Pipe or duct probe, and system comprising a pipe or duct probe
The self-contained pipe or duct probe with an integrated motor and centering device addresses issues of vibrations and torque in existing devices, enhancing resin coating and cleaning efficiency by using a DC motor and elastic elements for uniform application within pipes and ducts.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- BODUS GMBH
- Filing Date
- 2021-11-30
- Publication Date
- 2026-05-07
AI Technical Summary
Existing pipe and duct cleaning and coating devices experience issues with vibrations, friction, and high torque due to flexible shafts driven by external motors, leading to increased wear and difficulty in applying resin layers.
A self-contained pipe or duct probe with an integrated motor and centering device, eliminating the need for a flexible shaft and external motor, utilizing a DC motor with a compact design and elastic elements for centering and vibration absorption, allowing for uniform coating and cleaning within pipes or ducts.
The solution reduces wear and improves the efficiency of resin coating and cleaning processes by minimizing vibrations and torque, enabling flexible operation within pipes and ducts, including curved sections, without the need for large AC motors.
Smart Images

Figure 0007854686000001 
Figure 0007854686000002 
Figure 0007854686000003
Abstract
Description
Technical Field
[0001] The present invention relates to a pipe or duct probe for insertion into a pipe or duct as claimed in claim 1. Furthermore, the present invention relates to a system comprising a pipe or duct probe according to the present invention.
Background Art
[0002] In sewer technology, cleaning and coating devices are known that have tools attached to a flexible shaft, such as brushes or chain scrapers. The flexible shaft is here driven by an external motor. These motors must be able to apply a large torque in order to cope with the resulting frictional moment.
[0003] When this type of flexible shaft rotates, vibrations, friction, and high torque occur, which basically impair the application of the resin layer and make the cleaning process more difficult.
[0004] In addition, the above-mentioned vibrations and friction, as well as the high torque, increase the wear of known cleaning and coating devices.
Summary of the Invention
Problems to be Solved by the Invention
[0005] Therefore, one object of the present invention is to provide a further developed pipe or duct probe, intended to overcome the above-mentioned drawbacks.
[0006] Furthermore, one object of the present invention is to provide a further developed system comprising a further developed pipe or duct probe.
Means for Solving the Problems
[0007] Further development of the system, and further development of the pipe or duct probe, should make it easier to perform resin coating and cleaning of pipes or ducts.
[0008] According to the present invention, the described objectives are addressed with respect to pipe or duct probes according to the subject matter of claim 1, and systems according to the subject matter of claim 13. Dependent claims include at least favorable embodiments and variations.
[0009] Specifically, the objective is addressed by a pipe or duct probe for insertion into a pipe or duct, and the pipe or duct probe according to the present invention is - At least one motor, - At least one motor shaft, - At least one working means connected to the motor shaft, - A connection device for connecting the motor to the cable, - It comprises at least one centralizing device connected to the housing.
[0010] Accordingly, the present invention provides such pipe or duct probes having a motor of their own making. Thus, the working means is driven by a motor that is formed as part of the pipe or duct probe.
[0011] A pipe or duct probe is understood to be such a component that is inserted into a pipe or duct. It is preferable that a complete pipe or duct probe is inserted into or can be inserted into a pipe or duct.
[0012] Since the motor is formed as part of the pipe or duct probe, there is no need to provide a flexible shaft to connect the external motor to the working means. Rather, the motor shaft is driven directly within the pipe or duct.
[0013] Only connections to cables, particularly power cables and / or data cables, are required, and these cables exit the pipe or duct and are routed outside. The cables establish electrical and / or data connections between the power unit and / or control unit and the motor, which are preferably formed outside the pipe or duct.
[0014] The centering device allows the pipe or duct probe to be guided into the pipe or duct. The centering device enables uniform coating and / or uniform cleaning of the pipe or duct. The centering device also allows the pipe or duct probe to be guided into curved pipes or ducts.
[0015] The pipe or duct probe according to the present invention is provided as a device that allows for flexible use within pipes or ducts due to its compact design and the fact that the individual probe components are appropriately grouped together.
