The problem of Eddy current losses in the electrical actuators is well known. Some way for solving the problem is described in “Design and Test of an Ironless, Three Degree-of-Freedom, Magnetically Levitated Linear Actuator with Moving Magnets” by J. V. Jansen, etc.—2005 IEEE International Conference on Electric Machines and Drives. For reduction of Eddy current losses the ceramic plate is used. The plate increase the distance between stationary and moving conductive part. This way is increasing actuator envelope. When using thick and strong magnets or go to high speed (several meter per second) the thickness of ceramic plate and therefore actuator envelope increase dramatically.
FIG. 1.1—Linear actuator with linear flat electric machine
FIG. 1.2—Linear actuator with linear flat electric machine and. Eddy current reducer
FIG. 2—Eddy current reducer for linear actuators with linear flat electric machine and linear tube electric machine
FIG. 3.1—Linear actuator with linear tube electric machine
FIG. 3.2—Linear actuator with linear tube electric machine and Eddy current reducer
FIG. 4.1—Rotary actuator with rotary radial (magnets inside) ironless electric machine
FIG. 4.2—Rotary actuator with rotary radial (magnets inside) ironless electric machine and Eddy current reducer
FIG. 5—Eddy current reducer for rotary actuators with rotary radial ironless electric machine (magnets inside and outside)
FIG. 6.1—Rotary actuator with rotary radial (magnets outside) ironless electric machine
FIG. 6.2—Rotary actuator with rotary radial (magnets outside) ironless electric machine and Eddy current reducer
FIG. 7.1—Rotary actuator with rotary axial ironless electric machine
FIG. 7.2—Rotary actuator with rotary axial ironless electric machine and Eddy current reducer
FIG. 8—Eddy current reducer for rotary actuators with rotary axial ironless electric machine
12—forcer (linear flat actuator)
14—table top (linear flat actuator)
16—magnet track (linear flat actuator)
18—magnetic plate (linear flat actuator)
20—magnets (linear flat actuator)
22—linear bearings (linear flat actuator)
24—actuator base (linear flat actuator)
26—Eddy current reducer (linear actuator)
28—pieces of ferromagnetic material or compound
30—non-magnetic spacers
32—forcer (linear tube actuator)
34—actuator base (linear tube actuator)
36—magnet track (linear tube actuator)
38—magnets (linear tube actuator)
40—tube (linear tube actuator)
42—linear bearings (linear tube actuator)
44—stator (rotary actuator, magnets inside)
46—actuator housing (rotary actuator, magnets inside)
48—rotor (rotary actuator, magnets inside)
50—magnets (rotary actuator, magnets inside)
52—table top (rotary actuator, magnets inside)
54—bearings (rotary actuator, magnets inside)
56—Eddy current reducer (rotary actuator with radial electric machine)
58—pieces of ferromagnetic material or compound
60—non-magnetic spacers
62—stator (rotary actuator, magnets outside)
64—actuator housing (rotary actuator, magnets outside)
66—rotor (rotary actuator, magnets outside)
68—magnets (rotary actuator, magnets outside)
70—table top (rotary actuator, magnets outside)
72—bearings (rotary actuator, magnets outside)
74—stator (rotary actuator, axial)
76—actuator base (rotary actuator, axial)
78—rotor (rotary actuator, axial)
82—table top (rotary actuator, axial)
84—bearings (rotary actuator, axial)
86—Eddy current reducer (rotary actuator, axial)
88—pieces of ferromagnetic material or compound
90—non-magnetic spacers
Linear Actuator with Linear Flat Electric Machine.
Linear actuator with linear flat electric machine is shown on
The construction of the invented linear electric actuator with linear flat electric machine includes forcer 12 mounted to the table top 14 with Eddy current reducer 26 (
The Eddy current reducer for linear actuator with linear flat electric machine is shown on
The invented design of linear actuator with linear flat electric machine not only reduces the module of magnetic field in conductive part but it also greatly reduces the normal component of magnetic field which creates Eddy currents (thereby the tangential component may increase but it do not create Eddy currents). Due to this feature, the very thin and magnetically saturated eddy current reducer has insignificant magnetic attraction and cogging. The Eddy current reducer finally reduces eddy current losses in table top 14.
Linear Actuator with Linear Tube Electric Machine.
Linear actuator with linear tube electric machine is shown on
The construction of the invented linear electric actuator with linear tube electric machine includes forcer 32 mounted to the actuator base 34 with Eddy current reducer 26 (
The Eddy current reducer for linear actuator with linear tube electric machine is shown on
The invented design of linear actuator with linear tube electric machine not only reduces the module of magnetic field in conductive part but it also greatly reduces the normal component of magnetic field which creates Eddy currents (thereby the tangential component may increase but it do not create Eddy currents). The Eddy current reducer finally reduces eddy current losses in actuator base 34.
Rotary Actuator with Rotary Radial (Magnets Inside) Ironless Electric Machine.
Rotary actuator with rotary radial (magnets inside) ironless electric machine is shown on
The construction of the invented rotary electric actuator with rotary radial (magnets inside) ironless electric machine includes ironless stator 44 mounted to the actuator housing 46 with Eddy current reducer 56 (
The Eddy current reducer for rotary actuator with rotary radial (magnets inside) ironless electric machine is shown on
The invented design of rotary actuator with rotary radial (magnets inside) ironless electric machine not only reduces the module of magnetic field in conductive part but it also greatly reduces the normal component of magnetic field which creates Eddy currents (thereby the tangential component may increase but it do not create Eddy currents). The Eddy current reducer finally reduces eddy current losses in actuator housing 46.
Rotary Actuator with Rotary Radial (Magnets Outside) Ironless Electric Machine.
Rotary actuator with rotary radial (magnets outside) ironless electric machine is shown on
The construction of the invented rotary electric actuator with rotary radial (magnets outside) ironless electric machine includes ironless stator 62 mounted to the actuator housing 64 with Eddy current reducer 56 (
The Eddy current reducer losses for rotary actuator with rotary radial (magnets outside) ironless electric machine is shown on
The invented design of rotary actuator with rotary radial (magnets outside) ironless electric machine not only reduces the module of magnetic field in conductive part but it also greatly reduces the normal component of magnetic field which creates Eddy currents (thereby the tangential component may increase but it do not create Eddy currents). The Eddy current reducer finally reduces eddy current losses in actuator housing 64.
Rotary Actuator with Rotary Axial Ironless Electric Machine.
Rotary actuator with rotary axial ironless electric machine is shown on
The construction of the invented rotary electric actuator with rotary axial ironless electric machine includes ironless stator 74 mounted to the actuator housing 76 with Eddy current reducer 86 (
The Eddy current reducer for rotary actuator with rotary axial electric machine is shown on
The invented design of rotary actuator with rotary axial ironless electric machine not only reduces the module of magnetic field in conductive part but it also greatly reduces the normal component of magnetic field which creates Eddy currents (thereby the tangential component may increase but it do not create Eddy currents). The Eddy current reducer finally reduces eddy current losses in actuator base 76.
Filing Document | Filing Date | Country | Kind | 371c Date |
---|---|---|---|---|
PCT/US2010/056100 | 11/10/2010 | WO | 00 | 5/14/2012 |
Number | Date | Country | |
---|---|---|---|
61281174 | Nov 2009 | US |