Belt drive system with outer rotor motor
An outer rotor motor comprises a tubular shaft for maximum motor cooling effect. Coolant may flow through coolant channels of the shaft and the motor in various configurations to carry away the heat. A thermally conductive component may be inserted into the hollow shaft under the stator section to optimize the airflow and cooling. Physical construction of the motor and control algorithms may further enhance motor performance with appropriate sensors. A compact, smooth, and cool operating motor may thus be achieved for applications such as treadmills or other belt drive systems.
1. Field of the Invention
The present invention is related to improvements for outer-rotor electric motor systems, particularly where the outer rotor is used to directly drive a belt, such as in treadmills and conveyors.
2. Discussion of the Related Art
Outer rotor motors are gaining popularity in many different commercial and residential applications since a direct-drive motor can simplify the overall system structure, increase system reliability and reduce system cost. Traditional treadmills and conveyors have a roller that is driven by conventional AC or DC electric motor through belts and pulleys. In addition, the AC or DC motor normally has a flywheel attached to achieve a smooth speed performance, such as in treadmill applications.
A typical outer roller motor has a rotating roller supported by end caps and bearings, and a stator and shaft. Permanent magnets are mounted cylindrically inside the roller and form magnetic poles. The stator is firmly mounted on the shaft. The shaft is fixed at both ends to its supporting frames. When the stator windings are energized, they interact with the magnetic field from the magnets and the torque is produced to turn the outer rotor of the motor.
Outer rotor motors can be used to directly drive a belt where the belt is led directly over the roller surface of an outer-rotor motor. However, challenges remain, especially in thermal cooling for motor surface temperature, motor smoothness at low speed, and motor response to load such as a step-fall on a treadmill belt. The major heat sources are the copper losses and magnetic core losses generated from the stator winding and lamination core. Motor torque ripple such as cogging torque will affect motor smoothness. The cogging torque is due to the interaction between the rotor magnets and the slots of the stator. This represents undesired motor torque output. The motor inertia and the performance of the motor controller contribute to how fast the motor reacts to load disturbances and variations such as step falls in treadmill applications and to the smoothness of the motor.
Improvement in treadmill applications is desired in each of these three areas. For an outer rotor motor, the stator is inside the rotor housing so heat removal is difficult. One approach is to attach fan type devices to the end caps as disclosed in U.S. patent application publication nos. 2002/0158543 and U.S. 2003/0094867. However, this approach may not be entirely effective to remove heat from inside the motor housing. For example, end caps having ventilation holes may not be effective at removing the heat when the motor is running at lower speed, and by having ventilation holes at both end caps, foreign objects may be sucked in and cause hazards. The motor described in U.S. Pat. No. 6,455,960 relies on the supporting structure for conductive heat dissipation which strategy may become less effective as the motor shaft becomes longer in applications such as treadmills. Also, in certain cases there may not be enough supporting structure available for conductive heat dissipation. In addition, the contact area of the shaft with the supporting frame may be limited, further reducing the effects of conductive heat transfer. As a result, at full load and lower speed, both methods cited above may have difficulties keeping the rotor surface temperature low. Higher rotor surface temperatures can have adverse effects on the life of the belt, and can make an outer rotor motor unsuitable for certain applications.
SUMMARY OF THE INVENTIONThe present invention is directed to the improvement of belt driving systems using a brushless permanent magnet outer-rotor motor, such as in treadmill and conveyors applications, and particularly in treadmill applications where the load can vary and demands for the speed smoothness, speed response, and consistent and controllable belt speed are important. The belt driving system consists of at least one outer rotor motor, one roller, an endless belt and a motor controller. The outer rotor motor drives the belt at commanded speeds. The outer rotor motor is preferably a brushless permanent magnet motor with a sinusoidal back EMF waveform, and the controller can be a sine wave drive based on field orientation control algorithms.
The present invention is directed to three major issues of belt driving systems and in treadmill applications in particular: motor smoothness at low speed, motor response to load disturbance such as step fall, and motor surface temperature. By improving the cooling method of the outer rotor motor, such as by utilizing improved heat transfer by convection, the motor can be designed in smaller size and higher power density, and can run at higher efficiency, thus ensuring that the motor surface temperature stays lower to lengthen belt life. In certain conditions such as at light load, the cooling method according to the invention can remove heat generated by belt friction and friction with the deck or belt supporting structure. Thus, the lifetime of the system can be greatly improved.
