DK180976B1 - Actuator for fluid flow controllers - Google Patents

Actuator for fluid flow controllers Download PDF

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Publication number
DK180976B1
DK180976B1 DKPA202000562A DKPA202000562A DK180976B1 DK 180976 B1 DK180976 B1 DK 180976B1 DK PA202000562 A DKPA202000562 A DK PA202000562A DK PA202000562 A DKPA202000562 A DK PA202000562A DK 180976 B1 DK180976 B1 DK 180976B1
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DK
Denmark
Prior art keywords
insert
channel
toothed
actuator
drive shaft
Prior art date
Application number
DKPA202000562A
Other languages
Danish (da)
Inventor
Melvad Claus
Melvad Peter
Original Assignee
Rotiny Aps
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 Rotiny Aps filed Critical Rotiny Aps
Priority to DKPA202000562A priority Critical patent/DK180976B1/en
Priority to EP21726587.5A priority patent/EP4150232A1/en
Priority to PCT/EP2021/062360 priority patent/WO2021228781A1/en
Publication of DK202000562A1 publication Critical patent/DK202000562A1/en
Application granted granted Critical
Publication of DK180976B1 publication Critical patent/DK180976B1/en

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Classifications

    • 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
    • F16HGEARING
    • F16H19/00Gearings comprising essentially only toothed gears or friction members and not capable of conveying indefinitely-continuing rotary motion
    • F16H19/001Gearings comprising essentially only toothed gears or friction members and not capable of conveying indefinitely-continuing rotary motion for conveying reciprocating or limited rotary motion
    • 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
    • F16KVALVES; TAPS; COCKS; ACTUATING-FLOATS; DEVICES FOR VENTING OR AERATING
    • F16K31/00Actuating devices; Operating means; Releasing devices
    • F16K31/02Actuating devices; Operating means; Releasing devices electric; magnetic
    • F16K31/04Actuating devices; Operating means; Releasing devices electric; magnetic using a motor
    • F16K31/041Actuating devices; Operating means; Releasing devices electric; magnetic using a motor for rotating valves
    • 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
    • F16DCOUPLINGS FOR TRANSMITTING ROTATION; CLUTCHES; BRAKES
    • F16D1/00Couplings for rigidly connecting two coaxial shafts or other movable machine elements
    • F16D1/10Quick-acting couplings in which the parts are connected by simply bringing them together axially
    • F16D1/101Quick-acting couplings in which the parts are connected by simply bringing them together axially without axial retaining means rotating with the coupling
    • 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
    • F16KVALVES; TAPS; COCKS; ACTUATING-FLOATS; DEVICES FOR VENTING OR AERATING
    • F16K31/00Actuating devices; Operating means; Releasing devices
    • F16K31/02Actuating devices; Operating means; Releasing devices electric; magnetic
    • F16K31/04Actuating devices; Operating means; Releasing devices electric; magnetic using a motor
    • F16K31/05Actuating devices; Operating means; Releasing devices electric; magnetic using a motor specially adapted for operating hand-operated valves or for combined motor and hand operation
    • F16K31/055Actuating devices; Operating means; Releasing devices electric; magnetic using a motor specially adapted for operating hand-operated valves or for combined motor and hand operation for rotating valves
    • 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
    • F16DCOUPLINGS FOR TRANSMITTING ROTATION; CLUTCHES; BRAKES
    • F16D1/00Couplings for rigidly connecting two coaxial shafts or other movable machine elements
    • F16D1/10Quick-acting couplings in which the parts are connected by simply bringing them together axially
    • F16D2001/102Quick-acting couplings in which the parts are connected by simply bringing them together axially the torque is transmitted via polygon shaped connections

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  • Engineering & Computer Science (AREA)
  • General Engineering & Computer Science (AREA)
  • Mechanical Engineering (AREA)
  • Electrically Driven Valve-Operating Means (AREA)

Abstract

The present invention relates to an actuator comprising a) a housing or mounting plate; b) a ring- or tube-shaped drive shaft rotatably mounted in/on said housing or mounting plate; said drive shaft having a toothed channel; c) an electric motor unit positioned within said housing or on said mounting plate, and indirectly or directly adapted to transfer a torque to said drive shaft; d) a ring- or tube-shaped first insert comprising i) a channel adapted for receiving a rotatable shaft of a fluid flow controller; and ii) a toothed outer face complementary in shape to said toothed channel; wherein said first insert is adapted for insertion into and for releasably engagement with said toothed channel; and e) a mechanism adapted for preventing said first insert from passing through said toothed channel.

