Three-part door hinge adjustable in three dimensions (3D)
11072954 · 2021-07-27
Inventors
Cpc classification
International classification
Abstract
A door hinge is disclosed having a frame hinge part and a leaf hinge part, which are pivotable in relation to one another about a pin on a pivot axis. The frame hinge part has an upper and lower housing, the leaf hinge part has a middle housing, insertable between the upper and the lower housing. The pin is insertable into the lower, the middle, and the upper housing, and rotatably mounted in the upper and lower housings. Two eccentricities are provided in the middle housing of the leaf hinge part. The middle housing can be clamped in a rotationally-fixed manner with the pin, so that the leaf hinge part is pivotable in relation to the frame hinge part about the pin. In the non-clamped state, the leaf hinge part is adjustable by means of the two eccentricities in two dimensions transverse to the pivot axis.
Claims
1. A three-part door hinge enabling pivoting of a leaf element in relation to a frame and about a pivot axis of the door hinge, comprising: a pin having a lower pin section, a middle pin section, and an upper pin section; a frame hinge part for fixing on a frame, the frame hinge part having an upper housing and a lower housing which are fixed at a defined distance and concentrically in relation to one another; an adjusting screw configured for adjusting an axial position of the pin relative to the frame hinge part; and a leaf hinge part for fastening on a leaf element, the leaf hinge part having a middle housing, which is arranged between the upper and the lower housings, wherein the pin extends through all housings, wherein the adjusting screw provides an adjustability of the door hinge in a first dimension parallel to the pivot axis, wherein two eccentricities of an eccentric bushing and the middle pin section are provided within a middle housing of the leaf hinge part, which interact such that a middle longitudinal axis of the middle housing is shiftable parallel to the pivot axis to any arbitrary point inside a virtual circular plane defined by the two eccentricities and aligned orthogonally to the pivot axis, resulting in an adjustability in two further dimensions orthogonal to the pivot axis, wherein the middle pin section is formed eccentrically with respect to the upper and the lower pin sections, wherein the middle pin section is enclosed by the eccentric bushing, wherein the eccentric bushing is in turn enclosed by the middle housing of the leaf hinge part, wherein the middle pin section, the eccentric bushing, and the middle housing of the leaf hinge part are connectable to one another in a rotationally-fixed manner, while the pin being mounted such that the upper pin section is located in the upper housing and the lower pin section is located in the lower housing so that the pin is rotatable about the pivot axis, wherein the lower pin section has a larger diameter than the middle pin section which has a larger diameter than the upper pin section, wherein the eccentric bushing rests with a lower end face on a lower shoulder of the pin and the middle housing has a collar which rests at least partially on the upper end face of the eccentric bushing, and wherein the upper pin section in the upper housing is enclosed by a driver bushing and the driver bushing and the eccentric bushing are connected to one another by at least one tongue-and-groove connection such that a rotational adjustment of one bushing is transferred to the other bushing.
2. The door hinge according to claim 1, wherein the pin has a thread that accommodates a lock element on its upper end, the lock element being a lock nut or a first lock screw, the lock element providing an adjustability of the eccentric, middle pin section and the eccentric bushing in a loosened state, and fixing an adjustment of the eccentric, middle pin section and the eccentric bushing in a tightened state.
3. The door hinge according to claim 1, wherein the pin has on its lower end face a drive profile for the rotational adjustment of the eccentrically formed middle pin section and the adjusting screw for the axial adjustment of the pin is designed as a hollow screw having a drive profile, wherein the drive profile represents a through-hole opening and is at least sufficiently larger than the drive profile of the pin so that a wrench matching with the drive profile of the pin is insertable through the drive profile of the adjusting screw and into the drive profile of the pin.
4. The door hinge according to claim 3, wherein at least one of thrust washers having through-hole openings and washers having through-hole openings are arranged between the pin and the adjusting screw, wherein the middle openings are dimensioned such that the wrench matching with the drive profile of the pin is insertable through the openings and into the drive profile of the pin.
5. The door hinge according to claim 1, wherein the adjusting screw is secureable using a second lock screw and the second lock screw is designed as a hollow screw having a drive profile, wherein the drive profile of the second lock screw represents a through-hole opening and is at least larger than a drive profile of the adjusting screw by at least an amount that allows a wrench matching with the drive profile of the adjusting screw to be guidable through the drive profile of the lock screw and to be inserted into the drive profile of the adjusting screw.