The present invention can provide an outer rotor motor having coolant conducting channels to remove heat from motor by passing a coolant fluid (liquid or gas) through channels in the shaft or motor assembly, or both. The present invention can provide one or more paths to allow coolant to pass through the motor and prevent foreign objects, e.g. dirt, from being sucked into the motor such as by having relatively clean coolant such as cooling air come in from inside the supporting frame in treadmill applications. Apertures may be provided in the shaft or the stator core, or both, to provide coolant paths. The present invention can further provide a sealed motor housing for certain applications.
The present invention can provide an extended lifetime for its associated belt through the lower roller surface temperature at all speed range and load conditions by using additional cooling methods, such as a coolant pump or fan including blower for moving coolant into coolant channels. Such methods need not rely on the motor rotating speed and supporting structure. Alternatively, some methods can utilize apparatus which is associated with a rotating part of the outer rotor motor to increase coolant flow. For example, an additional passive fan may be provided that rotates synchronously with the roller. In some embodiments, a thermally conductive insertion rod can be inserted into the coolant channel inside a stator shaft to increase cooling effects. The inserted rod can be shaped, such as with fins, to increase heat transfer surface areas, for convection, conduction, or both. Such fins, or grooved channels, might be helically arranged to provide for additional coolant movement. Also, the surface of the shaft can be machined, forged or cast to provide such effects integrally.
The present invention can also reduce motor cogging torque and improve motor running smoothness especially at low speeds by using a motor with a fractional pitch stator winding with, for example, a 21 stator slot and 16 magnetic pole or 8 magnetic pole configuration. Using fractional pitch winding configurations reduces the net cogging torque by making the contribution of cogging from each magnet pole out of phase with those of the other magnets. The present invention can also improve motor running smoothness by using a magnet shaping method to change the geometric shape of the magnets so that the motor cogging torque is minimized and the motor smoothness is improved. The present invention can also improve motor running smoothness by skewing the stator slots or magnets at a small angle less than or equal to one slot pitch. The present invention can use any of the above cogging torque reducing methods singly or in combination to produce a belt driving system, such as a treadmill, of exceptional smoothness.
In order to achieve fast speed response to load conditions, such as step fall in a treadmill application, an advanced field orientation control algorithm can be used for the motor controller. Fast speed response and accurate speed control require accurate speed and position information of the rotor.
The present invention can also improve motor speed performance by using a high resolution speed and position sensor. It is particularly desirable in applications such as treadmills to have accurate motor rotor position and speed feedback information. One approach is to use an encoder. In one embodiment of the invention and unlike a traditional encoder having the encoder's disk mounted onto the rotating shaft, the encoder disk is mounted onto the rotating roller or end cap directly or through an adapter. The encoder-sensing device is then mounted onto the stationary shaft through a hub or adapter.
Another suitable high resolution device is a resolver. In one embodiment of the invention and unlike a traditional resolver that has the resolver rotor mounted to the rotating shaft and resolver stator mounted to the motor stationary frame, the rotor of the resolver is mounted onto the rotating roller or the end cap, and the stator of the resolver is secured to the non-rotating shaft.
An addition feature of the invention is to have an outer rotor motor designed to have sinusoidal back EMF for treadmill applications along with the sinusoidal current field orientation control method thus achieving minimum torque ripple and smoothness especially at low speed.
By providing an effective motor cooling method, a motor system according to the present invention can be run at higher efficiency and at lower surface temperature, increasing the life of the belt and making the system more reliable. By providing the above-discussed additional advantages to motor operation, a greater smoothness may be achieved in the belt drive systems of the present invention.
BRIEF DESCRIPTION OF THE DRAWINGSThe preferred embodiments of the present invention will be better understood by reference to the drawings where parts are designated by like numerals throughout.
