and / or in series.
  • the small appliance device 10a has a reset unit 22a, which is provided to apply a restoring force to the drive element 14a.
  • the restoring force is provided for re-deformation of the drive element 14a.
  • the reset unit 22a is provided to counteract a contraction of the drive element 14a parallel to the actuation direction 20a.
  • the drive element 14a is repeatedly deformed, in particular shortened, and re-deformed, in particular expanded,
  • Shape change magnetic field generates the restoring force in the present case, a further actuation movement in a direction opposite to the direction of actuation 20a direction.
  • the drive unit 12a thus generates a reciprocating motion whose amplitude, repetition rate, speed and / or acceleration can be set by suitably selecting a temporal behavior of the shape changing magnetic field, in particular suitable field pulses.
  • the reset unit 22a has at least one return element 24a.
  • Reset element 24a may be formed, for example, as a mechanical spring.
  • the return element 24a is designed approximately as a compression spring, in particular as a spiral spring.
  • the drive element 14a is within the
  • Return element 24a arranged.
  • the return element 24a is connected to a first bearing element 66a and to a second bearing element 68a.
  • Bearing elements 66a, 68a are each having one, in particular perpendicular to the Longitudinal axis 48a of the drive member 14a disposed end face 70a, 72a of the drive member 14a connected.
  • the first bearing element 66a is fixed to the housing, while upon actuation of the drive element 14a, the second
  • Bearing element 68a is moved by the actuating movement relative to a housing of the small device 54a.
  • the drive element 14a Upon actuation, the drive element 14a is shortened against the restoring force along its longitudinal axis 48a.
  • the return element 24a stretches the drive element 14a along its longitudinal axis 48a, thereby deforming it.
  • the small appliance device 10a has in the present case a control and / or regulating unit 78a.
  • the small device 10 a has a control unit 81 a, which is an input from
  • the operating unit 81a can comprise an on-off switch and / or off-switch, and advantageously at least one selector switch for selecting operating modes. It is also conceivable for the operating unit 81a to be a display, in particular a touch display, and / or another input and / or output means for inputting and / or outputting information, such as status information, charge state information, operating state information, a time of day , one
  • the small appliance device 10a has at least one data interface, in particular for a wireless data connection, which is provided in particular for connection to an external database. For example, about such
  • Operating conditions are queried.
  • a user can be offered a connection to the external database by means of the operating unit 81 a, for example to supplement an operating mode spectrum.
  • the latter can then, for example, obtain special operating modes from the external database, which adapt operating modes to specific application parameters such as, for example, a hair color, a hair thickness, a hair length, a skin color, age and / or gender of the user or of a patient and / or customer and / or treatment recipient and / or application receiver or the like
  • the operating unit 81 a with the control and / or regulating unit 78a connected.
  • the control and / or regulating unit 78a is provided for driving the magnet unit 18a, in particular as a function of a selected operating mode.
  • the control and / or regulating unit 78a is provided to regulate a movement of the insertion tool 58a. For example, a current through the coil element 21 a for generating the
  • Shape change magnetic field and / or its time course are regulated in this way.
  • FIG. 3 shows schematic representations of alternative restoring units 22.2a-22.5a for the drive unit 12a.
  • the concepts disclosed in connection with FIG. 3 can be used instead of the resetting unit 22a shown in FIG.
  • restoring units are conceivable in an analogous manner, which generate a tensile force and / or suitable torsional forces and / or shear forces instead of a compressive force which causes a return of the drive element 14a.
  • any combinations are conceivable, for example, different return elements, for example, to selectively influence a spring characteristic.
  • the reset unit 22.2a of FIG. 3a has a return element 24.2a
  • the reset unit 22a has, in the example of FIG. 3, at least one magnetic element 26a.
  • Magnetic element 26a is formed in the present case as a permanent magnet.
  • the magnetic element 26a is a part of the return element 24.2a.
  • the return element 24.2a can basically be designed such that it has a nonlinear spring characteristic.