6. The door hinge according to claim 1, wherein the driver bushing protrudes with its upper end region beyond the upper end of the pin located therein, has, in this upper end region, a drive profile, for the rotational adjustment of the driver bushing and, via the at least one tongue-and-groove connection, also the eccentric bushing and wherein an internal diameter of the driver bushing in this end region is selected such that the lock element is insertable through the end region of the driver bushing and is screwable to the upper end of the pin.
7. A three-part door hinge enabling pivoting of a leaf element in relation to a frame and about a pivot axis of the door hinge, comprising: a pin having a lower pin section, the middle pin section, and an upper pin section; a frame hinge part for fixing on a frame, the frame hinge part having an upper housing and a lower housing which are fixed at a defined distance and concentrically in relation to one another; an adjusting screw configured for adjusting an axial position of the pin relative to the frame hinge part; and a leaf hinge part for fastening on a leaf element, the leaf hinge part having a middle housing, which is arranged between the upper and the lower housings, wherein the pin extends through all housings, wherein the adjusting screw provides an adjustability of the door hinge in a first dimension parallel to the pivot axis, wherein two eccentricities of an eccentric bushing and the middle pin section are provided within a middle housing of the leaf hinge part, which interact such that a middle longitudinal axis of the middle housing is shiftable parallel to the pivot axis to any arbitrary point inside a virtual circular plane defined by the two eccentricities and aligned orthogonally to the pivot axis, resulting in an adjustability in two further dimensions orthogonal to the pivot axis, wherein the middle pin section is formed eccentrically with respect to the upper and the lower pin sections, wherein the middle pin section is enclosed by the eccentric bushing, wherein the eccentric bushing is in turn enclosed by the middle housing of the leaf hinge part, wherein the middle pin section, the eccentric bushing, and the middle housing of the leaf hinge part are connectable to one another in a rotationally-fixed manner, the pin being mounted such that the upper pin section is located in the upper housing and the lower pin section is located in the lower housing so that the pin is rotatable about the pivot axis, wherein the lower pin section has a larger diameter than the middle pin section which has a larger diameter than the upper pin section, wherein the eccentric bushing rests with a lower end face on a lower shoulder of the pin and the middle housing has a collar which rests at least partially on the upper end face of the eccentric bushing, wherein the pin has a thread that accommodates a lock element on its upper end, the lock element being a lock nut or a first lock screw, and wherein the pin is fixedly held together with a driver bushing, the middle housing, and the eccentric bushing in a rotationally-fixed manner by the lock element, which is arranged inside the upper housing and is screwed together with the thread at the upper end of the pin, wherein the lock element presses against an offset of the driver bushing upon tightening.
8. A three-part door hinge for the purpose of enabling pivoting of a leaf element in relation to a frame and about a pivot axis of the door hinge, comprising: a pin; a frame hinge part for fixing on a frame, the frame hinge part having an upper housing and a lower housing, which are fixed at a defined distance and concentrically in relation to one another; and a leaf hinge part for fastening on a leaf element, the leaf hinge part having a middle housing, which is arranged between the upper and the lower housings; wherein the pin extends through all housings, wherein the door hinge further comprises an adjusting screw configured for adjusting an axial position of the pin relative to the frame hinge part, which results in an adjustability of the door hinge in a first dimension parallel to the pivot axis, wherein two eccentricities of an eccentric bushing and a middle pin section of the pin are provided within the middle housing of the leaf hinge part, which interact such that a middle longitudinal axis of the middle housing is shiftable parallel to the pivot axis to any arbitrary point inside a virtual circular plane defined by the two eccentricities and aligned orthogonally to the pivot axis, resulting in an adjustability in two further dimensions orthogonal to the pivot axis, wherein the pin has a lower pin section, the middle pin section, and an upper pin section, wherein the middle pin section is formed eccentrically with respect to the upper and the lower pin sections, wherein the middle pin section is enclosed by the eccentric bushing, wherein the eccentric bushing is in turn enclosed by the middle housing of the leaf hinge part, wherein the middle pin section, the eccentric bushing, and the middle housing of the leaf hinge part are connectable to one another in a rotationally-fixed manner, the pin being mounted such that the upper pin section is located in the upper housing and the lower pin section is located in the lower housing so that the pin is rotatable about the pivot axis, wherein the upper pin section in the upper housing is enclosed by a driver bushing and the driver bushing and the eccentric bushing are connected to one another by at least one tongue-and-groove connection such that a rotational adjustment of one bushing is transferred to the other bushing.