It will be readily understood that the components and methods of cooling, smoothness and fast response of the present invention, as generally described and illustrated in the figures herein, can be designed in a wide variety of different configurations and combinations depending on the specific application for a motor. Thus, the following more detailed description of the embodiments of the system and methods of the present invention, as represented in
In
In
In
The outer-rotor motor 9 comprises the stator shaft 70, the stator 28, the rotor 22 which includes roller housing 130 and magnets 24, a pair of rotor end caps 18, 34 and a high resolution rotor sensing mechanism 40. The stator 28 is firmly mounted to the shaft 70 such as by a key 30 to prevent the stator 28 from rotating. In this embodiment, the rotor 22 is rotatably supported by its end-caps 18, 34 and bearings 20, 36. In certain cases, the rotor 22 can be supported directly by the bearings 20, 36 and the end-caps 18, 34 can be eliminated. Two C-shaped snap rings 76, 78 are used to secure the bearings 20, 36 and prevent axial movements along the stator shaft 70. The lead wires 52 from stator 28 go through apertures, i.e., holes 62, 64 in the stator shaft 70, to connect to the motor controller 50. The sensor mechanism 40 generally has two sections. One section is attached to the rotor 22, and the other section is clamped to the stator shaft 70, as further discussed below. Sensor mechanism lead-wires 60 go through hole 177 in the stator shaft 70 to connect to the controller 50. When the fan 44 is on, air flows in at the first end of the shaft 74 through the central coolant channel 73 and out at a second end of the shaft 72. Portions of the cooling air can also flow through hole 54, through motor air gap 26, then though holes 58 to remove heat from inside the motor 9. The exemplary holes in the stator shaft 70 are for illustrative purposes. There can be multiple holes for each stated purpose and the holes need not be at a 90 degree angle to the shaft wall surface.
In applications that require a sealed motor, the ventilation holes 54 and 58 on the shaft preferably no longer exist. Holes for lead wires 64, 62 and 177 of the motor and the sensors to come outside will be sealed. The heat generated by the stator 28 can be removed by the air that flows through the coolant channel 73.
In
In
The shape or arrangement, or both, of the holes 296 on the end cap 298 can be designed to assist airflow away from the motor inside housing, especially when motor runs at higher speed. In addition, or alternatively, a fan type device 300 such as a concentric series of fan or propeller blades, or the like, can be secured to the rotating roller housing 130, or secured to the end cap 298, which is also rotating, to assist in the movement of air.
A set of longitudinal holes or stator coolant channels 306 through the stator core lamination stack can allow air flow through, thus further removing heat. In this case, the cooling-air flows in from the first end 326 of the semi-hollow shaft 370, then through the first end holes 314, 340 of the shaft, then through both air gap 310 and lamination holes 306, then through the second end holes 302, 356 of the shaft or holes on the end-cap 296, or both, to carry heat away.
Effective cooling methods can improve motor performance greatly in terms of efficiency, motor power density, motor size and the life of the motor. The temperature of the motor may also have direct impact on other components such as the belt on treadmill and conveyor. Therefore, the illustrated cooling methods and its variations herein are important objects of the present invention.
Motor cogging torque can have a great effect on the smoothness of the motor operation, especially in treadmill application. Referring to
Therefore, in order to provide smoother motor and belt performance, some embodiments of the motor of the present invention may use fractional pitch winding configuration, which reduces the net cogging torque by making the contribution of the dR/dθ from each magnet pole out of phase with those of the other magnets. The basic idea is to arrange the number combination of the stator slots and rotor magnets, such that, the overall magnetic flux distribution will remain unchanged or the change is minimized, while the rotor is rotating. In the ideal case, the cogging torque sums to zero at all positions. In reality, however, some residual cogging torque remains.
Referring to
Referring to
In treadmill applications, load varies significantly when people walking or running on it. Traditionally a flywheel is used to reduce or smooth the speed variation as load changes. By using the outer rotor motor belt driving system, the flywheel is no longer needed. However this poses higher requirements on the motor controller system to provide fast torque response and achieve accurate speed control.
There are at least two types of high resolution rotor position sensing devices that are suitable for use in outer rotor motor applications according to the invention. First such device is encoder. An encoder 372 is shown in
A dust cover 388 is attached to the hub by screws 390, 402 to prevent foreign objects from contaminating the encoder. The dust cover 388 can also be attached to the roller. In this case, it will rotate with the roller. The encoder 372 could be mounted either inside the end cap 376 or outside the end cap 376.
A second such higher resolution rotor position sensing device can be a resolver 410 as shown in
While in the foregoing specification this invention has been described in relation to certain preferred embodiments thereof, and many details have been set forth for purpose of illustration, it will be apparent to those skilled in the art that the invention is susceptible to additional embodiments and that certain of the details described herein can be varied considerably without departing from the basic principles of the invention.
Claims
1. A direct drive outer rotor motor comprising:
- a) a rotor with magnets secured inside a housing; the rotor surrounding a stator with an air gap between the rotor and stator;
- b) a stator shaft for allowing a coolant to pass through said stator shaft by flow in from one side of said stator shaft, and out from the other side of said stator shaft wherein at least a portion of said stator shaft is configured with a coolant channel adapted to permit said to coolant flow;
- c) a stator mounted inside the rotor on said stator shaft;
- d) at least one bearing secured to said stator shaft and said rotor directly or through an end-cap mechanism for permitting said rotor to rotate with respect to said stator shaft; and
- e) whereby heat is allowed to be carried away by said coolant that passes through said stator shaft, or said air gap, or both.