Description

DK 180976 B1 Technical field of the invention The present invention relates to actuators for fluid flow controllers, such as damper or HVAC actuators.
Background of the invention All actuators for fluid flow controllers, such as damper actuators, comprise an electric motor, a gearing, a motor driver circuit, a housing, and a mounting system fitted for the shaft of the fluid flow controller. In addition, damper actuators further often comprise various mechanisms e.g. for smart control, mounting, fault protection, and voltage conversion. The damper shafts are marketed in different designs, such as D-profile, square profile, and plate-shaped. In order to handle the many different damper shaft profiles, some damper actuators are provided with an adaptor, which is mounted with a shackle or a locking ring that holds the damper shaft (see e.g. WO2013013334, US2019024819). However, mounting the adaptor with a shackle or locking ring is difficult and increases the mounting time. Furthermore, there is a risk of the shackle breaking, and the installer might lose the locking ring or the tools with which he or she is working. This solution is also difficult to use for thin damper actuators, which many customers prefer. This solution requires a separate gear release solution. Finally, this is an expensive solution as it requires many parts to manufacture and assemble.
Other solutions have a universal hole in which to tighten a screw, bracket or jaws to the damper shaft (see e.g. WO2013013334, WO2007006162, CN103282677). A universal hole in which the damper shaft is clamped is even more difficult to install than a shackle and also increases the installation time, especially if there is no separate gear release and the damper actuator must be mounted
> DK 180976 B1 horizontally.
Yet other solutions provide the same damper actuator in different versions for the different damper shaft profiles.
Selling the same damper actuator in different versions is the most expensive solution of all as it requires a larger product range and stock, and the production costs are markedly increased relative to the other solutions.
Furthermore, this solution still requires a separate gear release mechanism.
During mounting of the damper actuator, it is advantageous to be able to place the damper actuator on the damper shaft facing in the direction in which the clamping points are located.
In order to be able to mount the damper actuator pointing in different directions, some have a gear release that is triggered by a magnet or a mechanical push button (se e.g.
WO2005090831, and US10295215). However, a gear release with magnets results in the consumption of large amounts of rare earth/precious metal, and there is a risk of erasing the microcontroller's programming, if the magnet is held in the wrong place by accident or ignorance.
This fault will be hard to detect in the quality assurance because it can also result in a periodic error, resulting in a complex fault-finding procedure.
A mechanical push button takes up significant space and is therefore difficult to implement in thin damper actuators, which many customers prefer.
Moreover, this is an expensive solution as it requires many parts to manufacture and assemble.
Other solutions are provided with an input to a cog in the middle of the gear chain, which can be turned manually, e.g. with a screwdriver.
However, having to turn the gears with a screwdriver is considered a hassle, is difficult to adjust properly, and increases the mounting time considerably.
The technician also needs more space to handle the proper tools for this kind of operation inside e.g. an HVAC unit.
Again, other solutions use a universal clamping and mounting method (see e.g.
WO2013013334, WO2007006162, and CN103282677), where the clamp is tightened around the damper shaft after the damper actuator has been mounted,
2 DK 180976 B1 such that said damper actuator is pointing in the intended direction. However, if using a universal hole, one will have to wait with the tightening operation of the damper actuator on the damper shaft before screwing the damper actuator onto the damper, which is a hassle as it requires three hands to keep it all in place while mounting. The technician also needs more space to handle the proper tools for this kind of operation inside e.g. an HVAC unit. Many damper actuators come in clockwise and counterclockwise versions. Some have a dial that switches between the direction of rotation (WO2013013334).
Selling the same damper actuator in different versions is the most expensive solution of all as it requires a larger product range and stock, and the production costs are markedly increased relative to the other solutions. This also forces customers to purchase smaller quantities, thereby obtaining smaller discounts.
A rotary knob that changes the direction of rotation is an expensive solution as it requires many parts to manufacture. Furthermore, there is a risk of turning too far which damages the damper actuator.