9. The door hinge according to claim 8, wherein the pin has a thread that accommodates a lock element on its upper end, the lock element being a lock nut or a first lock screw, wherein the lock element provides an adjustability of the eccentric middle pin section and the eccentric bushing in a loosened state, provides a fixing of an adjustment of the eccentric middle pin section and the eccentric bushing in a tightened state.
10. The door hinge according to claim 8, wherein the pin is fixedly held together with a driver bushing, the middle housing, and the eccentric bushing in a rotationally-fixed manner by a lock element, which is arranged inside the upper housing and is screwed together with the thread at the upper end of the pin, wherein the lock element presses against an offset of the driver bushing upon tightening, the lock element being a lock nut or a first lock screw.
11. The door hinge according to claim 8, wherein the pin has on its lower end face a drive profile for the rotational adjustment of the eccentrically formed middle pin section and the adjusting screw for the axial adjustment of the pin is designed as a hollow screw having a drive profile, wherein the drive profile is a through hole opening and is at least sufficiently larger than the drive profile of the pin so that a wrench matching with the drive profile of the pin is insertable through the drive profile of the adjusting screw and into the drive profile of the pin.
12. The door hinge according to claim 11, wherein at least one of thrust washers having through-hole openings and washers having through-hole openings are arranged between the pin and the adjusting screw, wherein the through-hole openings are dimensioned such that the wrench matching with the drive profile of the pin is insertable through the openings and into the drive profile of the pin.
13. The door hinge according to claim 8, wherein the adjusting screw is secureable using a second lock screw and the second lock screw is designed as a hollow screw having a drive profile, wherein the drive profile of the second lock screw is a through hole opening and is at least larger than a drive profile of the adjusting screw so that a wrench matching with the drive profile of the adjusting screw is guidable through the drive profile of the lock screw and is insertable into the drive profile of the adjusting screw.
14. The door hinge according to claim 8, wherein the driver bushing protrudes with its upper end region beyond the upper end of the pin located therein, has, in this upper end region, a drive profile, for the rotational adjustment of the driver bushing, and, via the at least one tongue-and-groove connection, also the eccentric bushing, and wherein an internal diameter of the driver bushing in this end region is selected such that the lock element is insertable through the end region of the driver bushing and is screwable to the upper end of the pin.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The device according to the invention will be described in greater detail solely by way of example hereafter on the basis of specific exemplary embodiments schematically illustrated in the drawings, wherein further advantages of the invention will also be discussed. In the specific figures
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DETAILED DESCRIPTION
(15) The structure and the functionality of the door hinge 1 according to the invention will be explained hereafter on the basis of
(16) The pin 4 has two shoulders 30, 32, which divide it into a lower pin section 13, a middle pin section 11, and an upper pin section 12. The pin 4 tapers at each of the shoulders 30, 32 in steps from the lower section 13 at the lower shoulder 32 toward the middle section 11 and from the middle section 11 at the upper shoulder 30 toward the upper section 12. In this case, the upper and the lower sections 12, 13 are concentric with respect to one another, but the middle section 11 is formed eccentrically with respect to the upper section 12 and with respect to the lower section 13.
(17) The frame hinge part 2 has two housings 5, 6 formed as hollow cylinders, which are referred to hereafter as the upper housing 5 and the lower housing 6. The housings 5, 6 are fixedly connected to one another by means of a web 28, wherein the web 28 fixes the housings 5, 6 at a defined distance and concentrically in relation to one another. The web 28 is additionally used for fixing the frame hinge part 2 on a door or window frame. The housings 5, 6 are each openly accessible axially from both sides.
(18) The two housings 5, 6 are optionally provided on the sides facing away from one another, in the respective end regions thereof, with internal threads, into which cover screws 23 can be screwed. The cover screws 23 close the upper and lower housings 5, 6 of the door hinge 1 and thus protect the assembled door hinge 1 from environmental influences, such as moisture, dust, and dirt, and prevent an escape of possible lubricant.
(19) The housings 5, 6 of the frame hinge part 2 are used to accommodate bearing bushings 18, 19, which are pressed in a rotationally-fixed manner into the housings 5, 6 in preassembly. The bearing bushings 18, 19 are dimensioned in this case so that the internal threads in the housings 5, 6 remain freely accessible for the cover screws 23 and possible further screws (see below). In the installed state, a driver bushing 15 is moreover mounted in the first bearing bushing 18 of the upper housing 5, which has at least one indentation or driver groove 16, which extends along a small circumferential segment of the driver bushing 15, on its lower end face, which is oriented toward the lower housing 6 in the installed state.