2. The direct drive outer rotor motor of claim 1 further comprising: said stator shaft having holes configured through the wall of said stator shaft thereby allowing said coolant to pass through said air gap between said rotor and said stator.
3. The direct drive outer rotor motor of claim 1 further comprising: a thermally conductive rod located within said shaft.
4. The direct drive outer rotor motor of claim 3 further comprising: said thermally conductive rod having fins.
5. The direct drive outer rotor motor of claim 1 further comprising: at least one of said end caps having a through hole for the passage of coolant.
6. The direct drive outer rotor motor of claim 5 further comprising: said end cap through hole being shaped and arranged to induce coolant flow.
7. The direct drive outer rotor motor of claim 1 further comprising: a fan-type device secured to one of said rotor or said end cap to induce coolant flow.
8. The direct drive outer rotor motor of claim 1 further comprising: said motor being sealed wherein said end caps do not have through holes and through holes in the wall of the shaft are sealed.
9. The direct drive outer rotor motor of claim 1 further comprising: said stator having a plurality of through-holes through a core of said stator.
10. The direct drive outer rotor motor of claim 1 wherein said motor is constructed by using a fractional pitch winding configuration in order to minimize motor cogging torque.
11. The direct drive outer rotor motor of claim 10 further comprising: said motor being constructed with skewed magnets or stator slots in order to minimize motor cogging torque.
12. The direct drive outer rotor motor of claim 1 further comprising: said motor being constructed with skewed magnets or stator slots in order to minimize motor cogging torque.
13. The direct drive outer rotor motor of claim 10 further comprising: the motor being constructed with shaped magnets in order to minimize motor cogging torque.
14. The direct drive outer rotor motor of claim 11 further comprising: the motor being constructed with shaped magnets in order to minimize motor cogging torque.
15. The direct drive outer rotor motor of claim 1 further comprising: the motor being constructed with shaped magnets in order to minimize motor cogging torque.
16. A belt driving system, comprising:
- a) a frame structure;
- b) a first pulley and at least one other pulley, said pulleys rotatably secured to said frame structure and positioned substantially parallel to each other;
- c) a belt secured over said pulleys so as to rotatably move when said first pulley is rotated;
- d) said first pulley having a motor integral therewith for rotating said first pulley, wherein the motor includes: i) a rotor with magnets secured inside a housing; the rotor surrounding a stator with an air gap between the rotor and stator; ii) a stator shaft for allowing a coolant to pass through said stator shaft by flow in from one side of said stator shaft, and out from the other side of said stator shaft wherein at least a portion of said stator shaft is configured with a coolant channel adapted to permit a coolant flow; iii) a stator mounted inside the rotor on said stator shaft; and vi) at least one bearing secured to said stator shaft and said rotor directly or through an end-cap mechanism for permitting said rotor to rotate with respect to said stator shaft; and
- e) a motor controller operably attached to said motor.
17. The belt driving system of claim 16 further comprising said motor controller having field orientation control algorithms for said motor.
18. The belt driving system of claim 16 wherein said motor further comprises;
- a) an encoder having a rotating disk and a sensing device,
- b) said encoder being attached to said motor and used to provide accurate rotor position and speed information;
- c) said disk being secured to an end cap or to the inside of said rotor so as to rotate with said rotor; and
- d) said sensing device being secured to said shaft and thereby remaining stationary during motor operation.
19. The belt driving system of claim 16 wherein said motor further comprises;
- a) a resolver having a rotor and a stator,
- b) said resolver being attached to said motor and used to provide accurate rotor position information;
- c) said rotor of said resolver being secured to the inside of said motor rotor so as to rotate with said motor rotor; and
- d) said stator of said resolver being secured to said motor shaft and thereby remaining stationary during motor operation.
20. The belt driving system of claim 16 further comprising a cooling fan or pump secured at one end of said shaft and used to induce coolant to move through said coolant channel.
21. The belt driving system of claim 20 wherein the operation of said cooling fan or pump is independent of the rate of rotation of said motor.
22. The belt driving system of claim 20 further comprising said cooling fan or pump having an coolant inlet within said frame structure.