[0016] The term "probe," i.e., pipe or duct probe, should be interpreted as a component or part of a component that is inserted into a pipe or duct. Components or parts of components that remain completely outside the pipe or duct should not be included as part of the pipe or duct probe. Such components or parts of components are components of the system according to the present invention, which comprises the pipe or duct probe according to the present invention.
[0017] The pipe or duct probe design according to the present invention provides good flexibility.
[0018] The motor for the pipe or duct probe is preferably a direct current (DC) motor. A DC motor capable of operating in a speed range of 0 to 2,000 rpm can be used.
[0019] In particular, it is possible to connect via a cable to a power supply that provides a 50 Hz power supply. With a miniaturized DC motor, a motor output of up to 200 W is possible. A motor for a pipe or duct probe can provide a continuous torque of up to 250 mNm.
[0020] The pipe or duct probe according to the invention has a centering device connected to the housing. The housing may be the housing of the pipe or duct probe. Furthermore, it is also conceivable that the housing is the housing of the motor or a housing part of the motor.
[0021] The motor is preferably positioned together with the motor housing within the housing of the pipe or duct probe or a housing part. In other words, the motor housing can be at least partially surrounded by the housing of the pipe or duct probe or a housing part.
[0022] The centering device may be at least partially formed by a plurality of elastic elements or may comprise a plurality of elastic elements.
[0023] Preferably, the elastic elements are arranged at intervals in the circumferential direction of the housing. It is particularly preferred that the elastic elements are arranged at equal intervals in the circumferential direction of the housing.
[0024] Due to the design of the elastic elements, it is possible to compensate for irregularities in the diameter of the pipe or duct. Furthermore, it is possible to better advance through the bent portions of the pipe and / or duct. The elastic elements of the centering device preferably function to adapt the centering device to various diameters of the pipe and / or duct.
[0025] The elastic elements can be formed as brush elements or torsion springs or shaped springs or tension springs or resilient pressure pieces.
[0026] When the elastic elements are formed as brush elements, they are preferably made of plastic, particularly nylon. The advantage of forming such brush elements is that the force acting on the pipe or duct probe is alleviated. Further, the stress applied to the motor shaft is reduced. Forming the brush elements as elastic elements also has the advantage of absorbing vibrations. Further, such brushes function as anti-twist devices.
[0027] The torsion spring is preferably a 90° torsion spring. This means that the torsion spring has a shape bent at 90°. When the pipe or duct probe is inserted into the pipe and / or duct, the torsion spring is compressed and pressed in the direction of the central axis of the pipe or duct probe. As a result, the pipe or duct probe is positioned centrally. When the pressure applied to the torsion spring decreases, the torsion spring can move back to its original position or in the direction of its original position. The advantage of such torsion springs is that they are inexpensive to manufacture and can be used for various pipe and / or duct diameters.
[0028] The formed spring may be made of, for example, a spring steel sheet. As soon as the pipe or duct probe is guided into the pipe and / or duct, the formed spring provides the necessary contact pressure against the pipe and / or duct wall. The formed spring may be of various constructed forms and can be adapted to the relevant application. Elastic elements of such forms also have the advantage that such formed springs can be adapted to various pipe dimensions.
[0029] The tension spring is preferably two joints connected to each other by the tension spring. When the tension spring, or pipe and / or duct probe, is positioned within the pipe and / or duct, the joints are related to each other so that contact pressure is generated against the pipe and / or duct wall. Thus, the pipe or duct probe is centrally positioned within the pipe and / or duct. Forming one or more such tension springs as a centering device has the advantage that these elastic elements can be used with various pipe and / or duct diameters.
[0030] When forming elastic pressure components, they may be formed in particular as elastic balls.
[0031] The term "elastic ball" should be understood to specifically refer to such balls mounted within a shell-shaped container, where the balls are elastically mounted so that they can be pressed toward the shell when subjected to appropriate pressure. Thus, when the inner diameter of a pipe and / or duct is reduced, these elastic balls can be pressed inward, i.e., toward the central axis of the pipe or duct probe. Therefore, by pressing the elastic ball toward the central axis of the pipe or duct probe, the outer diameter of the centering device can be reduced.
[0032] If the inner diameter of the pipe and / or duct expands again, the pre-tensioned balls can become relaxed again, and thus the balls in the bearing shell are pressed outward. In this case, the outer diameter of the centering device expands again.