  • the return element 24.2a has a degressive
  • the restoring element 24.2a can be designed as any desired magnetic spring and be arranged, for example, on at least one end face 70a, 72a of the drive element 14a. It is also conceivable that the return element 24.2a, the drive element 14a at least partially or completely surrounds, in particular in a view along the longitudinal axis 48 a of
  • the restoring units 22.3a, 22.4a of Figures 3b and 3c have return elements 24.3a, 74.3a, 24.4a, 74.4a, which are formed as curved elements, for example as leaf springs and / or as bent spring wires or the like.
  • return elements 24.3a, 74.3a, 24.4a, 74.4a which are formed as curved elements, for example as leaf springs and / or as bent spring wires or the like.
  • the reset unit 22.5a of FIG. 3d has a restoring element 24.5a, which is arranged on an end face 72a of the drive element 14a.
  • the drive element 14a is arranged outside the return element 24.5a.
  • the return element 24.5a may be formed, for example, as a tension spring.
  • a restoring tensile force can be generated for the drive element 14a by means of the return element 24.5a.
  • FIG. 4 shows a first alternative magnet unit 18.2a for the drive unit 12a in a perspective view.
  • the first alternative magnet unit 18.2a has a first alternative coil element 21 .2a.
  • the first alternative coil element 21 .2a is designed as a tape reel.
  • the first alternative coil element 21 .2a surrounds the drive element 14a at least partially. When viewed along the longitudinal axis 48a of the drive element 14a, the first alternative coil element 21 .2a completely surrounds the drive element 14a.
  • FIG. 5 shows a second alternative magnet unit 18.3a for the drive unit 12a in a schematic sectional illustration.
  • the second alternative magnet unit 18.3a has a first coil element 21 .3a.
  • the second alternative magnet unit 18.3a has a second coil element 76.3a.
  • the coil elements 21 .3a, 76.3a of the second alternative magnet unit 18.3a are arranged concentrically, in particular coil axes of the coil elements 21 .3a, 76.3a of the longitudinal axis 48a of the
  • FIGS. 6 to 16 show further exemplary embodiments of the invention. The following description is essentially limited to the differences between the exemplary embodiments, reference being made to the description of the other exemplary embodiments, in particular of the exemplary embodiment of FIGS. 1 to 5, with regard to components, features and functions remaining the same. To distinguish the embodiments of the letter a in the reference numerals of the embodiment in Figure 1 is replaced by the letters b to k in the reference numerals of the embodiments of Figures 6 to 16. With regard to like-named components, in particular with regard to components with the same reference numerals, can in principle also to the drawings and / or the description of the
  • FIG. 6 shows a first alternative small device 10b in a schematic sectional representation.
  • the first alternative small appliance device 10b has a
  • Drive unit 12b which is constructed substantially analogously to the drive unit 12a of Figures 1 to 5.
  • the drive unit 12b comprises a drive element 14b, which shortens during operation along its longitudinal axis 48b.
  • Drive element 14b is formed of a magnetically deformable material 38b, in particular of a magnetic shape memory alloy.
  • the first alternative small appliance device 10b comprises at least one restoring unit 22b with a restoring element 24b, which acts on the drive element 14b with a restoring force.
  • the return element 24b is formed as a spiral spring.
  • the drive element 14b is arranged in the present case within the return element 24b.
  • the reset unit 22b in the present case comprises two bearing elements 66b, 68b, which are connected to opposite end faces 70b, 72b of the drive element 14b.
  • the bearing elements 66b, 68b are each connected to a shear blade 80b, 82b of an insertion tool 58b of the first alternative small appliance device 10b, wherein the connection shown is to be understood purely schematically and of course suitable lever elements, gear elements, eccentrics,
  • Small appliance device 10b instead of the blades 80b, 82b components of a different trained insert tool, such as a Epilations capitatechnikmaschines be connected to the bearing elements 66b, 68b.
  • the bearing elements 66b, 68b are connected to the restoring unit 22b, in particular to the restoring element 24b.
  • the reset unit 22b comprises a fastening element 84b, which forms a bearing fixed to the housing.
  • the fastener 84b is connected to the return element 24b.
  • the drive element 14b is thus supported by the fastening element 84b such that its two end faces 70b, 72b move relative to one another and relative to a housing of the first alternative small appliance device 10b when actuated. It is conceivable that a movement of the end faces 70b, 72b is converted directly into a movement of the shear blades 80b, 82b.