23. The belt driving system of claim 16 further comprising motor mountings secured to said frame structure and providing support for said shaft.
24. The belt driving system of claim 23 comprising at least one clamp mechanism secured within said motor mountings for supporting and preventing rotation of said shaft.
25. The belt driving system of claim 24 wherein at least one clamp mechanism includes a resilient material to absorb vibration caused by the outer rotor motor.
26. The belt driving system of claim 24 wherein at least one clamp mechanism includes a heat insulation material to stop heat transferring from said pulleys to said frame structure.
27. The belt driving system of claim 16 further comprising said stator having a plurality of coolant channels configured so as to permit said coolant to flow through the stator coolant channels in a direction generally parallel to said shaft.
28. The belt driving system of claim 16 wherein said motor is constructed by using a fractional pitch winding configuration.
29. The belt driving system of claim 16 wherein said motor is constructed with skewed magnets or stator slots.
30. The belt driving system of claim 16 wherein said motor is constructed with shaped magnets in order to minimize motor cogging torque.
31. The belt driving system of claim 16 wherein said motor is constructed with at least one of a fractional pitch winding configuration, skewed magnets or stator slots, and shaped magnets in order to minimize motor cogging torque.
32. The belt driving system of claim 16 further comprising: said shaft having holes through the wall of said shaft thereby allowing at least a portion of said coolant to pass through said air gap between said rotor and said stator.
33. The belt driving system of claim 16 further comprising: a thermally conductive rod located within said shaft.
34. The belt driving system of claim 33 further comprising: said thermally conductive rod having fins.
35. The belt driving system of claim 16 further comprising: said end cap mechanism having a through hole for the passage of coolant.
36. The belt driving system according to claim 35 further comprising: said end cap mechanism through hole being shaped and arranged to induce coolant flow.
37. The belt driving system of claim 16 further comprising: a fan-type device secured to one of said rotor or said end cap mechanism to induce coolant flow.
38. The belt driving system of claim 16 further comprising: said motor being sealed wherein said end cap mechanism does not have through holes and through holes in the wall of the shaft are sealed.
39. The belt driving system of claim 16 further comprising: said stator having a plurality of through-holes through a core of said stator to induce coolant flow.
40. The belt driving system of claim 16 wherein the belt driving system is configured as a conveyor and includes a control panel structure and operably connected to the motor controller and wherein said control panel includes at least a set of user controls effective to permit a user to control the speed of said belt.
41. An exercise treadmill, comprising:
- a) a frame structure;
- b) a first and a second pulley, said pulleys rotatably secured to said frame structure and positioned substantially parallel to each other;
- c) a belt secured over said pulleys so as to move in a longitudinal direction when said first pulley is rotated;
- d) a control system;
- e) a control panel secured to said frame structure and operatively connected to said control system wherein said control panel includes at least one display and a set of user controls effective to permit a user to control the speed of said belt; and
- f) a motor, integral with and for rotating said first pulley wherein said motor includes: i) a rotor having a housing that forms a generally cylindrical outer surface for said first pulley and includes a plurality of permanent magnets forming a set of poles secured to and spaced about the inner circumference of said housing, ii) a heat transfer coolant, iii) a stator shaft extending through said rotor and fixed to said frame structure, wherein at least a portion of said shaft is configured with a coolant channel adapted to permit said coolant to flow along said coolant channel effective to provide convective cooling of said motor, iv) a stator configured with a plurality of slots fixed to said stator shaft and forming an air gap with said poles, v) a plurality of stator windings wound through said slots, and vi) at least one bearing secured between said stator shaft and said rotor for permitting said rotor to rotate with respect to said stator shaft; and
- g) a motor controller operatively connected to said control system for controlling the speed of said motor.
42. The treadmill of claim 41 wherein said coolant channel extends substantially through the length of said stator shaft.
43. The treadmill of claim 42 wherein said coolant channel is concentric with said stator shaft and has a generally circular cross section.
44. The treadmill of claim 41 wherein said coolant channel extends through at least a portion of said stator shaft and said stator shaft additionally includes a plurality of apertures extending from said coolant channel to the outer surface of said stator shaft effective to permit at least portion of said coolant to flow from said coolant channel through said air gap.
45. The treadmill of claim 41 wherein said coolant channel extends through at least a portion of said stator shaft and a thermally conductive member is located within said coolant channel.
46. The treadmill of claim 45 wherein said thermally conductive member is configured so as to permit at least a portion of said coolant to flow through said thermally conductive member.