[0033] Furthermore, it is conceivable that the elastic elements could be formed in a manner similar to that of turbine blades.
[0034] Elastic elements formed in a manner similar to turbine blades are understood to mean such elements that are bent. Preferably, all elastic elements in these embodiments of the present invention have the same bending radius under reduced pressure, and preferably the elastic elements are formed from a material such that the bending radius of the elastic elements formed in a manner similar to turbine blades is adapted to the inner diameter of the pipe and / or duct.
[0035] Depending on the inner diameter of the pipe and / or duct, the resilient elements formed in a manner similar to turbine blades may be pressed more strongly in the direction of the central axis of the pipe or duct probe, thereby having a smaller overall outer diameter. If the pressure acting on the resilient elements formed in a manner similar to turbine blades disappears or decreases, the resilient elements can move outward, i.e., away from the central axis of the pipe or duct probe, by relaxation. In other words, the resilient elements can return to their initial position by a restorative force after the corresponding pressure acting on them decreases, and the initial position makes the outer diameter of all resilient elements or centering devices larger.
[0036] In another embodiment of the present invention, an elastic element may be positioned at the base of the centering device. The base of the centering device may be formed as a component or part of the centering device.
[0037] The centering device base is preferably annular. In particular, the centering device base may be formed as a ring that is pressed against the housing of the pipe or duct probe, or it may form at least a portion of the housing of the pipe or duct probe. Furthermore, a motor (optionally comprising a motor housing) may be positioned or located within the annular centering device base.
[0038] In another embodiment of the present invention, the centering device may have a bent arm. Preferably, the bent arm is bent in the same direction. Preferably, the bent arm is flexible in such a way that the outer diameter of the centering device formed by the bent arm can be expanded or contracted depending on the position of the bent arm.
[0039] The working means of the pipe or duct probe may be, for example, a coating device. For example, the working means may be a coating brush. Using such a coating device, and especially using a coating brush, it is possible to uniformly apply a substance, in particular a resin curing agent mixture, to the inside of pipes and / or ducts, or to the inside of reinforcing hoses or repair hoses (liners). Using the coating device, and especially using a coating brush, the resin curing agent mixture can be applied particularly uniformly. This is because the working means is directly or indirectly connected to the motor shaft of a motor and rotated accordingly.
[0040] Furthermore, the means of operation may be a cleaning device. Such a cleaning device can be used to remove contaminants from pipes and / or ducts. The cleaning device may be a brush head and / or abrasive paper mechanism and / or a chain scraper and / or a blade drill and / or a paddle blade drill and / or a cutting head and / or a milling head.
[0041] The working means may be directly connected to the motor shaft. Furthermore, it is conceivable that the working means be indirectly connected to the motor shaft.
[0042] For example, an indirect connection to the motor shaft is possible using a joint, particularly a ball joint. Such a ball joint can be formed between the motor shaft and the working means.
[0043] Another possibility for indirect connection between the working means and the motor shaft concerns an indirect connection using a spring. Such a spring is preferably a metal spring of sufficient length to guide the pipe or duct probe, along with the attached working means, through curved sections of the pipe or duct. The spring is preferably a spiral spring.
[0044] In particular, the means for indirectly connecting the working means to the motor shaft may be formed in a manner that allows the working means to be easily replaced. This makes it possible to use pipes or duct probes with various working means. The means for indirectly connecting the working means to the motor shaft may be formed as a quick connector.
[0045] One possibility regarding the formation of a centering device base, particularly an annular centering device base, is that the centering device base may be interchangeably mounted on a pipe or duct probe. In particular, the centering device base may be interchangeably formed on a housing.
[0046] The shape, particularly the diameter, of the centering device base can be adapted to the specific diameter of the pipe or duct to be processed. For this purpose, multiple centering device bases may be provided as a set, and thus adaptation of the measurements or dimensions of the centering device, especially the centering base, is possible with respect to various inner diameters of pipes or ducts.
[0047] The connecting device for connecting the motor to the cable may be, for example, a plug connector, or a spiral spring with a joint or mounting component. If a joint is formed, it may be a ball joint in particular. The formation of the connecting device is particularly necessary or advantageous when the cable to be connected to the pipe or duct probe is a push cable.