(20) The leaf hinge part 3 has a hollow-cylindrical housing 7, which is also accessible from both sides, and from which a flange 29 protrudes, which is used for fastening the leaf hinge part 3 on a door leaf or window sash, etc. The housing 7 is also referred to hereafter as the middle housing 7, because it is insertable between the upper housing 5 and the lower housing 6 of the frame hinge part 2 and therefore represents the middle housing 7 with respect to the entire door hinge 1 (see
(21) In
(22) The middle housing 7 is used to accommodate an eccentric bushing 14. It has a collar 27, which is used as the stop for the eccentric bushing 14, on its upper side, wherein the collar 27 only radially overlaps an outer edge of the upper end face of the eccentric bushing 14. The eccentric bushing 14 has at least one driver 17 extending axially beyond the end face on its upper end face, which can be formed as a pin, cam, or driver lug 17 (also referred to as lug 17 in short), which in the installed state engages, radially past the collar 27 of the middle housing 7 on the inside, in the corresponding at least one indentation/driver groove 16 (groove 16 in short) of the driver bushing 15 located above it—in the installed state—in the upper housing 5 (see
(23) Alternatively, the formation of the at least one lug 17 on the eccentric bushing 14 can also be formed as a pin incorporated into the eccentric bushing 14, wherein the pin is insertable on one side without play into a corresponding recess of the eccentric bushing 14. The pin is either plugged or screwed precisely fitted and detachably into the recess and can then be placed either preassembled in the recess or can be placed in the recess during the installation on location. In another variant, the pin is pressed, adhesively bonded, or welded into the recess. The pin can also be integrally formed with the eccentric bushing. With its opposite side, the at least one pin engages with play in the corresponding at least one indentation/driver groove 16 of the driver bushing 15 in the upper housing 5 located above it.
(24) In another alternative, the at least one tongue-and-groove connection is implemented structurally inverted, i.e., the eccentric bushing 14 has the at least one indentation/groove, while the driver bushing 15 has at least one lug or a cam or pin. The at least one driver 17 (lug/cam/pin) advantageously engages with some play in the at least one indentation/groove 16. The play is dependent in this case on the shape and size of the driver 17 and on the shape of the indentation/groove 16 and the geometrical dimensions of eccentric sleeve 14 and pin or eccentric middle pin section 11; or in other words on the eccentricity dimensions.
(25) In the example shown in
(26) To facilitate the installation of the door hinge 1, various elements of the door hinge are preassembled: In particular, the upper bearing bushing 18 is pressed into the upper housing 5 of the frame hinge part 2, while the driver bushing 15 is pivotably inserted into the upper bearing bushing 18 and secured against falling out—for example, by means of an O-ring. In addition, the eccentric bushing 14 is inserted pivotably into the middle housing 7 of the leaf hinge part 3 and also secured against falling out therein—for example, by means of an O-ring. Driver bushing 15 and eccentric bushing 14 can each have a corresponding ring groove 34, 36 for accommodating the O-ring (
(27) If the middle housing 7 of the leaf hinge part 3 is inserted between the two housings 5, 6 of the frame hinge part 2, the pin 4 can be inserted into all three housings 5, 6, 7 and/or into the bushings 19, 14, 15/18 mounted in the housings. The pin 4 can be secured in the housings 6, 7, 5 by screwing an adjusting screw 8 into the internal thread, which is accessible from below, of the lower housing 6. A lock screw 9 can optionally be provided for securing the adjusting screw 8. Adjusting screw 8 and lock screw 9 are embodied as hollow screws having continuous, central middle opening, wherein the middle openings each have a drive profile 80, 90 for the interaction with a corresponding wrench for pivoting the screws 8, 9 (
(28) Optionally, a snap ring and a circumferential groove in the pin 4 and, at the same height, a ring groove in the corresponding bushing 15, 14, 19 can be provided as a break-in safeguard 60, 61, 62, 63, as shown in
(29) As a break-in safeguard 60, 61, 62, 63, before the insertion of the pin 4 into the housings 5, 7, 6, a snap ring is pressed into the circumferential groove of the pin 4, as shown in enlarged form by way of examples in
(30) The break-in safeguard 60, 61 is preferably located in the region of the upper pin section 12, as shown in
(31) A break-in safeguard 61 in the lower region of the upper pin section 12 is also conceivable, as described in greater detail under the reference sign 61 in
(32) As shown by way of example in
(33) In a further variant, a break-in safeguard 62 is provided in the middle section 11 of the pin 4, as shown in
(34) It is also conceivable to provide a break-in safeguard 63 in the lower pin section 13, which secures the pin 4 axially in the bearing bushing 19 in the lower housing 6 of the frame part 2. The snap ring can then simply be pushed from below over the lower pin end before the installation and pressed into the circumferential groove of the lower pin section 13. The statements above apply again with respect to play of the snap ring in circumferential groove and ring groove.