The damper actuator can also be reversed electrically by switching around the signal wires. Switching around the signal wires is not always an acceptable solution as it increases the risk of product failure, as the installer who performs monotonous work risks connecting the cables incorrectly if it is not following a fixed color code system that further requires extra documentation work. This extra documentation work forces a customer to have more wiring/electrical diagrams for their systems to track and update. Further, as most damper actuators are not symmetrical, this strategy is not an option for many customers due to mounting space restrictions.
US2017241560 discloses a valve actuator assembly that include an actuator and an actuator mounting assembly. The actuator mounting assembly may be secured to a valve shaft without the actuator present, and the actuator may be secured to the actuator mounting assembly later. This can make it easier to mount the actuator mounting assembly, especially in cramped spaces. In some
1 DK 180976 B1 cases, the actuator may be wired where it is convenient, and then moved to the actuator mounting assembly and secured to the mounted actuator mounting assembly, sometimes with a simple snap attachment. In some cases, a button, lever, or other mechanism may release the actuator from the actuator mounting assembly for easy removal.
Description of the invention It is an object of the present invention to overcome the above-mentioned problems. The present invention provides a smarter way to mount an actuator to a rotatable shaft by providing a novel mounting system. One aspect relates to an actuator comprising: - a housing or mounting plate; - a ring- or tube-shaped drive shaft rotatably mounted in/on said housing or mounting plate; said drive shaft having a toothed channel; - an electric motor unit positioned within said housing or on said mounting plate, and indirectly or directly adapted to transfer a torque to said drive shaft; - a ring- or tube-shaped first insert comprising a) a channel adapted for receiving a rotatable shaft of a fluid flow controller; and b) a toothed outer face complementary in shape to said toothed channel; wherein said first insert is adapted for insertion into and for releasably engagement with said toothed channel; and - a mechanism adapted for preventing said first insert from passing through said toothed channel.
A method for mounting the actuator of the present invention may comprise the steps of: - determining the profile of said rotatable shaft; - selecting a ring- or tube-shaped first insert having a channel adapted for receiving said rotatable shaft, said channel being complementary in shape to på DK 180976 B1 said profile of said rotatable shaft; said first insert having a toothed outer face; - mounting said first insert over said rotatable shaft such that the shaft extends through said channel of said first insert; - providing a housing or mounting plate with a ring- or tube-shaped drive shaft rotatably mounted in/on a housing or mounting plate; said drive shaft having a toothed channel complementary in shape to said toothed outer face of said insert; - mounting said drive shaft onto said first insert, such that said drive shaft enters said toothed channel, wherein a mechanism is adapted for preventing said first insert from passing through said toothed channel; and - fastening said housing or mounting plate to a substrate that does not rotate with said rotatable shaft.
It is contemplated that the drive shaft may be used to drive the rotatable shaft of any suitable fluid flow controller, including but not limited to water valves within hydronic heating and/or cooling systems, other fluid or gas valves, and/or any other actuatable valve as desired.
The term "fluid flow controller” may encompass any actuatable valve, such as air dampers, water valves, gas valves, ventilation flaps, louvers, and/or other actuatable valves that help regulate or control the flow of fluid in e.g. an HVAC system.
In one or more embodiments, the actuator further comprises a kit of first inserts, each of said first inserts having a channel adapted for receiving a rotatable shaft of a fluid flow controller of a different profile than the other of said first inserts in said kit.
In one or more embodiments, the step of selecting said first insert comprises selecting said first insert from a kit of first inserts, each of said first inserts having a channel adapted for receiving a rotatable shaft of a fluid flow controller of a different profile than the other of said first inserts in said kit.
