A SYSTEM FOR DETERMINING REVOLUTIONS IN DRIVE SHAFTS, A CARDAN SHAFT RELATED TO SAID SYSTEM AND DETERMINING METHOD THEREOF
20210165014 · 2021-06-03
Inventors
Cpc classification
F16D3/387
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C2233/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C35/077
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C2326/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C27/066
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C41/007
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C2361/41
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2300/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C19/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
B60K17/22
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A system for determining the number of revolutions of a cardan shaft, having at least a magnet and at least a hall sensor is positioned to provide magnetic interaction between them, characterized by connecting one of the magnet and hall sensor onto either the rotating elements of the cardan shaft and the other to a fixed point and including a detection element for detecting the revolution rate by correlating to the revolution and the pulse created by the hall sensor as a result of interaction between the magnet and the hall sensor, when the cardan shaft rotates.
Claims
1. A system for determining the number of revolutions of a cardan shaft, comprising at least a magnet and at least a hall sensor is positioned to provide magnetic interaction between them, characterized by: connecting one of said magnet and hall sensor onto either the rotating elements of the cardan shaft and the other to a fixed point; and comprising a detection element for detecting the revolution rate by correlating to the revolution and the pulse created by the hall sensor as a result of interaction between the magnet and the hall sensor, when the cardan shaft rotates.
2. A system according to claim 1, characterized by said fixed point is a central bearing positioned on the cardan shaft.
3. A system according to claim 2, characterized by comprising a fixed carrier which is positioned on said central bearing which carries the magnet or the hall sensor such that it does not come into contact with the rotating elements of the cardan shaft and therefore is enabled to stay fixed.
4. A system according to claim 3, characterized by comprising a carrier surface for said fixed carrier which enables the magnet and the hall sensor to be positioned across from each other at the same level in order to provide utmost magnetic interaction efficiency.
5. A system according to claim 3, characterized by said fixed carrier comprising at least one central bearing mounting surface which is mounted on the central bearing.
6. A system according to claim 3, characterized by comprising a rotating carrier which carries the magnet or the hall sensor and is positioned on the cardan shaft and rotates with the cardan shaft.
7. A system according to claim 6, characterized by comprising a protective element arranged on the central bearing such that it envelops the detection element, the magnet, the hall sensor, the fixed carrier and the rotating carrier.
8. A system according to claim 7, characterized by the protective element comprising a first groove configured to corresponding to the geometry of the central bearing.
9. A system according to claim 7, characterized by the protective element comprising a second groove corresponding to conform to the geometry of the rotating carrier.
10. A system according to claim 7, characterized by the protective element and the rotating carrier is positioned on the mounting surface configured on the cardan shaft.
11. A system according to claim 7, characterized by the protective element is fixed in position by being in contact with the retaining face configured on the cardan shaft.
12. A system according to claim 1, characterized by comprising a power supply which can transmit wireless power in order to provide power for the system.
13. A cardan shaft integrated with a system according to claim 1.
14. A method for determining the number of revolutions of a cardan shaft, at least one magnet and at least one hall sensor, which is positioned to provide magnetic interaction between each other, is used, characterized by comprising the following steps: a) connecting one of said magnet and hall sensor onto either the rotating elements of the cardan shaft and the other to a fixed point; b) determining the number of pulses created by the hall sensor and; c) determining the number of revolutions by correlating the number of pulses with the number of revolutions.
Description
BRIEF DESCRIPTION OF THE FIGURES
[0027]
[0028]
[0029]
[0030]
[0031]
[0032]
[0033]
[0034]
[0035]
REFERENCE NUMBERS
[0036] 10. Cardan shaft element [0037] 11. Retaining Face [0038] 12. Mounting surface [0039] 20. Mechanical structure [0040] 21. Central Bearing [0041] 22. Protective element [0042] 221. First groove [0043] 222. Second groove [0044] 23. Fixed carrier [0045] 231. Carrier surface [0046] 232. Central bearing mounting surface [0047] 24. Rotating Carrier [0048] 30. Magnet [0049] 40. Hall Sensor [0050] 50. Detection element [0051] SN. Fixed point
DETAILED DESCRIPTION OF THE INVENTION
[0052] In this detailed description, a system for determining the number of revolutions of the cardan shaft according to the invention, a cardan shaft with the related system and the method of determination are disclosed by illustration in order to provide a better understanding of the subject which should not be deemed to have a limiting effect.