(35) In order that the axial adjustability remains unobstructed in spite of axial securing of the pin 4, enough play is provided in the axial direction for the snap ring in the circumferential groove and the ring groove as is provided by the adjusting screw 8 in axial adjustability for the door hinge 1. The play in the axial direction for the snap ring in the circumferential groove and the ring groove is provided above all in the last-mentioned variants with the break-in safeguard 63 in the lower pin section 13, but can also be provided in all other variants, which simplifies the production.
(36) The pin 4 is rotatably mounted in the assembled state in the lower housing 7, more precisely in its lower bearing bushing 19 and on the adjusting screw 8—or on washers 22 and/or thrust washers 20, 21 arranged between the pin 4 and adjusting screw 8. The concentric axes of the upper section 12 and the lower section 13 of the pin 4 then form the pivot axis S of the door hinge 1 in the installed state, about which the leaf element fastened on the leaf hinge part 3 is pivotable.
(37) The pin 4 secured in the three housings 5, 6, 7 is thus inserted in the assembled state of the door hinge 1 at least with a large part of its lower section 13 into the lower bearing bushing 19 of the lower housing 6 (see
(38) In general, the internal diameter of the driver bushing 15 approximately corresponds to the external diameter of the upper pin section 12 or is minimally larger than this diameter, so that the pin 4 is pivotably mounted in principle with its upper section 12 in the driver bushing 15.
(39) The pin 4 is provided at the upper end of its upper section 12 with a thread, which is used to accommodate a lock element 10. In most of the examples shown here, the lock element 10 is designed as a lock nut 10′, for example, as also in
(40) By way of the clamping described hereafter of the pin 4 with the leaf hinge part 3, the pin 4 is connected in a rotationally-fixed manner to the leaf hinge part 3 and therefore to a leaf element (not shown) fastened on the leaf hinge part 3, whereby the leaf element fastened on the leaf hinge part 3 is pivotable about the pivot axis S.
(41) The pin 4 is clamped in the following manner with the middle housing 7 of the leaf hinge part 3.
(42) The lock element 10 screwed onto the thread of the upper pin section 12 is accessible from above through the upper housing 5 and the upper end region 50′ of the driver bushing 15. It has the drive profile 100 for adjustment, for example, a hex socket or star, so that tightening or loosening of the lock element 10 is possible using a corresponding hex wrench or star wrench by access from above through the upper housing 5 and the enlarged internal diameter in the end region 50′ of the driver bushing 15. By way of the tightening of the lock element 10, on the one hand, the pin 4 is drawn upward, on the other hand, the lock element 10 is pressed downward, against the offset 38 of the driver bushing 15 used as the buttress. Furthermore, the driver bushing 15 is thus pressed downward against the collar 27 of the middle housing 7, which presses the eccentric bushing 14 located therein against the lower shoulder 32 of the pin 4. Therefore, the following components of the three-part door hinge 1 are clamped to form a packet by the tightening of the lock element 10: pin 4, middle housing 7, eccentric bushing 14 located in the middle housing, driver bushing 15 located in the upper housing 5. In the operationally-ready state, the lock element 10 is tightened, so that in the operationally-ready state, the pin 4 forms a unit by means of clamping with the following components of the door hinge 1: with the middle housing 7, with the eccentric bushing 14 enclosing the middle pin section 11, with the driver bushing 15 enclosing the upper pin section 12, and with the lock nut 10′ or lock screw 10″ causing the clamping as the lock element 10.