  • Insert tool is stored.
  • a drive element via a single plunger or a single tension element is so connected to an insert tool that move its components relative to a housing and / or relative to each other.
  • the insertion tool forms part of a restoring unit, wherein, for example, a restoring force can be transmitted via a connection mechanism from the insertion tool to the drive element.
  • FIG. 7 shows a second alternative small device 10c in one
  • the second alternative small appliance device 10c has a drive unit 12c with at least one drive element 14c.
  • Drive element 14c is a magnetically deformable drive element.
  • the second alternative small appliance device 10c has a magnet unit 18c with a coil element 21c.
  • the drive unit 12 c is provided for generating a drive force and / or a drive movement.
  • the second alternative small appliance device 10c has a reluctance unit 40c, which is provided for generating a supporting driving force and / or a supporting drive movement.
  • the reluctance unit 40c is intended to be the supporting one To generate driving force and / or the supporting drive movement taking advantage of the reluctance principle. In the present case, a force generated by a compression of the drive element 14c along its longitudinal axis 48c is supplemented by the assisting drive force.
  • the reluctance unit 40c has an armature 86c made of a ferromagnetic material.
  • the armature 86c is in the present case formed integrally with a bearing element 42c of the drive unit 12c.
  • the bearing element 42c is at least partially formed integrally with the reluctance unit 40c.
  • the bearing element 42c is connected to an end face 70c of the drive element 14c.
  • the reluctance unit 40c further comprises a yoke 90c in the present case.
  • the yoke 90c is formed, for example, annular.
  • the yoke 90c is connected to the coil element 21c.
  • a distance 91c is arranged, which is also annular in the present case.
  • An inner radius of the yoke 90c is substantially larger than an outer radius of the bearing element 42c so that a magnetic flux generated by the coil element 21c is conducted through the yoke 90c and the armature 86c into the drive element 14c and not predominantly from the yoke 90c directly into the drive element 14c ,
  • the armature 86c is moved toward the yoke 90c in one direction, thus assisting a movement generated by the drive element 14c.
  • the drive unit 12c in the present case comprises the reluctance unit 40c.
  • the drive unit 12c is designed as a hybrid MSM reluctance drive unit.
  • FIG. 8 shows a third alternative small appliance device 10d in a schematic sectional illustration.
  • the fourth alternative small appliance device 10d has a
  • the drive unit 12d with at least one drive element 14d.
  • the drive element 14d is formed of a magnetic shape memory alloy.
  • the third alternative small appliance device 10d has a magnet unit 18d with at least one coil element 21d, 92d.
  • the magnet unit 18d has a first one Coil element 21 d and a second coil element 92d.
  • the coil elements 21 d, 92 d are arranged on opposite longitudinal sides of the drive element 14 d.
  • the magnet unit 18d comprises a first flux guide 94d and a second one
  • Flux guide 96d each for example of a ferromagnetic material. If, for example by means of pulsed energization, a shape change magnetic field generated by the coil elements 21 d, 92d, whose flow is directed to the drive element 14d, that this is at least substantially perpendicular to its longitudinal axis 48d penetrated by magnetic field lines. The shape changing magnetic field is provided in this case to cause expansion of the driving member 14d along the same
  • the first alternative small appliance device 10d furthermore has a restoring unit 22d with at least one restoring element 24d.
  • the return element 24d generates a restoring force which acts on an end face 70d of the drive element 14d.
  • the return element 24d is arranged in front of the end face 70d of the drive element 14d.
  • the restoring force is provided for re-deformation of the drive element 14d.
  • the restoring force causes shortening of the drive element 14d along its longitudinal axis 48d, in particular in the absence of the shape changing magnetic field.
  • the return element 24d is formed in the present case as a compression spring which presses against the end face 70d of the drive element 14d.
  • FIG. 9 shows a fourth alternative small appliance device 10e in a schematic sectional illustration.
  • the fourth alternative small appliance device 10e has a
  • Drive unit 12e with at least one drive element 14e.