47. The treadmill of claim 46 wherein said thermally conductive member includes surface areas in contact with said coolant that are greater than the corresponding surface area of said coolant channel where said conductive member is located.
48. The treadmill of claim 45 wherein said thermally conductive member includes a plurality of fins extending longitudinally along said coolant channel that form said surface areas.
49. The treadmill of claim 41 wherein said motor includes at least one end cap which is configured with at least one aperture to permit said coolant to flow out of said rotor.
50. The treadmill of claim 41 wherein said motor includes at least one end cap which is sealed against air flow through said end cap.
51. The treadmill of claim 41 wherein said stator is configured with a plurality of stator coolant channels so as to permit at least a portion of said coolant to flow through said stator.
52. The treadmill of claim 41 wherein said coolant channel is configured in the outer surface of said stator shaft.
53. The treadmill of claim 41 wherein said coolant is a gas.
54. The treadmill of claim 53 wherein said gas is air.
55. The treadmill of claim 41 wherein said coolant is a liquid.
56. The treadmill of claim 41 additionally including a coolant transfer mechanism connected to said stator shaft for transferring said coolant through said coolant channel.
57. The treadmill of claim 56 wherein said coolant is gas and said transfer mechanism includes a fan or a blower.
58. The treadmill of claim 56 wherein said coolant is a liquid and said transfer mechanism includes a pump.
59. The treadmill of claim 56 wherein said transfer mechanism includes a filter for filtering said coolant.
60. An exercise treadmill, comprising:
- a) a frame structure;
- b) a first and a second pulley, said pulleys rotatably secured to said frame structure and positioned substantially parallel to each other;
- c) a belt secured over said pulleys so as to move in a longitudinal direction when said first pulley is rotated;
- d) a control system;
- e) a control panel secured to said frame structure and operatively connected to said control system wherein said control panel includes at least one display and a set of user controls effective to permit a user to control the speed of said belt; and
- f) a motor, integral with and for rotating said first pulley wherein said motor includes: i) a rotor having a housing that forms a generally cylindrical outer surface for said first pulley and includes a plurality of permanent magnets forming a set of poles secured to and spaced about the inner circumference of said housing, ii) a stator shaft fixed to said frame structure, iii) a heat transfer coolant, iv) a coolant transfer mechanism for transferring said coolant through at least a portion of said motor, wherein the operation of said mechanism is independent of the rate of rotation of said motor, v) a stator configured with a plurality of slots fixed to said stator shaft, vi) a plurality of stator windings wound through said slots, and vii) at least one bearing secured between said stator shaft and said rotor for permitting said rotor to rotate with respect to said stator shaft, and
- g) a motor controller operatively connected to said control system for controlling the speed of said motor.
61. The treadmill of claim 60 wherein said transfer mechanism includes a fan operatively connected to said control system or said motor controller and is effective to transfer at least a portion of said coolant through said air gap.
62. The treadmill of claim 61 wherein said motor includes at least one end cap that is configured to include a set of apertures and wherein said transfer mechanism is effective to transfer at least a portion of said coolant through said set of apertures.
63. An exercise treadmill, comprising:
- a) a frame structure;
- b) a first and a second pulley, said pulleys rotatably secured to said frame structure and positioned substantially parallel to each other;
- c) a belt secured over said pulleys so as to move in a longitudinal direction when said first pulley is rotated;
- d) a control system;
- e) a control panel secured to said frame structure and operatively connected to said control system wherein said control panel includes at least one display and a set of user controls effective to permit a user to generate a speed command signal for controlling the speed of said belt to a desired speed; and
- f) a motor, integral with and for rotating said first pulley wherein said motor includes: i) a rotor having a housing that forms a generally cylindrical outer surface for said first pulley and includes a plurality of permanent magnets forming a set of poles secured to and spaced about the inner circumference of said housing, ii) a stator shaft fixed to said frame structure, iii) a stator configured with a plurality of slots fixed to said stator shaft, iv) a plurality of stator windings wound through said slots, v) at least one bearing secured between said stator shaft and said rotor for permitting said rotor to rotate with respect to said stator shaft, and vi) a high resolution sensing mechanism operatively connected to said rotor for generating a rotor position information signal,
- g) a motor controller operatively connected to said control system and said sensing mechanism responsive to said speed command signal in combination with said rotor speed, and position signals to apply power to said stator windings for controlling the speed of said motor to achieve said desired belt speed.