[0048] When the connector is formed as a spiral spring, it has the advantage of protecting the cable and being highly flexible. The advantage of forming a joint, especially a ball joint, is that such a joint can be moved almost freely. Furthermore, in these embodiments of the present invention, the connector is extremely stable.
[0049] The pipe or duct probe may have a temperature sensor. Such a temperature sensor can, for example, detect the degree of crosslinking of a coated resin curing agent mixture.
[0050] Furthermore, pipe or duct probes may be equipped with cameras. With the help of such cameras, it is possible to inspect pipes or ducts for any degree of contamination. Cameras can also be used to inspect the results of coating processes.
[0051] The pipe or duct probe may further include a mixer, particularly a static mixer. This mixer, especially the static mixer, is preferably mounted on a centering device. Such a mixer or static mixer is used, in particular, to mix a resin with a curing agent. The resin is preferably mixed with the curing agent shortly before the mixture is applied to the pipe; therefore, the mixing takes place in the structural environment of the pipe or duct probe, rather than outside the pipe or duct.
[0052] The pipe or duct probe design according to the present invention makes it possible to eliminate two disadvantageous components or elements of known cleaning and coating devices. These components are, on the one hand, a flexible shaft or drive shaft, and on the other hand, the need for a large AC motor. The compact design of the pipe or duct probe according to the present invention makes it possible for the first time to perform both cleaning and coating processes using such devices that can be operated without the use of a large AC motor.
[0053] The DC motor to be used preferably has a maximum short-time torque of 245 mNm.
[0054] To seal the motor, the motor shaft and / or the motor housing and / or the pipe or duct probe housing can be sealed with a sealing material, particularly with a ring seal, and especially preferably with a shaft ring seal. This prevents the substance to be applied, particularly the resin curing agent mixture to be applied inside the pipe, from entering the pipe or duct probe or the motor.
[0055] Shaft ring seals are particularly economical to manufacture and can be positioned and installed on pipes or duct probes in a space-saving form.
[0056] The shaft seal is preferably formed between the motor shaft and the housing. The sealing material, particularly the shaft ring seal, is designed and mounted within the housing in a manner that allows for the easiest possible replacement of the sealing material, particularly the shaft ring seal.
[0057] In another embodiment of the present invention, the pipe or duct probe may be equipped with a temperature control unit. The temperature inside the pipe or duct probe can be controlled using the temperature control unit, and thus the properties of the substance to be applied, in particular the resin curing agent mixture to be applied, especially its viscosity, can be adjusted.
[0058] The housing is substantially capsule-shaped. The capsule shape is formed, for example, by a sealing cover (or sealing cap), a cylindrical portion, and a cable connection portion. The sealing cover (sealing cap) is particularly functional to allow a shaft ring seal to be replaced within the housing.
[0059] As long as the resilient element is formed in a manner similar to that of a turbine blade, it is preferable that the resilient element is not formed to have a constant width along its longitudinal length. Rather, such a form of resilient element formed in a manner similar to that of a turbine blade is provided, which forms a convex shape in the side view.
[0060] Preferably, the centering device has a recess, particularly an opening, and thus the mixer, in particular a static mixer, can be fixed to the centering device, especially by a clamping method.
[0061] Another aspect of the present invention relates to a system comprising a pipe or duct probe and a cable, the cable being a push cable in particular. Furthermore, the system comprises a reel in which the cable, in particular the push cable, is housed.
[0062] Furthermore, the system preferably includes a control unit and / or a power supply unit, which are preferably located inside or on the housing of the reel.
[0063] The system according to the present invention can be used to obtain essentially the same advantages as those shown in relation to the pipe or duct probe according to the present invention.
[0064] The present invention will be described in more detail below with reference to the attached drawings. [Brief explanation of the drawing]
[0065] [Figure 1a-1c] These are various figures relating to possible embodiments of a pipe or duct probe according to the present invention.
[0066] [Figure 2] Figures 1a to 1c show longitudinal cross-sectional views through a pipe or duct probe according to the present invention.
[0067] [Figure 3]This figure shows the system according to the present invention, along with a description of possible working methods.
[0068] [Figure 4] This is a diagram of the system according to the present invention, with a pipe or duct probe according to the present invention inserted into a pipe. [Modes for carrying out the invention]
[0069] In the following, the same reference numeral is used for similar parts that function in the same way.