p DK 180976 B1 In general, in a first alternative, one end of the first insert comprises a guide recess with a stop, and wherein the housing or mounting plate comprises a guide pin adapted for moving within said guide recess and to engage with said stop, thereby allowing said drive shaft to rotate a predefined number of degrees around its axis of rotation. This configuration allows the user or manufacturer to define the allowable degrees of rotation that the drive shaft can move the rotatable shaft of the fluid flow controller. In one or more embodiments, the mechanism comprises that one end of said first insert comprises a stop pin or plate adapted for engaging with an end of said drive shaft.
In one or more embodiments, the mechanism comprises that said first insert and said toothed channel are both conical in shape. This configuration may be used in conjunction with one end of said first insert comprising a stop pin or plate adapted for engaging with an end of said drive shaft.
In one or more embodiments, the mechanism comprises that said first insert is conical in shape and of a length corresponding to maximum half of said toothed channel, and wherein said toothed channel is biconical in shape and adapted for receiving said first insert via one or both ends. This configuration may be used in conjunction with one end of said first insert comprising a stop pin or plate adapted for engaging with an end of said drive shaft.
In one or more embodiments, the mechanism comprises that said first insert is conical in shape and of a length corresponding to less than the total length of said toothed channel, and wherein said toothed channel is biconical in shape and adapted for receiving said first insert via one or both ends. This configuration may be used in conjunction with one end of said first insert comprising a stop pin or plate adapted for engaging with an end of said drive shaft. One part of the toothed biconical channel may have one type of teeth, while the other has a
, DK 180976 B1 second type of teeth. Similarly, the first insert may have teeth corresponding to the one or the other biconical part of the toothed biconical channel, while another component, such as the below mentioned second insert may have teeth corresponding to the opposite biconical part of the toothed biconical channel.
In one or more embodiments, the first insert is of a length corresponding to maximum half of said toothed channel or alternatively being of a length corresponding to less than the total length of said toothed channel. These configurations allows the user to decide if the insert should be inserted into one or the other end of the toothed channel and may be an advantage if the rotatable shaft should be worked in a clockwise direction or in a counter-clockwise direction. However, such a solution is primarily necessary when the first insert and toothed channel are conical in shape. In general, and in a second alternative, the actuator may further comprise a ring- or tube-shaped second insert comprising a) a toothed outer face complementary in shape to said toothed channel, and adapted for insertion into and for releasably engagement with said toothed channel in the opposite end than said first insert, and b) a guide recess with a stop; wherein said housing or mounting plate comprises a guide pin adapted for moving within said guide recess and to engage with said stop, thereby allowing said drive shaft to rotate a predefined number of degrees around its axis of rotation. This configuration allows the user or manufacturer to define the allowable degrees of rotation that the drive shaft can move the rotatable shaft of the fluid flow controller.
When the second alternative is used, the method for mounting the actuator of the present invention further comprises the step of inserting a second insert into the toothed channel in the opposite end than said first insert.
It should be noted that embodiments and features described in the context of one of the aspects of the present invention also apply to the other aspects of the invention.
8 DK 180976 B1 Brief description of the figures Figure 1 shows a mounting system in accordance with various embodiments of the invention; Figure 2 shows a drive shaft in accordance with various embodiments of the invention; Figure 3 shows a cross-sectional view of a drive shaft in accordance with various embodiments of the invention; Figures 4A and 4B show perspective views of an insert in accordance with various embodiments of the invention;
Figures 5A-5D show perspective views of an insert in accordance with various embodiments of the invention; Figures 6 shows a second insert in accordance with various embodiments of the invention; Figure 7 shows an exploded view of the mounting system and second insert in accordance with various embodiments of the invention; Figure 8 shows the second insert connected to the mounting system in accordance with various embodiments of the invention; Figure 9 shows the mounting system, electric motor, and gearing relative to a rotatable shaft of a fluid flow controller;
