EP1945994A1 - Haltevorrichtung mit gewichtsausgleich - Google Patents

Haltevorrichtung mit gewichtsausgleich

Info

Publication number
EP1945994A1
EP1945994A1 EP06818454A EP06818454A EP1945994A1 EP 1945994 A1 EP1945994 A1 EP 1945994A1 EP 06818454 A EP06818454 A EP 06818454A EP 06818454 A EP06818454 A EP 06818454A EP 1945994 A1 EP1945994 A1 EP 1945994A1
Authority
EP
European Patent Office
Prior art keywords
support arm
holding device
pivot
holding
unit
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.)
Withdrawn
Application number
EP06818454A
Other languages
German (de)
English (en)
French (fr)
Inventor
Hermann Hammer
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.)
Carl Zeiss Meditec AG
Original Assignee
Carl Zeiss Surgical 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 Carl Zeiss Surgical GmbH filed Critical Carl Zeiss Surgical GmbH
Publication of EP1945994A1 publication Critical patent/EP1945994A1/de
Withdrawn legal-status Critical Current

Links

Classifications

    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B90/00Instruments, implements or accessories specially adapted for surgery or diagnosis and not covered by any of the groups A61B1/00 - A61B50/00, e.g. for luxation treatment or for protecting wound edges
    • A61B90/50Supports for surgical instruments, e.g. articulated arms
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16MFRAMES, CASINGS OR BEDS OF ENGINES, MACHINES OR APPARATUS, NOT SPECIFIC TO ENGINES, MACHINES OR APPARATUS PROVIDED FOR ELSEWHERE; STANDS; SUPPORTS
    • F16M11/00Stands or trestles as supports for apparatus or articles placed thereon ; Stands for scientific apparatus such as gravitational force meters
    • F16M11/02Heads
    • F16M11/04Means for attachment of apparatus; Means allowing adjustment of the apparatus relatively to the stand
    • F16M11/06Means for attachment of apparatus; Means allowing adjustment of the apparatus relatively to the stand allowing pivoting
    • F16M11/10Means for attachment of apparatus; Means allowing adjustment of the apparatus relatively to the stand allowing pivoting around a horizontal axis
    • F16M11/105Means for attachment of apparatus; Means allowing adjustment of the apparatus relatively to the stand allowing pivoting around a horizontal axis the horizontal axis being the roll axis, e.g. for creating a landscape-portrait rotation
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16MFRAMES, CASINGS OR BEDS OF ENGINES, MACHINES OR APPARATUS, NOT SPECIFIC TO ENGINES, MACHINES OR APPARATUS PROVIDED FOR ELSEWHERE; STANDS; SUPPORTS
    • F16M11/00Stands or trestles as supports for apparatus or articles placed thereon ; Stands for scientific apparatus such as gravitational force meters
    • F16M11/20Undercarriages with or without wheels
    • F16M11/2007Undercarriages with or without wheels comprising means allowing pivoting adjustment
    • F16M11/2035Undercarriages with or without wheels comprising means allowing pivoting adjustment in more than one direction
    • F16M11/2064Undercarriages with or without wheels comprising means allowing pivoting adjustment in more than one direction for tilting and panning
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16MFRAMES, CASINGS OR BEDS OF ENGINES, MACHINES OR APPARATUS, NOT SPECIFIC TO ENGINES, MACHINES OR APPARATUS PROVIDED FOR ELSEWHERE; STANDS; SUPPORTS
    • F16M11/00Stands or trestles as supports for apparatus or articles placed thereon ; Stands for scientific apparatus such as gravitational force meters
    • F16M11/20Undercarriages with or without wheels
    • F16M11/2092Undercarriages with or without wheels comprising means allowing depth adjustment, i.e. forward-backward translation of the head relatively to the undercarriage
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16MFRAMES, CASINGS OR BEDS OF ENGINES, MACHINES OR APPARATUS, NOT SPECIFIC TO ENGINES, MACHINES OR APPARATUS PROVIDED FOR ELSEWHERE; STANDS; SUPPORTS
    • F16M11/00Stands or trestles as supports for apparatus or articles placed thereon ; Stands for scientific apparatus such as gravitational force meters
    • F16M11/20Undercarriages with or without wheels
    • F16M11/24Undercarriages with or without wheels changeable in height or length of legs, also for transport only, e.g. by means of tubes screwed into each other
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16MFRAMES, CASINGS OR BEDS OF ENGINES, MACHINES OR APPARATUS, NOT SPECIFIC TO ENGINES, MACHINES OR APPARATUS PROVIDED FOR ELSEWHERE; STANDS; SUPPORTS
    • F16M13/00Other supports for positioning apparatus or articles; Means for steadying hand-held apparatus or articles
    • F16M13/02Other supports for positioning apparatus or articles; Means for steadying hand-held apparatus or articles for supporting on, or attaching to, an object, e.g. tree, gate, window-frame, cycle
    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B7/00Mountings, adjusting means, or light-tight connections, for optical elements
    • G02B7/001Counterbalanced structures, e.g. surgical microscopes
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B90/00Instruments, implements or accessories specially adapted for surgery or diagnosis and not covered by any of the groups A61B1/00 - A61B50/00, e.g. for luxation treatment or for protecting wound edges
    • A61B90/50Supports for surgical instruments, e.g. articulated arms
    • A61B2090/5025Supports for surgical instruments, e.g. articulated arms with a counter-balancing mechanism
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B90/00Instruments, implements or accessories specially adapted for surgery or diagnosis and not covered by any of the groups A61B1/00 - A61B50/00, e.g. for luxation treatment or for protecting wound edges
    • A61B90/20Surgical microscopes characterised by non-optical aspects
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16MFRAMES, CASINGS OR BEDS OF ENGINES, MACHINES OR APPARATUS, NOT SPECIFIC TO ENGINES, MACHINES OR APPARATUS PROVIDED FOR ELSEWHERE; STANDS; SUPPORTS
    • F16M2200/00Details of stands or supports
    • F16M2200/04Balancing means
    • F16M2200/048Balancing means for balancing translational movement of the undercarriage
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16MFRAMES, CASINGS OR BEDS OF ENGINES, MACHINES OR APPARATUS, NOT SPECIFIC TO ENGINES, MACHINES OR APPARATUS PROVIDED FOR ELSEWHERE; STANDS; SUPPORTS
    • F16M2200/00Details of stands or supports
    • F16M2200/06Arms
    • F16M2200/063Parallelogram arms