[0070] Figures 1a to 1c and Figure 2 show the basic structure of possible embodiments of the pipe or duct probe 10.
[0071] Figure 1a shows a side view of the pipe or duct probe. Figure 1b shows a front view of the pipe or duct probe. Figure 1c shows a perspective view of the pipe or duct probe 10 according to the present invention. Figure 2 shows a longitudinal cross-sectional view passing through the pipe or duct probe according to the present invention shown in Figures 1a to 1c.
[0072] The pipe or duct probe 10 has a motor 15 (see Figure 2). The motor 15 itself has a motor housing, which is located within the housing 20. In other words, the motor 15 is mounted within the housing 20.
[0073] Motor 15 is a DC motor. The design of the pipe or duct probe 10 according to the present invention eliminates the need to provide a separate AC motor.
[0074] The motor 15 also has a motor shaft 18 (see Figure 2). The working means 30 is directly connected to the motor shaft 18.
[0075] Furthermore, a connecting device 40 is shown.
[0076] The connector 40 is used to connect the motor 15 to a cable (not shown here). A portion of the connector 40, particularly the cap-shaped portion 41 of the connector 40, can form part of the capsule-shaped housing 20. The other end of the connector 40 is used to connect to the indicated cable using a mounting component 42.
[0077] The centering device base 51 of the centering device 50 is formed on or partially surrounds the housing 20. The centering device base 51 is formed as an annular portion. Multiple elastic elements 55 are formed on the centering device base 51. As shown in Figure 1b, the elastic elements 55 are arranged at equal intervals from each other in the circumferential direction of the housing 20.
[0078] The centering device base 51 can be interchangeably positioned on the housing 20. Various centering devices 50 can be mounted on the housing 20. Therefore, various centering devices 50 can be slid onto the housing 20 and connected to the housing 20 depending on the inner diameter of the pipe or duct.
[0079] Eight resilient elements 55 (see Figure 1b) are formed in a manner similar to that of turbine blades. The elements 55 are preferably made of a plastic material, so that the bending radius of the resilient elements 55 can be reduced or increased. When the pipe or duct probe 10 is inserted into the pipe, the resilient elements 55 can be bent in the direction of the central axis M, so that the outer diameter of the centering device 50 can be reduced.
[0080] The elastic element 55 does not have a constant width B in the longitudinal direction L. Rather, the elastic element 55 is formed in such a way that a certain kind of convex surface is formed. On the one hand, this makes it possible to properly center the pipe or duct probe 10 within the pipe, and on the other hand, it enables good flexibility.
[0081] The housing 20 has a sealing cover or sealing cap 25. This sealing cap 25 is formed in the area of the motor shaft 18. A sealing material 35 is formed inside the sealing cap 25. The sealing material 35 prevents substances, in particular resin curing agent mixtures or other liquids, from entering the motor 15.
[0082] In this case, the sealing material 35 is formed as a shaft ring seal. The shaft ring seal clearly prevents liquid from entering the housing 20, especially the motor 15.
[0083] The sealing cap 25 is preferably attached to the rest of the housing 20 in a manner that allows the sealing material 35 to be updated or replaced. For example, the sealing cap 25 is screwed onto another part of the housing 20.
[0084] The working means 30 shown is a coating device, namely a coating brush. Using such a coating brush, a substance, in particular a resin curing agent mixture, can be uniformly applied to a pipe, in particular a liner located inside the pipe.
[0085] The working means 30, or coating brush, shown is directly connected to the motor shaft 18. It is also possible for the working means, such as the coating brush, to be indirectly connected to the motor shaft 18. A spring, particularly a spiral spring, is especially suitable for this purpose.
[0086] Figure 1b also shows the recess 52. This recess 52 is used to mount and, in particular, clamp the static mixer (see Figure 3).
[0087] Figure 3 shows a system 60 according to the present invention. The system 60 has a pipe or duct probe 10 according to the present invention. Furthermore, a reel 70 is shown. The reel 70 functions to support a cable 75 or push cable. The system 60 further comprises a control unit 71. This control unit 71 can control the motor of the pipe or duct probe 10 accordingly.