  • the drive element 14e is formed in the present case as a magnetically deformable drive element.
  • the fourth alternative small device 10e has a magnet unit 18e with at least one coil element 21e for generating a
  • Shape change magnetic field is intended to cause expansion of the drive member 14e along its longitudinal axis 48e.
  • field lines of the shape change magnetic field extend in a region of the drive element 14e at least substantially perpendicular to its longitudinal axis 48e.
  • the drive element 14e can be converted into at least a first stable expansion state and into at least one second stable expansion state.
  • Expansion states are each characterized by a defined length of the drive element 14e parallel to its longitudinal axis 48e.
  • the first stable expansion state and the second stable expansion state differ from a maximum and / or a minimum expansion state of the drive element 14e.
  • the stable expansion states are stable in that, in the absence of energization of the magnet unit 18e, the drive element 14e maintains a length corresponding to the respective expansion state along its longitudinal axis 48e, advantageously consuming no energy.
  • the fourth alternative small appliance device 10e has a holding unit 28e provided for stabilizing the first stable expansion state and the second stable expansion state.
  • the holding unit 28e is provided to superimpose a magnetic holding field on the shape changing magnetic field.
  • the holding unit 28e is provided to superimpose a magnetic holding field on the shape changing magnetic field.
  • Holding unit 28e provided to bias the drive member 14e.
  • Holding unit 28e is formed at least partially in one piece with a reset unit 22e of the fourth alternative small appliance device 10e, which at least one
  • Resetting element 24e includes.
  • the return element 24d biases the drive element 14e.
  • the restoring element 24d urges the drive element 14e with a compressive force.
  • the drive element 14e is subjected to a tensile force, in particular if the shape change magnetic field is applied such that it causes a shortening of the drive element 14e along its longitudinal axis 48e.
  • the holding unit 28e comprises at least one holding magnet element 30e.
  • the holding magnet element 30e can not, for example, at least one, in particular in an operation of the fourth alternative small appliance device 10e not
  • Ummagnetisierbaren, permanent magnets include and / or be designed as such.
  • this could be an NdFeB and / or an SmCo-based
  • Rare earth magnet can be used.
  • hysteresis of the material of the driving member 14e can be utilized so that the first stable expanding state and the second stable expanding state can be achieved.
  • FIG. 10 shows a schematic magnetic field expansion diagram of the drive element 14e.
  • the magnetic field expansion diagram includes a magnetic field strength axis 98e and an expansion state axis 100e.
  • the marked points indicate two different stable expansion states of the drive member 14e. These are at a total magnetic field which corresponds to an absence of the shape changing magnetic field and is generated only from the holding magnetic member 30e. Between the expansion states can be switched by energizing the coil element 21 e, in which case a length of the drive element 14e remains de-energized at a correspondingly fixed value.
  • the holding magnet element 30e has at least one
  • the magnetizable permanent magnet 32e is, for example, an AINiCo magnet.
  • the magnetizable permanent magnet 32e is, for example, an AINiCo magnet.
  • Ummagnetisierbaren permanent magnet 32e changed from the shape change magnetic field. During operation of the drive unit 12e and the magnet unit 18e, the magnetized permanent magnet 32e is purposefully opened and demagnetized.
  • FIG. 11 shows a fifth alternative small device 10f in one
  • the fifth alternative small device 10f has a drive unit 12f with at least one drive element 14f.
  • Drive element 14f is formed of a magnetically deformable material 38f.
  • the drive unit 12f is provided for generating an actuation movement by means of an expansion of the drive member 14f.
  • the fifth alternative small appliance device 10f has a magnet unit 18f with two coil elements 21f, 92f as well as suitable flux guide elements 94f, 96f.
  • the magnet unit 18f is for
  • the fifth alternative small appliance device 10f has a second drive unit 34f.
  • the second drive unit 34f is arranged antagonistic to the drive unit 12f.
  • the second drive unit 34f has at least one second drive element 36f.
  • the second drive element 36f has at least one magnetically deformable material 38f on.
  • the second drive element 36f is designed as a magnetically deformable drive element.
  • the drive element 14f and the second drive element 36f are at least substantially identical to each other.