64. The treadmill of claim 63 wherein said sensing mechanism includes an optical encoder.
65. The treadmill of claim 63 wherein said sensing mechanism includes a resolver.
66. The treadmill of claim 65 wherein said resolver includes a resolver rotor secured for rotation with said rotor and a resolver stator secured to said stator shaft.
67. The treadmill of claim 63 wherein said treadmill does not include a hall effect sensor.
68. An exercise treadmill, comprising:
- a) a frame structure;
- b) a first and a second pulley, said pulleys rotatably secured to said frame structure and positioned substantially parallel to each other;
- c) a belt secured over said pulleys so as to move in a longitudinal direction when said first pulley is rotated;
- d) a control system;
- e) a control panel secured to said frame structure and operatively connected to said control system wherein said control panel includes at least one display and a set of user controls effective to permit a user to control the speed of said belt; and
- f) a motor, integral with and for rotating said first pulley wherein said motor includes: i) a rotor having a housing that forms a generally cylindrical outer surface for said first pulley and includes a plurality of permanent magnets forming a set of poles secured to and spaced about the inner circumference of said housing, ii) a stator shaft fixed to said frame structure, iii) a stator configured with a plurality of slots fixed to said stator shaft and forming an air gap with said poles, iv) a plurality of stator windings wound through said slots, v) wherein said motor is configured to minimize cogging torque wherein said configuration is selected from the group consisting of said stator windings having a fractional pitch, said stator slots orientated in a skewed relationship with said the edges of said permanent magnets, and said magnets are shaped so as to result in a substantially sinusoidally distributed magnetic flux in said air gap, and vi) at least one bearing secured between said stator shaft and said rotor for permitting said rotor to rotate with respect to said stator shaft; and
- g) a motor controller operatively connected to said control system for controlling the speed of said motor.
69. The treadmill of claim 68 including both said stator windings having fractional pitch and said stator slots orientated in a skewed relationship with said edges of said permanent magnets.
70. The treadmill of claim 69 additionally including said magnet shaping.
71. The treadmill of claim 68 including both said stator windings having fractional pitch and said magnet shaping.
72. The treadmill of claim 68 including both said stator slots orientated in a skewed relationship with said edges of said permanent magnets and said magnet shaping.
73. The treadmill of claim 68 for wherein there are 21 of said stator slots and 8 or 16 of said poles.
74. An exercise treadmill, comprising:
- a) a frame structure;
- b) a first and a second pulley, said pulleys rotatably secured to said frame structure and positioned substantially parallel to each other, said first pulley is rotatably secured to a rearward portion of said frame structure;
- c) a belt secured over said pulleys so as to move in a longitudinal direction when said first pulley is rotated;
- d) a control system;
- e) a control panel secured to said frame structure and operatively connected to said control system wherein said control panel includes at least one display and a set of user controls effective to permit a user to control the speed of said belt; and
- f) a motor, integral with and for rotating said first pulley wherein said motor includes: i) a rotor having a housing that forms a generally cylindrical outer surface for said first pulley and includes a plurality of permanent magnets forming a set of poles secured to and spaced about the inner circumference of said housing, ii) a stator shaft extending through said rotor, iii) a stator configured with a plurality of slots fixed to said stator shaft and forming an air gap with said poles, iv) a plurality of stator windings wound through said slots, and v) at least one bearing secured between said stator shaft and said rotor for permitting said rotor to rotate with respect to said stator shaft; and
- g) a motor controller operatively connected to said control system for controlling the speed of said motor.
75. An exercise treadmill, comprising:
- a) a frame structure;
- b) a first and a second pulley, said pulleys rotatably secured to said frame structure and positioned substantially parallel to each other;
- c) a belt secured over said pulleys so as to move in a longitudinal direction when said first pulley is rotated;
- d) a control system;
- e) a control panel secured to said frame structure and operatively connected to said control system wherein said control panel includes at least one display and a set of user controls effective to permit a user to control the speed of said belt; and
- f) a motor, integral with and for rotating said first pulley wherein said motor includes: i) a rotor having a housing that forms a generally cylindrical outer surface for said first pulley and includes a plurality of permanent magnets forming a set of poles secured to and spaced about the inner circumference of said housing, ii) a stator shaft extending through said rotor iii) a stator configured with a plurality of slots fixed to said stator shaft and forming an air gap with said poles, iv) a plurality of stator windings wound through said slots, and v) at least one bearing secured between said stator shaft and said rotor for permitting said rotor to rotate with respect to said stator shaft; and
- g) at least one clamping mechanism including a resilient material for clamping said stator shaft to said frame structure wherein said resilient material is effective to insulate said frame structure from vibrations generated by said motor.