[0088] A static mixer 80 connected to a centering device 50 of the pipe or duct probe 10 can also be seen. Therefore, the centering device 50 can be used to precisely move or transport the static mixer 80 to a specific position within the pipe to be processed or coated.
[0089] The cable 75 is connected to the pipe or duct probe 10 by the connector 40. The mounting part 76 of the cable 75 is connected to the mounting part 42 of the connector 40. The two mounting parts 42 and 76 form a kind of quick connector.
[0090] Figure 3 shows an alternative embodiment of the working means 30, which is an application brush.
[0091] Working means 30' is a cleaning device, namely a chain scraper. Working means 30'' is also a cleaning device in the form of an abrasive paper assembly.
[0092] As shown in Figure 3, the working means shown can be interchanged in various ways. In this regard, direct or indirect fastening to the motor shaft 18 may be possible. In this regard, working means 30, 30', and 30'' have corresponding fastening devices.
[0093] Figure 4 also shows the system 60 according to the present invention. This example clarifies which components of the system are actually formed to belong to the pipe or duct probe 10. The cable 75 should not be depicted as belonging to the system 60, because the cable 75 is not entirely inside the pipe 90.
[0094] The design of the pipe or duct probe 10 according to the present invention allows for transport within the pipe 90, which also includes, among other things, a 90° bend 95.
[0095] Finally, it should be noted that every feature mentioned in the application documents, particularly in the dependent claims, is intended to have independent protection, individually or in any combination, despite any formal references returning to one or more specific claims. [Explanation of symbols]
[0096] 10 Pipe or duct probe 15 Motor 18 Motor shaft 20 Housing 25 sealing caps 30, 30', 30'' working means 35 Sealing material 40 Connection device 41 Cap-shaped part 42 Mounting parts 50 Centering device 51 Centering device base 55 Elasticity element 60 Systems 70 reels 71 Control Unit 75 Cable 76 Mounting parts 80 Static Mixer 90 duct 95 Bent part M center axis L Longitudinal length B Width
Claims
1. A pipe or duct probe (10) for insertion into a pipe (90) or duct, At least one motor (15) and At least one motor shaft (18) and At least one working means (30, 30', 30'') connected to the motor shaft (18), A connecting device (40) for connecting the motor (15) to the cable (75), At least one centering device (50) connected to the housing (20) and Equipped with, The centering device (50) is formed of a plurality of elastic elements (55) arranged at equal intervals in the circumferential direction of the housing (20), The elastic element (55) is formed in the shape of a convex blade outward from the housing (20) and has the same bending radius, making it a pipe or duct probe (10).
2. The motor (15) is a DC motor, The pipe or duct probe (10) according to claim 1.
3. The elastic element (55) is characterized by being arranged on the annular centering device base (51), The pipe or duct probe (10) according to claim 1.
4. The aforementioned working means (30) is a coating device, A pipe or duct probe (10) according to any one of claims 1 to 3.
5. The aforementioned working means (30', 30'') is a cleaning device. A pipe or duct probe (10) according to any one of claims 1 to 4.
6. The working means (30, 30', 30'') are either directly connected to the motor shaft (18) or indirectly connected to the motor shaft (18) using a joint or a spring. A pipe or duct probe (10) according to any one of claims 1 to 5.
7. The connecting device (40) is characterized in that it is formed as a plug connector, or a spiral spring or joint equipped with mounting parts. A pipe or duct probe (10) according to any one of claims 1 to 6.
8. Featuring a temperature sensor and / or camera, A pipe or duct probe (10) according to any one of claims 1 to 7.
9. The system is characterized by a static mixer (80) attached to the centering device (50), A pipe or duct probe (10) according to any one of claims 1 to 8.
10. A system (60) comprising a pipe or duct probe (10) according to any one of claims 1 to 9 and a cable (75).
11. The cable (75) is housed in a reel (70), The system (60) according to claim 10.
12. A control unit (71) is located inside or on the housing of the reel (70). The system (60) according to claim 10 or claim 11.
Citation Information
Patent Citations
Apparatus for coating inner surface of small caliber pipe
JP1986064360A
Forging method
JP1987158542A
Manufacture of turbine blade
JP1992017701A
Three dimensional machining device and method for it
JP1997192979A
Automated pipe clearer
US9683360B1