WO2017193352A1 - Générateur électrique réparti à entrefer magnétique - Google Patents

Générateur électrique réparti à entrefer magnétique Download PDF

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Publication number
WO2017193352A1
WO2017193352A1 PCT/CN2016/081944 CN2016081944W WO2017193352A1 WO 2017193352 A1 WO2017193352 A1 WO 2017193352A1 CN 2016081944 W CN2016081944 W CN 2016081944W WO 2017193352 A1 WO2017193352 A1 WO 2017193352A1
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WO
WIPO (PCT)
Prior art keywords
magnetic
coil
array
group
detector
Prior art date
Application number
PCT/CN2016/081944
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English (en)
Chinese (zh)
Inventor
许永顺
许名俊
许文毓
Original Assignee
宇生自然能源科技股份有限公司
宇生自然能源科技股份(香港)有限公司
宇生自然能源科技股份(新加坡)有限公司
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by 宇生自然能源科技股份有限公司, 宇生自然能源科技股份(香港)有限公司, 宇生自然能源科技股份(新加坡)有限公司 filed Critical 宇生自然能源科技股份有限公司
Priority to PCT/CN2016/081944 priority Critical patent/WO2017193352A1/fr
Publication of WO2017193352A1 publication Critical patent/WO2017193352A1/fr

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Classifications

    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02KDYNAMO-ELECTRIC MACHINES
    • H02K1/00Details of the magnetic circuit
    • H02K1/06Details of the magnetic circuit characterised by the shape, form or construction
    • H02K1/12Stationary parts of the magnetic circuit