o DK 180976 B1 Figure 10 shows a first side view of the actuator in accordance with various embodiments of the invention mounted on a rotatable shaft of a fluid flow controller; and Figure 11 shows a second side view of the actuator in accordance with various embodiments of the invention mounted on a rotatable shaft of a fluid flow controller.
Detailed description of the invention
The following description is to be seen as a non-limiting example of an actuator according to various embodiments of the present invention.
All actuators for fluid flow controllers, such as damper actuators, comprise an electric motor, a gearing, a motor driver circuit, a housing, and a mounting system fitted for the shaft of the fluid flow controller.
The actuator 100 of the present invention comprises a mounting system comprising a ring- or tube- shaped drive shaft 300 and a first insert 600 (Figure 1, exploded view). The drive shaft 300 (see also Figure 2) has a toothed channel 310 and is shown with a toothed outer face 320, here embodied as two rings delimiting a guide track 330 for the gearing 500 (only shown in Figure 9). In Figure 3, a cross-section of the drive shaft 300 is shown.
The toothed channel 310 is biconical in shape and adapted for receiving the first insert 600 via both ends.
The first insert 600 is adapted for insertion into and for releasably engagement with the toothed channel 310. This is possible as its toothed outer face 620 is complementary in shape to the toothed channel 310. The first insert 600 also comprises a channel 610 adapted for receiving a rotatable shaft 10 of a fluid flow controller.
This channel 610 can have any suitable form and is formed according to the profile of the rotatable shaft 10. The embodiment shown in Figure 1 is a square profile rotatable shaft 10 and a first insert 600 with a square channel 610. It is important that the channel 610 finish close around the rotatable shaft 10, as the forces from actuator's motor 500 are transferred to the rotatable shaft 10 via
0 DK 180976 B1 said first insert 600. Hence, the channel walls will have to engage with the rotatable shaft 10 in order to rotate it. One exception from this is when the shaft has to be moved in a circular path, as e.g., dragged in a circular guide recess. Here, the shaft has a circular profile and the channel 610 (see Figure 5C) is positioned Examples of channel shapes are shown in Figures 4 and 5. The first insert 600 is to be mounted over the rotatable shaft 10 such that the shaft 10 extends through said channel 610. The multitude of teeth on both the first insert 600 and the toothed channel 310 allows a user to easily couple the two parts together.
Finally, the first insert 600 is shown with a stop plate/rim 630 adapted for engaging with an end of said drive shaft 300. Thereby, the first insert 600 will be held in place and cannot move through the toothed channel 310. Figures 6 shows a second insert 700 in accordance with various embodiments of the invention. The second insert 700 is ring- or tube-shaped and adapted for insertion into and for releasably engagement with the toothed channel 310. The second insert 700 is intended for insertion in the opposite end of the toothed channel 310 than the first insert 600 as seen in Figures 7-9, and 11. The second insert 700 comprises a) a toothed outer face 710 complementary in shape to said toothed channel 310, and b) a guide recess 720 with a stop 730. The main purpose of the second insert is to aid in a controlled rotation of the fluid flow controller within the piping or duct in which it is acting. This is done by restricting the drive shaft's 300 possibility to rotate. Hence, the housing or mounting plate 200 is provided with a guide pin 210 (Figure 10 and 11) adapted for moving within said guide recess 720 and to engage with said stop 730, thereby allowing the drive shaft 300 to rotate a predefined number of degrees around its axis of rotation. The housing or mounting plate 200 is provided with a mounting hole
220.
Figure 10 shows a first side view of the actuator 100 in accordance with various embodiments of the invention mounted on a rotatable shaft 10 of a fluid flow
1 DK 180976 B1 controller.
Figure 11 shows a second side view of the actuator 100 in accordance with various embodiments of the invention mounted on a rotatable shaft 10 of a fluid flow controller.
As can be seen, the rotatable shaft 10 can be worked in a clockwise direction or in a counterclockwise direction depending on which side of the housing that is facing it.
The first 600 and second 700 inserts should just be inserted accordingly.
The features of the second insert may also be built into the first insert 600, but it will be more difficult for the user to see how the guide recess is positioned relative to the rotatable shaft.
1 DK 180976 B1 References 10 Rotatable shaft 100 Actuator 200 Housing/mounting plate 210 Guide pin 220 Mounting hole 300 Drive shaft 310 Channel 320 Outer face 330 Guide channel 400 Motor unit 500 Gear 600 First insert 610 Channel 620 Outer face 630 Stop plate/rim 700 Second insert 710 Outer face 720 Guide recess 730 Stop