  • the driving member 14f and the second driving member 36f are each other
  • the drive element 14f and the second drive element 36f have a common longitudinal axis 48f and / or are aligned with respect to their longitudinal axes 48f.
  • Small appliance device 10f also has a second magnet unit 102f, which is provided for generating a shape change magnetic field for the second drive element 14f.
  • the second magnet unit 102f is in the present case at least substantially identical and / or mirror-symmetrical to the magnet unit 18f.
  • the drive element 14f and the second drive element 36f are arranged such that an expansion of the one drive element 14f, 36f respectively causes a compression of the other drive element 36f, 14f.
  • the second drive unit 34f forms a return unit for the drive element 14f.
  • the drive unit 12 f forms a reset unit for the second drive element 36 f.
  • the drive units 12f, 34f together form a holding unit for the drive element 14f and the second drive element 36f, which stabilizes at least a first stable expansion state and at least a second stable expansion state of the drive element 14f and the second
  • Drive element 36f is provided.
  • the drive units 12f, 34f together form at least part of a bistable MSM push-push actuator.
  • one drive element 14f, 36f is stretched in each case while the respectively other drive element 36f, 14f is compressed.
  • Lever element 104f connected, which is pivoted back and forth in one operation.
  • the drive units 12f, 34f are connected to two lever elements 104f, which are in turn in turn connected to an insertion tool 58f of the fifth alternative small device 10f, which is shown only schematically in FIG. 11. Analogous to the cases described above
  • FIG. 12 shows a sixth alternative small device 10g in one
  • the sixth alternative small appliance device 10g comprises a drive unit 12g with at least one drive element 14g of a magnetically deformable material 38g.
  • the sixth alternative small appliance device 10g comprises a second drive unit 34g with at least one second drive element 36g of a magnetically deformable material 38g.
  • the drive unit 12g and the second drive unit 34g are arranged antagonistically.
  • the drive units 12g, 34g are each provided to provide an actuation movement by means of a contraction of the drive elements 14g, 36g along their longitudinal axis 48g.
  • the drive elements 14g, 36g move in opposite directions and accomplish a mutual return.
  • the drive unit 12g and the second drive unit 34g together form at least part of a bistable MSM pull-pull actuator.
  • FIG. 13 shows a part of a seventh alternative small device 10h in a schematic representation.
  • the seventh alternative small appliance device 10h has a drive unit 12h, which is partially shown in FIG.
  • the drive unit 12h has a drive element 14h of a magnetically deformable material.
  • the drive unit 12h has a further drive element 44h which is connected in series with the drive element 14h with respect to a drive effect and whose longitudinal axis 46h is connected by a longitudinal axis 48h of the drive element 14h
  • Longitudinal axis 48h of the drive element 14h are arranged in the present case at least substantially parallel to each other.
  • the drive element 14h and the further drive element 44h, in particular their longitudinal sides, are arranged next to one another.
  • at least one drive unit as a hybrid MSM reluctance drive unit.
  • Drive unit as any other drive unit, such as a
  • Linear drive unit a reluctance drive unit, a piezo drive unit, a voice coil drive unit and / or the like.
  • the drive unit 12h has a stroke transmission element 106h.
  • Hub transmission element 106h is provided to one of the drive element 14h and the stroke generated by the further drive element 44h.
  • the Hubübertragungselement 106h is step-shaped in the present case.
  • the Hubübertragungselement 106h is Z-shaped.
  • the stroke transmission element 106h connects a rear end side 72h of the drive element 14h to a front end side 108h of the further drive element 44h. In the present case that is
  • Hubübertragungselement 106h a sheet metal part.
  • the further drive element 44h is fixed, in particular fixed to the housing, by means of a bearing element 1 12h at a rear end face 1 10h, which in particular faces the front end face 108h along the longitudinal axis 46h of the further drive element 44h.
  • a contraction or expansion of the further drive element 44h in particular parallel to its
  • Drive element 14h and the further drive element 44h arranged in a common magnetic field region and / or a shape change magnetic field for the drive element 14h and the further drive element 44h is provided by means of a common, not shown, magnet unit.