Definitions

  • the invention relates to a holding device, in particular for a medical-optical instrument, with a support arm for receiving a load which is pivotally mounted with a first pivot relative to a holding unit and in which means are provided for generating a longitudinal force acting on the support arm to compensate for a load torque occurring in the first pivot of the support arm.
  • a holding device of the type mentioned is known from EP 1 199 508 A2.
  • a surgical microscope tripod with a first and a second link, which are hinged to a common pivot base.
  • the first and second links form a parallel link construction by being connected at their front end by a front handlebar.
  • a surgical microscope is arranged.
  • a force accumulator element designed as a linear spring is provided in the parallel linker design.
  • This power storage element is hinged to one of the support links of the parallel link construction and exerts a tensile or compressive force on the pivot base to hold the surgical microscope received at the parallel link construction in a floating state.
  • EP 0 433 426 B1 discloses a carrier device for medical optical equipment in which a force storage element for generating a linear force is provided in a scissor arm of a surgical microscope stand.
  • the energy storage element is supported on a pivot base of the scissor arm in a Kulisseri arrangement so as to compensate for a dependent of the stroke changing force of the energy storage element.
  • a surgical microscope stand in which an operating microscope is supported by a parallel linker design, which is mounted pivotably on a stand console with a fulcrum.
  • compensation masses are provided in the surgical microscope stand, which compensate the weight of the surgical microscope received at the parallel linker design.
  • the object of the invention is to provide a holding device with low weight, which allows a force-free guiding a recorded load when moving the support arm in a hinge on the holding unit.
  • a holding device of the type mentioned in which the means for generating a longitudinal force is pivotally mounted on the holding unit and exerts a force on a cam carrier, which is in operative connection with the support arm.
  • the weight of the means for generating the longitudinal force does not rest on the support arm. This ensures that the means for generating the longitudinal force to compensate for a load torque in the pivot joints of the support arm does not have to compensate its own weight.
  • the support arm is articulated on the holding unit. In this way it is possible to provide a rigid connection of cam carrier and support arm to compensate with the means for generating a longitudinal force a load torque on the support arm.
  • the means for generating a longitudinal force comprises a spring element or a plurality of spring elements.
  • a corresponding spring element can be designed, for example, as a linear spring, ie as a spring element, in which a spring force produced is produced. is proportional to a spring element deforming deflection of the spring element.
  • the means for generating a longitudinal force acts on a bearing element, which rolls on movement of the support arm on the holding unit on the slotted guide. In this way it is possible to minimize frictional forces.
  • IQ development of the invention is a point of application of the means for generating a longitudinal force on the holding unit in at least one direction, preferably in two directions displaceable. In this way, it is possible to adjust the holding device in case of a change in the load taken up for weight balance.
  • a transmission is provided for adjustability of the point of application of the means for generating a longitudinal force on the holding unit. In this way, the fixture can be precisely adjusted for weight balance when a load weight changes.
  • an engine is provided for adjustability of the point of application of the means for generating a longitudinal force on the holding unit. In this way, the conditions for the automatic adjustment of a state of equilibrium in the holding device are created.
  • the holding unit is received with a longitudinal guide in a base unit.
  • the support arm is connected to the holding unit via a rotary joint with a second support arm which carries the load, wherein a first and a second means for generating a longitudinal force on the holding unit are pivotally mounted and wherein the first means a force on a Kulissenbowung exerts, which is in operative connection with the support arm, and wherein the second means for generating a longitudinal force exerts a force on a slotted guide, which is in operative connection with the second support arm.