(43) The driver bushing 15 together with the upper pin section 12 can still rotate freely in the upper bearing bushing 18 of the upper housing 5, however, and the lower pin section 13 is also still freely rotatable in the lower bearing bushing 19 and freely rotatable on the adjusting screw 8 or the thrust washers 20, 21 and washers 22 in the lower housing 6. Because of this rotation freedom and because of the clamping of the pin 4 with the middle housing 7 of the leaf hinge part 3, it is ensured that pin 4 rotates in relation to the frame hinge part 2 upon pivoting of the leaf element and thus the leaf element is pivotable about the pivot axis S of the door hinge 1. Washers 22 and thrust washers 20, 21 are optionally provided between the lower part of the pin 13 and the adjusting screw 8 to absorb the pressure and friction forces during this rotation.
(44) A course, it is also possible to design the lock element 10 as a lock screw 10″, as shown in
(45) The thrust washers 20, 21 and the washers 22 have central, through-hole openings 45, 46, which are dimensioned so that the wrench matching with the drive profile 40 of the pin 4 can be guided through these middle openings 45, 46 and the pin 4 can be pivoted.
(46) In one particular embodiment, the thrust washers 20, 21 have distribution grooves for an optimum distribution of a lubricant, as also described, for example, in EP 2586944 of the same applicant. Using a tip of a corresponding lubricant container designed as a spray nozzle, the continuous, central middle openings 46 of the thrust washers 20, 21 can be accessed through the lock screw 9 and adjusting screw 8 designed as hollow screws or through the drive profiles 90, 80 thereof, respectively, and lubricant can be introduced. The supply with lubricant is very conveniently and easily possible in a door hinge 1 thus designed, since only the lower cover screw 23 has to be unscrewed from the door hinge 1 for this purpose.
(47) The adjusting screw 8 and the optional lock screw 9 are used, in addition to absorbing the load of the leaf element, also for the axial adjustment of the pin 4 and therefore—with vertical installation—for a vertical adjustment of the leaf element (door leaf/window sash). The adjusting screw 8 and the optional lock screw 9 are designed as hollow screws having pervasive middle opening, wherein the middle openings are each formed as drive profiles 80, 90, respectively. For the axial adjustment of the pin 4, firstly the countering is loosened at the lock screw 9 in the lower housing 6 and then the desired axial position is set using the adjusting screw 8. In order that the lock screw 9 does not have to be entirely unscrewed from the lower housing 6 for the adjustment, in order to reach the adjusting screw 8, the drive profile 90 of the lock screw 9 is larger than the drive profile 80 of the adjusting screw 8. It thus has, for example, a wrench width of a hex socket or star profile which is larger by 1 to 2 numbers. In this manner, after the loosening of the lock screw 9, the drive profile 80 of the adjusting screw 8 can be accessed using a matching wrench corresponding to the drive profile 80 of the adjusting screw 8 through the lock screw 9 or through the drive profile 90 formed as the middle opening, and the adjusting screw 8 can be adjusted. Using the corresponding larger wrench matching with the drive profile 90 of the lock screw 9, after the adjustment of the adjusting screw 8, the lock screw 9 can be tightened again and the performed setting can thus be secured. As indicated above, although the lock screw 9 is shown in all of the figures, the lock screw 9 is optional: it is clear to a person skilled in the art that the functionality is also secured solely via an adjusting screw 8. Only the permanent maintenance of the selected setting is somewhat less secure without lock screw.
(48) If the described clamping by means of the lock element 10 is loosened, the leaf element can thus be translationally adjusted in two dimensions orthogonal to the pivot axis S by the mechanisms described hereafter of the door hinge 1 according to the invention.
(49) As already described above and shown once again clearly in
(50) This rotational adjustment takes place, as already described above, on the one hand by means of a corresponding wrench via the drive profile 50 of the driver bushing 15, which it has at the upper end 50′ thereof. In particular, this drive profile 50 is also a hex socket, star socket, etc., which is again dimensioned sufficiently large that, on the one hand, the lock element 10 passes through it and, on the other hand, the lock element 10 can be reached using a profiled tool matching correspondingly to its drive profile 100, 100′. The driver bushing 15 is moreover, as also already described above, sufficiently long that it protrudes beyond the upper part of the pin 12, so that the drive profile 50 thereof can readily be reached and used as intended via the lock element 10.