Claims (8)

13 DK 180976 B1 PATENTKRAV13 DK 180976 B1 PATENT CLAIM 1. Aktuator (100), omfattende: - et hus eller en monteringsplade (200); - en ring- eller rørformet drivaksel (300), som roterbart er monteret i/på huset eller monteringspladen (200); hvor drivakslen (300) har en tandet kanal (310); - en elektrisk motorenhed (400), som er positioneret inde i huset eller på monte- ringspladen (200) og indirekte, via et gear (500), eller direkte er indrettet til at over- føre et drejningsmoment til drivakslen (300); - en ring- eller rørformet første indsats (600), som omfatter a) en kanal (610), som er indrettet til at optage en roterbar aksel (10) i en væskestrømsregulator; og b) en tandet ydre flade (620), som er komplementær i form med den tandede kanal (310), hvor den første indsats (600) er indrettet til indføring i og løsbart indgreb med den tandede kanal (310); og - en mekanisme, som er indrettet til at forhindre den første indsats (600) i at passere gennem den tandede kanal (310); kendetegnet ved, at enten i) en ende af den første indsats (600) omfatter en styrereces med et stop, og hvor huset eller monteringspladen (200) omfatter en styretap (210), som er indrettet til at bevæge sig inde i styrerecessen og til at gå i indgreb med stoppet, hvorved det gøres muligt for drivakslen (300) at rotere et forudbestemt antal grader om sin rotationsakse; eller ii) når den første indsats er af en længde svarende til mindre end den samlede længde af den tandede kanal, omfatter aktuatoren endvidere en ring- eller rørformet anden indsats (700), som omfatter a) en tandet ydre flade (710), som er komplementær i form med den tandede kanal (310) og er indrettet til indføring i og til løsbart indgreb med den tandede kanal (310) i den modsatte ende end den første indsats (600), og b) en styrereces (720) med et stop (730); hvor huset eller monteringspladen (200) omfatter en styretap (210), som er indrettet til at bevæge sig inde i styrerecessen (720) og til at gå i indgreb med stoppet (730), hvorved det1. Actuator (100), comprising: - a housing or mounting plate (200); - an annular or tubular drive shaft (300) which is rotatably mounted in/on the housing or mounting plate (200); wherein the drive shaft (300) has a toothed channel (310); - an electric motor unit (400) which is positioned inside the housing or on the mounting plate (200) and indirectly, via a gear (500), or directly is arranged to transmit a torque to the drive shaft (300); - an annular or tubular first insert (600) comprising a) a channel (610) adapted to receive a rotatable shaft (10) in a fluid flow regulator; and b) a serrated outer surface (620) which is complementary in shape with the serrated channel (310), wherein the first insert (600) is adapted to be inserted into and releasably engaged with the serrated channel (310); and - a mechanism adapted to prevent the first insert (600) from passing through the toothed channel (310); characterized in that either i) one end of the first insert (600) comprises a guide recess with a stop, and wherein the housing or mounting plate (200) comprises a guide pin (210) which is arranged to move within the guide recess and to engaging the stop, thereby enabling the drive shaft (300) to rotate a predetermined number of degrees about its axis of rotation; or ii) when the first insert is of a length corresponding to less than the total length of the toothed channel, the actuator further comprises an annular or tubular second insert (700) which comprises a) a toothed outer surface (710) which is complementary in shape with the toothed channel (310) and is adapted to insert into and releasably engage with the toothed channel (310) at the opposite end from the first insert (600), and b) a guide recess (720) with a stop (730); wherein the housing or mounting plate (200) includes a guide pin (210) which is adapted to move within the guide recess (720) and to engage with the stop (730), whereby the DK 180976 B1 14 gøres muligt for drivakslen (300) at rotere et forudbestemt antal grader om sin rotationsakse.DK 180976 B1 14 it is made possible for the drive shaft (300) to rotate a predetermined number of degrees about its axis of rotation. 2. — Aktuator (100) ifølge krav 1, hvor mekanismen omfatter, at en ende at den første indsats (600) omfatter en stoptap eller -plade (630), som er indrettet til at gå i indgreb med en ende af drivakslen (300).2. — Actuator (100) according to claim 1, wherein the mechanism comprises that one end of the first insert (600) comprises a stop pin or plate (630) which is adapted to engage with one end of the drive shaft (300 ). 3. — Aktuator (100) ifølge et hvilket som helst af kravene 1-2, hvor mekanismen omfatter, at den første indsats (600) og den tandede kanal (310) begge er koniske i form.3. — Actuator (100) according to any one of claims 1-2, wherein the mechanism comprises that the first insert (600) and the toothed channel (310) are both conical in shape. 