[0053] The invention relates to a system which provides the number of revolutions of the cardan shaft using magnetic interaction subject to the invention, a cardan shaft of the related system and a cardan shaft revolution detection method.
[0054] The invention [0055] is a system for determining the number of revolutions of the cardan shaft, comprising at least a magnet (30) and at least a hall sensor (40) is positioned to provide magnetic interaction between them characterized by; [0056] connecting one of said magnet (30) and hall sensor (40) onto either the rotating elements of the cardan shaft and the other to a fixed point (SN) and [0057] comprising a detection element (50) for detecting the revolution rate by correlating to the revolution and the pulse created by the hall sensor (40) as a result of interaction between the magnet (30) and the hall sensor (40), when the cardan shaft rotates.
[0058]
[0059] The magnet (30) and hall sensor (40) are positioned such that magnetic interaction is provided between them. When the cardan shaft starts to rotate, the magnet (30) and the hall sensor (40) come face to face at certain intervals and as a result of this encounter the hall sensor (40) creates a pulse. When different numbers of magnets (30) and hall sensors are used in the system, the number of revolutions per pulse shall also change accordingly.
[0060] The detection element (50) can determine the number of pulses for each revolution and can calculate the momentary number of revolutions of the cardan shaft.
[0061]
[0062] It has already been mentioned that the system for revolution determination comprises at least a magnet (30) and a hall sensor (40). At least one of the magnet (30) and hall sensors (40) need to be fixed and the other to be moving for generating the pulse per said revolution. One of the basic functions of the mechanical structure (20) is to ensure that either the magnet (30) or the hall sensor (40) remains fixed, even when the cardan shaft is in motion. The pulse generation process is continued by means of magnetic interaction by means of the magnet (30) or the hall sensor (40) which is positioned on the cardan shaft element (10) and rotates together with it. Thus, the continuity of the magnetic interaction is ensured and the data transfer via the cardan shaft can be kept constant. Another important function of the mechanical structure (20) is to protect said at least one magnet (30) and hall sensor (40) and the detection element (50) from environmental conditions.
[0063] As can be seen in
[0064] As shown in
[0065] Referring to
[0066] The protective element (22) carries the detection element (50) and at the same time protects the fixed carrier (23) and the rotating carrier (24) from environmental conditions. Thus, the detection element (50) and the magnet (30) and the hall sensor (40) can operate without being affected by environmental conditions. The protective element (22) may be formed of one or more parts. The protective element (22) is positioned on the mounting surface (12) of the cardan shaft element (10) and its position is fixed by contacting the retaining face (11) on the cardan shaft element (10). The protective element (22) comprises a first groove (221) configured to conform to the geometry of the central bearing (21) and a second groove (222) configured to conform to the geometry of the rotating carrier (224).
[0067] Thanks to the compact structure of the invention, the magnet (30) and the hall sensor (40) can be adapted to the cardan shaft such that they cannot be perceived from the outside. Thus, the mechanical structure (20) is seen as a natural extension of the cardan shaft.
[0068] Power can be transmitted wirelessly to the system according to the invention. According to this structure, coils, preferably wires wound around the fixed and rotating carrier (23, 24) are used in order to provide power transmission. The configuration mentioned in the utility model with the application number 2017/08500 of TURKPATENT can be used in order to provide the related wireless power transmission.
[0069] The invention is a method for determining the number of revolutions of the cardan shaft, at least one magnet (30) and at least one hall sensor (40), which is positioned to provide magnetic interaction between each other, is used; characterized by comprising the following steps; [0070] a) connecting one of said magnet (30) and hall sensor (40) to a fixed point (SN) on the rotating elements of the cardan shaft, and [0071] b) determining the number of pulses created by the hall sensor (40) and; [0072] c) determining the number of revolutions by correlating the number of pulses with the number of revolutions.
[0073] According to said method, the magnet (30) or hall sensor (40) that has been positioned onto the rotating element of the cardan shaft or the hall sensor (40) or magnet (30) that has been positioned onto a fixed element on the cardan shaft, particularly the central bearing (21), encounter each other at each revolution when the cardan shaft starts rotating and at this point the hall sensor (40) creates a pulse. The pulse created is correlated with the cardan shaft revolution numbers by the detection element (50) and momentary revolution calculation can be performed.
[0074] The scope of protection of the invention is set forth in the attached claims and cannot be limited with the embodiments described in the detailed description. It is clear that a person skilled in the art can provide similar embodiments in the light of the foregoing without departing from the main theme of the invention.