  • the holding device a load recorded on a multi-jointed support arm.
  • a second pivot joint is provided in the holding device, which makes it possible to pivot the support arm about an axis different from the axis of the first pivot joint. In this way, a load taken on the support arm of the holding device can be positioned anywhere in the room.
  • the second rotary joint connects the base unit to a stand console. In this way, a modular construction of the holding device is provided.
  • a front link is provided in the holding device, which is articulated with a third pivot at a front end of the support arm to hold a load on the support arm.
  • an operative connection of the front handlebar and the holding unit ensures a constant orientation of the front handlebar regardless of the position of the support arm. In this way, it is possible to move a load carried on the handlebar with respect to the front handlebar, i. shift their center of gravity without changing the load torque in the first pivot at a given position of the support arm.
  • the operative connection is designed as a traction means, in particular as a cable pull, or as a parallel linker design.
  • a receptacle for an additional weight is assigned in the support arm. In this way, it is possible to compensate for a change in a load recorded on the support arm with an additional weight, so that the retaining device can be moved without force on the means for generating a longitudinal force without affecting.
  • the additional weight can be displaced on the support arm, so as to change a occurring in the first hinge of the support arm load torque.
  • the holding device can be particularly easily adapted to different load weights that engage the support arm.
  • the cam carrier is designed as a clothes hook. In this way, it is possible to initiate the force generated by the means for generating a longitudinal force directly via a guided on the cam carrier roller in the cam carrier.
  • the cam carrier may also be kidney-shaped. With this cam carrier form a large freedom of movement of the holding device is achieved.
  • the holding device can be designed, in particular, as a surgical microscope ceiling stand, as an operating microscope wall stand or as a surgical microscope floor stand.
  • Fig. 2 a second formed as a surgical microscope wall stand
  • FIGs 4, 5 and 6 an identical assembly of the holding devices shown in Figures 1, 2 and 3 at different Tragarm- positions.
  • FIG. 7 shows a fourth holding device modified in comparison to FIG. 1 in the form of a surgical microscope ceiling stand
  • FIG. 8 shows a fifth exemplary embodiment of a holding device in the form of a surgical microscope ceiling stand.
  • FIG 9 shows a sixth embodiment of a holding device in the form of a surgical microscope ceiling stand.
  • a surgical microscope ceiling stand 100 which comprises a support arm 101 which is pivotally mounted with a pivot 103 on a holding unit 102 about an axis 104.
  • a cab J 05 is held in a pivot 106.
  • the driver 105 carries a medical-optical equipment unit 107 with a surgical microscope 108.
  • the surgical microscope 108 can be moved about axes 109, 110, 111 in directions indicated by arrows 112-114.
  • the front handlebar 105 is associated with a support arm 101 arranged in parallel arm 115. This link 115 is supported by the pivot 116 on the holding unit 102 and connected via a pivot 117 to the front handle 105.
  • the linear spring assembly 120 has a first spring holding body 121 and a second spring holding body 122, between which spring blocks 123 are clamped.
  • the first field holding body 121 is pivotally mounted on the holding unit 102 with a pivot 124.
  • the second spring holding body 122 carries a roller mounted in a bearing. which, when the support arm 101 moves and the direction indicated by the double arrow 118, unrolls on the cam carrier 119.
  • the bearing for the rollers can be designed, for example, as a sliding, ball or needle bearing.
  • the cam carrier 119 is designed so that at every possible position of the support arm
  • the load torque generated by the surgical microscope 107 received on the support arm in the axis 104 of the rotary joint 103 is exactly compensated by that of the linear spring arrangement 120, which exerts a linear force on the cam carrier 119.
  • a displaceable additional weight 140 is provided on the support arm 101, which is movable in the direction of arrows 125 along the support arm 101.
  • the holding unit 102 is accommodated in a slide-shaped linear guide 127 on a base unit 128.
  • this linear guide 127 the support arm 101 with the holding unit