  • Combination can be used.
  • use in a pulling as well as in an oppressive configuration is conceivable.
  • FIG. 14 shows a first alternative small appliance 54i in a perspective view
  • the first alternative small appliance 54i has at least one
  • the first alternative small appliance 54i is as a
  • the small appliance device 10i is as a
  • the first alternative small appliance 54i and / or the small appliance appliance 10i may be used for body treatment.
  • FIG. 15 shows a second alternative small appliance 54j in a perspective view
  • the second alternative small appliance 54j has at least one
  • the second alternative small appliance 54j is designed as an epilator.
  • the small appliance device 10j is as an epilator device
  • the small appliance device 10j may have an insert tool 58j that is linear in contrast to a conventional rotary powered epilation drum has moving elements such as tweezers for hair removal.
  • the first alternative small appliance 54i and / or the small appliance device 10i can be used for
  • FIG. 16 shows a third alternative small appliance 54k in a perspective view.
  • the third alternative small appliance 54k has at least one
  • the third alternative small appliance 54k is designed as an electric toothbrush.
  • the small appliance device 10k is as a
  • Toothbrush device in particular a Elektrotechnikbürstenvornchtung formed.
  • the small appliance devices 10i-k of the exemplary embodiments of FIGS. 14-16 may of course include features of the small appliance devices 10a-h of FIGS. 14-16

Landscapes

  • Health & Medical Sciences (AREA)
  • Engineering & Computer Science (AREA)
  • Life Sciences & Earth Sciences (AREA)
  • Power Engineering (AREA)
  • Animal Behavior & Ethology (AREA)
  • General Health & Medical Sciences (AREA)
  • Public Health (AREA)
  • Veterinary Medicine (AREA)
  • Dentistry (AREA)
  • Epidemiology (AREA)
  • Forests & Forestry (AREA)
  • Mechanical Engineering (AREA)
  • Virology (AREA)
  • Dermatology (AREA)
  • Medical Informatics (AREA)
  • Anesthesiology (AREA)
  • Biomedical Technology (AREA)
  • Heart & Thoracic Surgery (AREA)
  • Hematology (AREA)
  • Brushes (AREA)
  • Dry Shavers And Clippers (AREA)
  • Hard Magnetic Materials (AREA)
  • Reciprocating, Oscillating Or Vibrating Motors (AREA)

Abstract

L'invention concerne un dispositif de type petit appareillage électroménager, notamment un petit appareil électroménager destiné aux soins corporels, notamment un rasoir électrique, une tondeuse à barbe électrique, une tondeuse à cheveux électrique, un épilateur électrique, un appareil de tatouage électrique, une brosse à dents électrique ou analogue, ledit petit appareil électroménager étant doté d'une unité d'entraînement (12a-h) qui comporte au moins un élément d'entraînement (14a-h). Selon l'invention, l'élément d'entraînement (14a-h) présente au moins un matériau (16a) magnétiquement déformable.
EP18729897.1A 2017-05-29 2018-05-29 Dispositif de type petit appareillage électroménager Pending EP3631872A1 (fr)

Applications Claiming Priority (2)

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DE102017111642.7A DE102017111642A1 (de) 2017-05-29 2017-05-29 Kleingerätevorrichtung
PCT/EP2018/064011 WO2018219912A1 (fr) 2017-05-29 2018-05-29 Dispositif de type petit appareillage électroménager

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EP3631872A1 true EP3631872A1 (fr) 2020-04-08

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US (1) US11990263B2 (fr)
EP (1) EP3631872A1 (fr)
JP (1) JP6968910B2 (fr)
CN (1) CN110945671B (fr)
DE (1) DE102017111642A1 (fr)
WO (1) WO2018219912A1 (fr)

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US11990263B2 (en) 2024-05-21
WO2018219912A1 (fr) 2018-12-06
CN110945671B (zh) 2024-03-08
US20210005372A1 (en) 2021-01-07
DE102017111642A1 (de) 2017-08-10
CN110945671A (zh) 2020-03-31
JP6968910B2 (ja) 2021-11-17
JP2020524895A (ja) 2020-08-20

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