(51) If—as stated—the clamping of the “packet” is thus disengaged by loosening the lock element 10, on the one hand, the driver bushing 15 can be pivoted using a tool, which as a consequence also pivots the eccentric bushing 14 and results in an adjustment of a first eccentricity 14′. On the other hand—simultaneously or sequentially—the rotational location of the pin 4 can be adjusted independently of the adjustment of the eccentric bushing 14, which results in particular in a rotational adjustment of the eccentric middle pin section 11 in the eccentric bushing 14 and thus in the adjustment of a second eccentricity 11′.
(52) This rotational adjustment of the pin 4 is brought about by inserting a matching wrench through the lower end of the lower housing 6 in the middle openings of adjusting screw 8 and optional lock nut 9, thrust washers 20, 21, and washers 22 into the drive profile 40 of the pin 4 located in the lower end of the lower pin section 13 and pivoting the pin 4 with the aid of the wrench. The drive profile 40 is again, for example, a hex socket, star socket, etc., which is correspondingly small in relation to the middle openings 45 of the washers 22 and the middle openings 46 of the thrust washers 20, 21 and also in relation to the middle openings or drive profiles 80, 90 of the lock screw 9 and adjusting screw 8 designed as hollow profile screws so that the matching wrench fits through all of these middle openings 45, 46 or drive profiles 80, 90, respectively, and can be inserted into the drive profile 40 of the pin 4. By pivoting the wrench in the drive profile 40 of the pin 4, the rotational location of the pin 4 can be adjusted unobstructed.
(53) The pin 4 is preferably integrally formed, i.e., the upper pin section 12, the middle pin section 11, and the lower pin section 13 are formed from one piece, for example, by turning or casting, or the pin sections 12, 11, 13 are manufactured as separate parts and are connected to one another in an axially-fixed and rotationally-fixed manner.
(54) The adjustment of the rotational location of the pin 4 adjusts—independently of the first eccentricity 14′—the second eccentricity 11′, namely the eccentric middle pin section 11. By way of the adjustment of the two eccentricities 14′, 11′, the middle longitudinal axis T of the middle housing 7—and with it the middle housing 7 of the leaf hinge part 3 and the leaf element (door leaf/window sash) fixedly connected to the leaf hinge part—can be displaced parallel to the pivot axis S of the door hinge 1; specifically within a circular area F, which is defined by the two eccentricities 11′, 14′ and is perpendicular to the pivot axis S of the door hinge 1, to an arbitrary point, wherein the center of the circular area F is the pivot axis S (
(55) If a desired adjustment has been successfully performed via the drive profile 50 of the driver bushing 15 and via the drive profile 40 at the lower end of the lower pin section 13, this setting is “frozen” by means of the lock element 10, i.e., the “packet” is clamped.
(56) All adjustments and the subsequent fixing of these adjustments—i.e., both the adjustment in the axial direction (first dimension) and also the two adjustments orthogonal to the axis S (second and third dimensions)—are possible without taking a leaf element fixedly connected to the leaf hinge part (3) off of the hinge and without removing the three-part door hinge 1.
(57) The adjustability is different depending on the dimension of the door hinge 1. In one preferred embodiment, the door hinge 1 is axially adjustable by approximately ±4 mm. In this embodiment, any point within a theoretical circle of in particular approximately 03.2 mm about the pivot axis S can be set orthogonally to the pivot axis.
(58) However, other adjustment distances can also be implemented depending on the dimension of the door hinge.
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(63) Correspondingly,
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(65) The advantages of this three-part door hinge are: its adjustability in three dimensions, wherein all adjustments and the subsequent fixing of these adjustments can be carried out without taking a leaf element fixedly connected to the leaf hinge part off of the hinge; its elegant appearance, which is enabled by the complete integration of the adjustment mechanism and also the mechanism for fixing and loosening the adjustment in the interior of the housing of the door hinge; the possibility of firstly fixing leaf hinge part and frame hinge part separately from one another on the desired frame or leaf element, respectively, and only finishing assembling the door hinge on location when the leaf element is supplied to the frame and more or less inserted therein, and, in a special embodiment, the possibility of also securing the door against break-in by means of the door hinge, and, in a further special embodiment, the possibility of protecting the door hinge by means of cover screws from environmental influences, such as moisture and/or introduction of dust and/or also preventing the escape of lubricant by way of the cover screws.
(66) It is obvious that the exemplary embodiments shown and explained above are illustrated solely schematically. In particular, it is to be noted that details which are explicitly illustrated and explained in the context of the scope of protection of the patent claims are usable both separately from one another and also in any combination with one another.