- h) a motor controller operatively connected to said control system for controlling the speed of said motor.
76. An exercise treadmill, comprising:
- a) a frame structure;
- b) a first and a second pulley, said pulleys rotatably secured to said frame structure and positioned substantially parallel to each other;
- c) a belt secured over said pulleys so as to move in a longitudinal direction when said first pulley is rotated;
- d) a control system;
- e) a control panel secured to said frame structure and operatively connected to said control system wherein said control panel includes at least one display and a set of user controls effective to permit a user to control the speed of said belt; and
- f) a motor, integral with and for rotating said first pulley wherein said motor includes: i) a rotor having a housing that forms a generally cylindrical outer surface for said first pulley and includes a plurality of permanent magnets forming a set of poles secured to and spaced about the inner circumference of said housing, ii) a stator shaft extending through said rotor iii) a stator configured with a plurality of slots fixed to said stator shaft and forming an air gap with said poles, iv) a plurality of stator windings wound through said slots, and v) at least one bearing secured between said stator shaft and said rotor for permitting said rotor to rotate with respect to said stator shaft; and
- g) at least one clamping mechanism including a thermal insulation material for clamping said stator shaft to said frame structure wherein said thermal insulation material is effective to insulate said frame structure from the heat generated by said motor.
- h) a motor controller operatively connected to said control system for controlling the speed of said motor.
77. An exercise treadmill, comprising:
- a) a first and a second frame structure, wherein said first and said second frame structure each is configured with at least one aperture;
- b) a first and a second pulley, said pulleys rotatably secured to said frame structures and positioned substantially parallel to each other;
- c) a belt secured over said pulleys so as to move in a longitudinal direction when said first pulley is rotated;
- d) a control system;
- e) a control panel secured to said frame structure and operatively connected to said control system wherein said control panel includes at least one display and a set of user controls effective to permit a user to control the speed of said belt; and
- f) a motor, integral with and for rotating said first pulley wherein said motor includes: i) a rotor having a housing that forms a generally cylindrical outer surface for said first pulley and includes a plurality of permanent magnets forming a set of poles secured to and spaced about the inner circumference of said housing, ii) a heat transfer coolant, iii) a stator shaft extending through said rotor and fixed at each end to said first and said second frame structures respectively, wherein at least a portion of said shaft is configured with a coolant channel adapted to permit said coolant to flow along said coolant channel and through said apertures in said frame structures effective to provide convective cooling of said motor, iv) a stator configured with a plurality of slots fixed to said stator shaft and forming an air gap with said poles, v) a plurality of stator windings wound through said slots, and vi) at least one bearing secured between said stator shaft and said rotor for permitting said rotor to rotate with respect to said stator shaft; and
- g) a motor controller operatively connected to said control system for controlling the speed of said motor.
78. The treadmill of claim 77 wherein said motor controller is secured within said first frame structure.
79. An exercise treadmill, comprising:
- a) a frame structure;
- b) a first and a second pulley, said pulleys rotatably secured to said frame structure and positioned substantially parallel to each other;
- c) a belt secured over said pulleys so as to move in a longitudinal direction when said first pulley is rotated;
- d) a control system;
- e) a control panel secured to said frame structure and operatively connected to said control system wherein said control panel includes at least one display and a set of user controls effective to permit a user to control the speed of said belt; and
- f) a motor, integral with and for rotating said first pulley wherein said motor includes: i) a rotor having a housing that forms a generally cylindrical outer surface for said first pulley and includes a plurality of permanent magnets forming a set of poles secured to and spaced about the inner circumference of said housing, ii) a heat transfer coolant, iii) a stator shaft extending through said rotor and fixed to said frame structure, wherein at least a portion of said shaft is configured with a coolant channel adapted to permit said coolant to flow along said coolant channel effective to provide convective cooling of said motor, iv) a stator configured with a plurality of slots fixed to said stator shaft and forming an air gap with said poles, v) a plurality of stator windings wound through said slots, and vi) at least one bearing secured between said stator shaft and said rotor for permitting said rotor to rotate with respect to said stator shaft; and
- g) a motor controller operatively connected to said control system for having field orientation control algorithms to control the speed of said motor.
Type: Application
Filed: Oct 5, 2004
Publication Date: May 26, 2005
Inventor: Wei Cheng (Palatine, IL)
Application Number: 10/958,809