4. — Aktuator (100) ifølge et hvilket som helst af kravene 1-2, hvor mekanismen omfatter, at den første indsats (600) er konisk i form og af en længde svarende til maksimalt halvdelen af den tandede kanal (310), og hvor den tandede kanal (310) er bikonisk i form og indrettet til at optage den første indsats (600) via en eller begge ender.4. — Actuator (100) according to any one of claims 1-2, wherein the mechanism comprises that the first insert (600) is conical in shape and of a length equal to at most half of the toothed channel (310), and wherein the toothed channel (310) is biconical in shape and adapted to receive the first insert (600) via one or both ends. 5. —Aktuator (100) ifølge et hvilket som helst af kravene 1-4, som endvidere omfatter et sæt af første indsatser (600), hvor hver især af de første indsatser (600) har en kanal (610), som er indrettet til at optage en roterbar aksel (10) i en væskestrømsregulator med en profil forskellig fra den anden af de første indsatser (600) i sættet.5. — Actuator (100) according to any one of claims 1-4, which further comprises a set of first inserts (600), where each of the first inserts (600) has a channel (610) which is arranged for receiving a rotatable shaft (10) in a fluid flow regulator having a profile different from the second of the first inserts (600) in the kit. 6. Fremgangsmåde til montering af en aktuator (100) ifølge et hvilket som helst af kravene 1-5, omfattende trinene: - at bestemme profilen af en roterbar aksel (10) i en væskestrømsregulator; - at vælge en ring- eller rørformet første indsats (600) ifølge et hvilket som helst af kravene 1-5, som har en kanal (610), som er indrettet til at optage den roterbare aksel (10), hvor kanalen er komplementær i form med profilen af den roterbare aksel (10); hvor den første indsats (600) har en tandet ydre flade (620);Method for mounting an actuator (100) according to any one of claims 1-5, comprising the steps of: - determining the profile of a rotatable shaft (10) in a liquid flow regulator; - selecting an annular or tubular first insert (600) according to any one of claims 1-5, which has a channel (610) adapted to receive the rotatable shaft (10), the channel being complementary in form with the profile of the rotatable shaft (10); wherein the first insert (600) has a toothed outer surface (620); DK 180976 B1 - at montere den første indsats (600) over den roterbare aksel (10) således, at akslen (10) strækker sig gennem kanalen (610) i den første indsats (600); - at forsyne et hus eller en monteringsplade (200) ifølge et hvilket som helst af kravene 1-5 med en ring- eller rørformet drivaksel (300), som er roterbart monteret 5 i/på et hus eller en monteringsplade (200); hvor drivakslen (300) har en tandet kanal (310), som er komplementær i form med den tandede ydre flade af den første indsats (600); - at montere drivakslen (300) på den første indsats (600) således, at drivakslen (300) kommer ind i den tandede kanal (310); hvor en mekanisme ifølge et hvilket som helst af kravene 1-5 er indrettet til at forhindre den første indsats i at passere gennem den tandede kanal (310); og - at fastgøre huset eller monteringspladen (200) til et substrat, som ikke roterer med den roterbare aksel (10).DK 180976 B1 - mounting the first insert (600) over the rotatable shaft (10) such that the shaft (10) extends through the channel (610) in the first insert (600); - providing a housing or a mounting plate (200) according to any one of claims 1-5 with an annular or tubular drive shaft (300) which is rotatably mounted 5 in/on a housing or a mounting plate (200); wherein the drive shaft (300) has a toothed channel (310) which is complementary in shape with the toothed outer surface of the first insert (600); - mounting the drive shaft (300) on the first insert (600) so that the drive shaft (300) enters the toothed channel (310); wherein a mechanism according to any one of claims 1-5 is adapted to prevent the first insert from passing through the toothed channel (310); and - attaching the housing or mounting plate (200) to a substrate which does not rotate with the rotatable shaft (10). 7. Fremgangsmåde ifølge krav 6, hvor trinet at vælge den første indsats (600) omfatter at vælge den første indsats (600) fra et sæt af første indsatser (600), hvor hver især af de første indsatser (600) har en kanal (610), som er indrettet til at optage en roterbar aksel (10) i en væskestrømsregulator med en profil forskellig fra den anden af de første indsatser (600) i sættet.7. Method according to claim 6, wherein the step of selecting the first insert (600) comprises selecting the first insert (600) from a set of first inserts (600), where each of the first inserts (600) has a channel ( 610) which is adapted to receive a rotatable shaft (10) in a liquid flow regulator with a profile different from the second of the first inserts (600) in the set. 8. Fremgangsmåde ifølge et hvilket som helst af kravene 6-7, hvor fremgangsmåden endvidere omfatter trinet at indføre en anden indsats (700) ifølge krav 1 i den tandede kanal (310) i den modsatte ende end den første indsats (600) når aktuatoren (100) er i overensstemmelse med mulighed ii) ifølge krav 1.8. A method according to any one of claims 6-7, wherein the method further comprises the step of introducing a second insert (700) according to claim 1 into the toothed channel (310) at the opposite end to the first insert (600) when the actuator (100) is consistent with option ii) according to claim 1.
DKPA202000562A 2020-05-11 2020-05-11 Actuator for fluid flow controllers DK180976B1 (en)