  • the base unit 128 is held on a receiving unit 130, which can be rotated on a tripod bracket 131 about a rotation axis 132 and is mounted on the ceiling 133 of an operating room.
  • FIG. 2 shows a retaining device designed as a surgical microscope wall stand 200.
  • the holding unit 102 is mounted on a hinge 201 with a Rotated pivot axis 202.
  • the pivot 201 in turn is held in a arranged on a wall 203 of an operating room linear guide 204 and can thus be moved horizontally to the wall of the operating room.
  • FIG. 3 shows a holding device 300 embodied as a surgical microscope ceiling stand.
  • the base unit 128 with its linear guide 127 is arranged on a receiving unit 302 arranged on the floor 301 of an operating room, which is mounted on a console 303 with movable rollers 304.
  • the bracket 303 includes a pivot 350 that allows the receiving unit 302 to rotate about a vertical axis 305.
  • FIGS. 4, 5 and 6 show a detail of the holding devices explained with reference to FIGS. 1 to 3 in order to explain the principle of torque compensation in the axis 104 of pivot 103 for the support arm 101.
  • the assemblies of the illustrated HaI- tevoriquess section are provided with reference numerals that have already been used to describe the holding device of FIG. 1, 2 or 3.
  • the linear spring arrangement 120 acts as an elastically deformable energy store whose extent can be changed in the direction indicated by the arrow 401. According to its expansion is exerted by the linear spring arrangement 120 is a linear motor in the form of a spring force F spring on the surface of the cam carrier 119th
  • the spring force F spring has the amount
  • Kx, where K is a spring constant and x corresponds to the deflection of the springs from their resting state.
  • L effective length of the support arm 101
  • angular position of the support arm
  • F spring ' ⁇ spring force which is generated by means of the linear spring assembly 120; r: location at which the spring force acts on the hook-shaped slide guide element 119 functioning as a lever unit;
  • Equation (1) expresses that at equilibrium the torque generated by means of the energy accumulator in the form of the linear spring arrangement 120 is equal to the torque which generates the load on the support arm.
  • Equation (2) is the principle of energy conservation: the sum of the potential energy of the linear spring assembly 120 and the mass M received on the support arm 101 is fixed. Equation (3) describes that the force of the linear spring assembly 120 always acts perpendicular to the surface 402 of the hook-shaped cam carrier 119. It expresses that the linear spring assembly 120 does not generate forces tangential to the surface 402 of the cam carrier 119 and tends to move it with the support arm 101 in the hinge 103. Thus, the arrangement for each possible position of the linear spring assembly is in an idle state. Equation (3) thus means that the stand is in an indifferent equilibrium state for every possible position of the support arm 101.
  • Equations (1) - (3) correspond to an independent system of equations consisting of 3 implicit functions over the 4 variables x, r, ⁇ , ⁇ :
  • the shape of the hook-shaped cam carrier 119 is uniquely determined: For a given angle ⁇ , the quantities x, r and ⁇ are determined by this system of equations.
  • FIG. 7 shows a surgical microscope ceiling stand 700, the structure of which basically corresponds to that of the surgical microscope ceiling stand 100 from FIG. 1.
  • the modules of the stand in Fig. 7 are identical to those in Fig. 1, they carry the same reference numerals.
  • a support unit 702 is provided in the operating microscope ceiling stand 700, which is guided linearly with rollers 710 and 711 on a base unit 124.
  • the pivot 124 can be displaced in the direction of the double arrows 703 and 704.
  • the holding unit 702 comprises for this purpose a portion 705, on which the swivel joint 104 is provided.
  • the holding unit 702 has a portion 706 which carries the pivot 124.
  • Section 705 is via a threaded spindle 707 with section 706 connected.
  • the threaded spindle 707 is associated with a gear unit with motor 708.
  • the portion 705 of the holding unit 702 can be displaced according to the double arrow 709 to the portion 706 of the holding unit 702.
  • the rotary joint 124 is moved in the direction of the double arrow 703.
  • a further gear unit with motor 712 is arranged, which serves to drive a threaded spindle 713.
  • This threaded spindle 713 acts on the pivot 124.
  • the pivot 124 is displaced in the direction of the double arrow 702.
  • gear unit with motor 708 and the gear unit with motor 712 By suitably driving gear unit with motor 708 and the gear unit with motor 712, it is possible to set a bias of the linear spring unit 120 and to select the position of the points of application for the spring force generated in the pivot 124 and on the cam carrier 119 so that the support arm 101 is maintained in equilibrium with the surgical microscope 107 received thereon in a predetermined position, even if the mass of the surgical microscope received on the support arm 101 changes.
  • Fig. 8 shows a surgical microscope ceiling stand 800, in which a first support arm
  • the first support arm 801 and a second support arm 802 are provided.
  • the first support arm 801 is pivotally supported on a support unit 804 in a pivot 803.
  • the second support arm 802 is articulated in a rotary joint 805 on the first support arm 801.
  • the equipment unit 808 includes a surgical microscope 809. This may include axes 810, 811, 812 with arrows 813-815, directions such as the surgical microscope 108 of FIG. 1 are moved.
  • the driver 807 is associated with a second support arm 802 arranged in parallel arm 816.
  • This link 816 acts on a crank element 817 on the pivot 805.
  • a link 819 is articulated in a pivot joint 818.
  • This link 819 is held in a pivot 820 on the receiving unit 804.
  • a first hook-shaped cam carrier 821 is rigidly connected.
  • a first linear spring arrangement 822 acts as a means for generating a longitudinal force.
  • the linear spring arrangement 822 has, like the linear spring arrangement 120 from FIG. 1, a first spring holder body 823 and a second spring holder body 824, between which the spring blocks 825 are clamped.
  • the spring holding body 823 is pivotally mounted on the receiving unit 804 with a rotary joint 826.
  • an adjusting unit 827 is provided on the receiving unit 804, which makes it possible to displace the rotary joint 826 in the directions indicated by the double arrows 828 and 829 on the receiving unit 804.
  • the second support arm 802 is rigidly connected in the region of the rotary joint 805 with an elbow 830.
  • a link 832 is articulated in a rotary joint 831, which acts on a mounted in the axis of the rotary joint 803 on the receiving unit 804 crank unit 833.
  • the crank unit 833 comprises a second cam carrier 834, which, like the cam carrier 821, is hook-shaped.
  • a second linear spring arrangement 835 acts on this cam carrier 834.
  • the linear spring arrangement 835 has a first spring holding body 836 and a second spring holding body 837, between which the spring blocks 838 are clamped.
  • the spring holding body 836 is pivotally mounted on the receiving unit 804 with a rotary joint 839.
  • the pivot 839 on the receiving unit 804 can be displaced in the directions indicated by the double-headed arrows 841 and 842.
  • the Aufiiahmetician 804 is held in a hinge 850 with a rotation axis 851 on a mounting unit 852, which is mounted on the ceiling 853 of an operating room, not shown.
  • the first linear spring assembly 822 is adjusted to compensate for a load torque produced by the load received on the second support arm 802 in the form of the medical optical equipment unit 808 in the axis of the pivot joint 803.
  • the second linear spring arrangement 835 serves to compensate for a torque, which is caused in the axis of the pivot joint 805 by the medical-optical equipment unit 808, which is transmitted by means of the link 832 into the axis of the pivot joint 803. It should be noted that in principle a transmission of the torque in the axis of the rotary joint 805 in the axis of the rotary joint 803 can be transmitted by a suitable other gear mechanism in the form of a cable or a rack and pinion coupling instead of by means of handlebars.
  • the adjustment units 827 and 840 for the hinges 826 and 839 of the linear spring assemblies 822 and 835 allow the balance-of-weight surgical microscope stand 800 to be adjusted such that the medical-optical equipment received thereon can be moved in the direction of the double-headed arrows 845 and 846 without forces.
  • FIG. 9 shows a surgical microscope ceiling stand 900, which in turn has a first support arm 901 and a second support arm 902.
  • the first support arm 901 is pivotally supported on a support unit 904 in a pivot 903.
  • the second support arm 902 is articulated in a rotary joint 905 on the first support arm 901.
  • the support arm 902 stops in a front end a 906.
  • the equipment unit 908 includes a surgical microscope 909. This can be moved about axes 910, 911, 912 in directions indicated by arrows 913-915, such as the surgical microscope 108 of FIG ,
  • a first kidney-shaped cam carrier 921 is rigidly connected to the first support arm 901. On the kidney-shaped cam carrier 921 acts by means of a roller unit 973 via a lever member 971, which is mounted with a pivot 972 on the receiving unit 904, a first linear spring assembly 922 as a means for generating a longitudinal force.