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Application Number Priority Date Filing Date Title
DKPA202000562A DK180976B1 (en) 2020-05-11 2020-05-11 Actuator for fluid flow controllers
EP21726587.5A EP4150232A1 (en) 2020-05-11 2021-05-10 Actuator for fluid flow controllers
PCT/EP2021/062360 WO2021228781A1 (en) 2020-05-11 2021-05-10 Actuator for fluid flow controllers

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DKPA202000562A DK180976B1 (en) 2020-05-11 2020-05-11 Actuator for fluid flow controllers

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DK180976B1 true DK180976B1 (en) 2022-08-26

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DE10131043A1 (en) * 2001-06-29 2003-01-09 Kludi Gmbh & Co Kg Control knob for flow control valve is fitted onto a connecting disc which has sectors of outer gear teeth for a fine position control of the knob
US8043023B2 (en) * 2003-08-07 2011-10-25 Honda Motor Co., Ltd. Power transmission mechanism of shaft and hub
CH708995B1 (en) 2004-03-19 2015-06-30 Belimo Holding Ag Reduction gear of an electrically operated actuator.
DE502006008719D1 (en) 2005-07-14 2011-02-24 Belimo Holding Ag ACTUATOR
US8943919B2 (en) 2010-12-23 2015-02-03 Schneider Electric Buildings, Llc Over shaft rotary actuator with internal clamp
WO2013013334A2 (en) 2012-10-01 2013-01-31 Belimo Holding Ag Further developments of a heating, ventilation and air conditioning system
US9732980B2 (en) 2013-12-18 2017-08-15 Honeywell International Inc. HVAC actuator with range adjustment
US10288122B2 (en) 2016-02-19 2019-05-14 Honeywell International Inc. HVAC actuator assembly
US10962137B2 (en) 2017-07-18 2021-03-30 Johnson Controls Technology Company Universal adapter assembly for valve actuator

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DK202000562A1 (en) 2022-01-04
WO2021228781A1 (en) 2021-11-18

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