  • the linear spring arrangement 922 like the linear spring arrangement 120 from FIG. 1, has a first spring holder body 923 and a second spring holder body 924, between which spring blocks 925 are clamped.
  • the spring holding body 923 is associated with a spindle 978 and a spindle guide 974 with a drive not shown, which is mounted with a pivot 926 pivotally mounted on the Aumahmetician 904.
  • the drive of the spindle guide 974 allows the spring holding body 923 to be adjusted in the direction of the spindle in accordance with the double arrow 975.
  • the spring holding body 924 is connected by a pivot joint 927 to a holding block 928, which can be displaced by means of a drive (not shown) corresponding to the double arrow 977 on the lever element 971.
  • the second support arm 902 is associated with a handlebar 981 and 982.
  • the links 981 and 982 form a parallel link with the first support arm 901 and a portion 983 of the second support arm 902.
  • a second kidney-shaped cam carrier 934 is rigidly connected to the handlebar 982. On this cam carrier 934 acts by means of a roller unit 993 via a lever element 991, which is mounted with a pivot 992 on the receiving unit 904, a second linear spring assembly 935. Like the linear spring assembly 922, the linear spring assembly 935 has a first spring holding body 936 and a second spring holding body 937, between the spring blocks 938 are clamped.
  • the spring body 936 comprises a spin- del 978 and a spindle guide 979 with not further shown drive, which is pivotally supported by a pivot 939 on the receiving unit 904.
  • the spring holding body 936 can be adjusted in the direction of the spindle as well as the spring holding body 923 in accordance with the double arrow 980.
  • the spring retainer 937 is connected by a hinge 968 to a retainer block 969 which can be adjusted in the direction of the spindle according to the double-headed arrow 999.
  • the second spring holding body 937 is also assigned a drive for a movement corresponding to the double arrow 999 on the lever element 991.
  • the receiving unit 904 is held in a pivot 950 with an axis of rotation 951 on a mounting unit 952, which is mounted on the ceiling 953 of an operating room, not shown.
  • the first linear spring assembly 922 is adjusted to compensate for the load torque produced in the axis of the pivot 903 by the load received on the second support arm 902 in the form of the medical optical equipment unit 908.
  • the second linear spring arrangement 935 serves to compensate for a torque, which is caused in the axis of the pivot joint 905 by the medical-optical equipment unit 908, which is transmitted by means of the links 981 and 982 into the axis of the pivot joint 903.
  • the linear spring arrangement 935 acts on the kidney-shaped cam carrier 934 via a lever element 991, which is mounted with a pivot 992 on the receiving unit 904, by means of a roller unit 993.
  • the linear spring assemblies 922 and 935 are relaxed or stretched in the direction of the double arrows 945 and 946.
  • the proper adjustment of the linear spring assemblies 922 and 935 ensures that for any possible position of the support arms 901, 902 of the surgical microscope ceiling stand 900, the roller units 973 and 993 are positioned at corresponding positions on the kidney-shaped Curve supports 921 and 934 act, being kept in balance.
  • the shape of the kidney-shaped cam carriers 921 and 934 is chosen such that the linear spring arrangements 922 and 935 do not have to be adjusted for a force-free movement of the support arms 901, 902 of the ceiling stand.
  • the spindles 973, 978 of the linear spring assemblies 922 and 935 as well as the linear position of the spring retainers 924, 937 on the lever members 971 are required for force-free movement of the assembly and 991 can not be adjusted.
  • linear spring arrangements can be used in the described holding devices and spring elements, which have a non-linear relationship between a deforming deflection and a force generated thereby. It is understood that in this case, the shape of the corresponding cam carrier on which the spring element acts, must also be matched to the functional relationship between force and deflection of the spring element or the spring elements.
  • the weight-balanced holding devices described are not only suitable for accommodating medical-optical equipment or medical instruments but they can generally be used as manipulators for receiving objects, for example as manipulators for tools in the factory floor of a factory.

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  • Engineering & Computer Science (AREA)
  • General Engineering & Computer Science (AREA)
  • Mechanical Engineering (AREA)
  • Health & Medical Sciences (AREA)
  • Life Sciences & Earth Sciences (AREA)
  • Surgery (AREA)
  • Physics & Mathematics (AREA)
  • Medical Informatics (AREA)
  • Veterinary Medicine (AREA)
  • Biomedical Technology (AREA)
  • Molecular Biology (AREA)
  • Animal Behavior & Ethology (AREA)
  • General Health & Medical Sciences (AREA)
  • Public Health (AREA)
  • Heart & Thoracic Surgery (AREA)
  • Oral & Maxillofacial Surgery (AREA)
  • Nuclear Medicine, Radiotherapy & Molecular Imaging (AREA)
  • Pathology (AREA)
  • General Physics & Mathematics (AREA)
  • Optics & Photonics (AREA)
  • Microscoopes, Condenser (AREA)
  • Manipulator (AREA)
EP06818454A 2005-11-10 2006-11-10 Haltevorrichtung mit gewichtsausgleich Withdrawn EP1945994A1 (de)

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
DE102005054010A DE102005054010A1 (de) 2005-11-10 2005-11-10 Haltevorrichtung mit Gewichtsausgleich
PCT/EP2006/010777 WO2007054327A1 (de) 2005-11-10 2006-11-10 Haltevorrichtung mit gewichtsausgleich

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EP1945994A1 true EP1945994A1 (de) 2008-07-23

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US (1) US8205845B2 (ja)
EP (1) EP1945994A1 (ja)
JP (2) JP5367374B2 (ja)
DE (1) DE102005054010A1 (ja)
WO (1) WO2007054327A1 (ja)

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CN109805669A (zh) * 2019-01-16 2019-05-28 宜庭家纺有限公司 一种动态展示绒柜

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CN109805669A (zh) * 2019-01-16 2019-05-28 宜庭家纺有限公司 一种动态展示绒柜
CN109805669B (zh) * 2019-01-16 2021-03-09 宜庭家纺有限公司 一种动态展示绒柜

Also Published As

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JP5706477B2 (ja) 2015-04-22
WO2007054327A1 (de) 2007-05-18
JP2013240613A (ja) 2013-12-05
JP5367374B2 (ja) 2013-12-11
US8205845B2 (en) 2012-06-26
JP2009514633A (ja) 2009-04-09
US20080237413A1 (en) 2008-10-02
DE102005054010A1 (de) 2007-05-24

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