Definitions

  • the invention relates to the technical field of a generator, in particular to a trans-magnetic gap generator which has a large amount of power generation and can prolong the magnetic assistance time.
  • the generator is composed of an induction coil group and a magnetic group, wherein the induction coil group has at least one coil, and the magnetic group is provided with two magnetic members at two ends of the coil axis, and the two magnetic members are opposite to each other by a heteropolar magnetic pole.
  • the magnetic group and the induction coil group can be respectively defined as a rotor and a stator, and the relative linear or rotational motion causes the coil of the induction coil group to generate a voltage due to magnetic line cutting, thereby achieving the purpose of power generation.
  • the generator when the generator is in operation, when the coil is connected to the load, the current and electromagnetic are generated by the right hand of the ampere, and the polarity of the coil magnetization is changed to cause magnetic repulsion and magnetic attraction with the magnetic component of the magnetic group. Because the two magnetic parts of the magnetic group simultaneously form a single and identical magnetic stress, a magnetic resistance that cannot be changed or counterbalanced is derived, so the kinetic energy caused by the magnetoresistance effect of the anti-energy proliferation of the conventional generator under load Loss, causing its energy conversion rate to drop;
  • a primary object of the present invention is to provide a trans-magnetic gap generator which can increase the forward magnetic assistance and avoid the magnetoresistance loss, thereby effectively increasing the amount of power generation.
  • Another object of the present invention is to provide a trans-magnetic gap generator capable of prolonging the duration of magnetic assisting action, thereby improving energy conversion efficiency.
  • the solution of the present invention is:
  • a transversal magnetic gap generator includes a magnetic column group, a coil array group and an inductive switch group, and the magnetic column group and the coil array group can generate relative motion;
  • the magnetic array is composed of at least one first magnetic member and at least one second magnetic member which are arranged at intervals and arranged in a moving direction.
  • the first and second magnetic members have the same length, and the magnetic poles of the first and second magnetic members
  • the axis is parallel to the moving direction, the magnetic poles of the adjacent first and second magnetic members are opposite poles, and the adjacent first and second magnetic members have a magnetic gap of equal width;
  • the coil array is disposed on one side of the magnetic column group, and the coil array group has at least one same axis and spaced apart induction coils, the induction coils respectively have a magnetizer and at least one winding around the magnetizer.
  • a coil and the coils are respectively connected or connected to a load, the induction coil is magnetized to induce polarity when the load is connected, the length of the induction coil is greater than the width of the magnetic gap, and is less than or equal to the length of the magnetic gap plus a magnetic member;
  • the inductive switch group includes at least one conduction detector disposed in the magnetic array and at least one disconnect detector and at least one conduction detector and at least one disconnect detector disposed in the coil array, wherein the inductive detector
  • the conduction detector of the magnetic array is disposed on the magnetic pole surface of the first and second magnetic members opposite to the induction coil according to the moving direction
  • the cutting detector of the magnetic array is disposed in the front magnetic member of the relative movement direction.
  • the direction of motion is relatively away from the magnetic pole surface of the induction coil
  • the conduction detector of the coil array is disposed at a magnetic pole surface of the induction coil that enters the magnetic column group according to the moving direction, and is connected to the coil array.
  • the detector When detecting the conduction detector of the first and second magnetic members, the detector causes the corresponding induction coil to be magnetized by being connected to the load, and the cutting detector of the coil array is disposed on the induction coil according to the moving direction.
  • the magnetic pole end surface of the magnetic array group is separated from the cutting detector of the coil array, the corresponding induction coil and the load are disconnected when the cutting detector of the first and second magnetic members is sensed.
  • the position of the induction coil of the coil array group is aligned with the same position of the adjacent magnetic members of the magnetic column group.
  • the induction coils of the coil array group are arranged in a misaligned position corresponding to the magnetic members of the magnetic column group.
  • a transversal magnetic gap generator includes: at least two magnetic column groups, at least one coil array group, and at least one inductive switch group, wherein the magnetic column group and the coil array group can synchronously generate relative motion;
  • the magnetic column group is respectively separated by at least one first magnetic member and at least one second magnetic member arranged in the moving direction, the first and second magnetic members are equal in length, and the first and second magnetic members are
  • the magnetic pole axis is parallel to the moving direction, the magnetic poles of the adjacent first and second magnetic members are opposite poles, and the adjacent first and second magnetic members have a magnetic gap of equal width, and the two opposite magnetic waves
  • the first and second magnetic members of the column group are arranged in opposite directions of the same pole magnetic pole;
  • the coil row is disposed between one side of the opposite magnetic column group or between two pairs of opposite magnetic column groups, and the coil row groups respectively have at least one same axis and are spaced apart from each other, and the induction coils respectively have a magnet and at least one coil wound around the magnetizer, and the coils are respectively connected or connected to a load, and the induction coil can be magnetized to induce a polarity when the load is connected, and the length of the induction coil is greater than the magnetic gap Width, and less than or equal to the length of the magnetic gap plus a magnetic member;
  • the inductive switch group includes at least one conduction detector disposed in the magnetic array, at least one disconnect detector, and at least one conduction detector disposed in the coil array and at least one disconnection detection The Detector, wherein the conduction detector of the magnetic array is disposed at a magnetic pole surface of the first and second magnetic members that enters the induction coil in a moving direction, and the magnetic detector The former magnetic member disposed in the relative movement direction is relatively away from the magnetic pole surface of the induction coil according to the moving direction, and the conduction detector of the coil array group is disposed on the induction coil relative to the magnetic column group according to the moving direction.
  • the conduction detecting device of the coil array group senses the conduction detecting device of the first and second magnetic members, and the corresponding induction coil can be magnetized by being connected to a load, the coil column
  • the cutting detector of the group is disposed on the magnetic pole surface of the magnetic coil group according to the moving direction of the induction coil, and the cutting detector for the coil array group senses the cutting of the first and second magnetic members When the device is used, the corresponding induction coil can be disconnected from the load.
  • the position of the induction coil of the coil array group is aligned with the same position of the adjacent magnetic members of the magnetic array group.
  • the induction coils of the coil array group are arranged in a misaligned position corresponding to the adjacent magnetic members of the magnetic array group.
  • the design of the inductive coil passing through the coil array of the present invention across the magnetic gap generator is larger than the magnetic gap width of the magnetic array, so that the magnetic stress can generate double magnetic assistance, and then the conduction of the inductive switch group is matched.
  • the load section can be formed by avoiding magnetization and forming a magnetoresistance phenomenon, thereby eliminating kinetic energy.
  • the loss, and the generation of complex forward magnetic assistance to increase its speed, and in the acceleration of inertia can effectively achieve the effect of increasing power generation, and further improve its energy conversion rate, so it can greatly increase its added value and improve its economic benefits. .
  • FIG. 1A and FIG. 1B are schematic diagrams showing the architecture of a first embodiment of a magnetic gap generator according to the present invention, illustrating a state in which the magnetic members of the magnetic array are in a state in which the magnetic poles of the magnetic poles are opposite.
  • FIGS. 2A and 2B are schematic views showing the operation of the first preferred embodiment of the transversal magnetic gap generator of the present invention.
  • FIG. 3A and FIG. 3B are schematic diagrams showing the structure and operation of the second preferred embodiment of the transversal magnetic gap generator according to the present invention, illustrating the state in which the magnetic members of the magnetic array are opposite to each other and the action of the magnetic poles.
  • FIGS. 4A and 4B are schematic diagrams showing the structure and operation of a third preferred embodiment of a transversal magnetic gap generator according to the present invention.
  • 5A and 5B are schematic diagrams showing the structure and operation of a fourth preferred embodiment of a transversal magnetic gap generator according to the present invention.
  • a cross-magnetic gap generator of the present invention with reference to the specific embodiments of the invention and its components, as illustrated in the accompanying drawings, all references to front and rear, left and right, top and bottom, upper and lower, and horizontal and vertical It is intended to facilitate the description, not to limit the invention, and to limit its components to any position or spatial orientation.
  • the drawings and the dimensions specified in the specification may be varied according to the design and needs of the specific embodiments of the invention, without departing from the scope of the invention.
  • the cross-magnetic gap generator of the present invention is composed of at least one magnetic array 10, at least one coil array 20 and at least one inductive switch group 30, as shown in FIG.
  • the coil array 20 can be defined as a rotor or a stator, respectively, which can synchronously generate relative motion;
  • the magnetic column group 10 respectively includes at least one first magnetic member 11 which are spaced apart and arranged in the moving direction. And at least one second magnetic member 12, the lengths of the first and second magnetic members 11, 12 are equal, and the magnetic pole axes of the first and second magnetic members 11, 12 are parallel to the moving direction, adjacent to the first
  • the magnetic poles of the two magnetic members 11, 12, or the second magnetic members 12, 11 are opposite poles, for example, the S pole corresponds to the S pole (as shown in FIG. 1A, FIG. 1B, and FIG. 2A, FIG. 2B) or N.
  • the pole corresponds to the N pole (as shown in FIG. 3A, FIG. 3B), and the adjacent first and second magnetic members 11, 12, or the second and first magnetic members 12, 11 have an equal width magnetic gap 15;
  • the coil array 20 is disposed between one side of the magnetic array 10 or between two pairs of opposing magnetic arrays 10, and the coil arrays 20 respectively have at least one same axis and are spaced apart from each other by an induction coil 21,
  • the induction coils 21 respectively have a magnetizer 22 and at least one coil 25 wound around the magnetizer 22, and the coils 25 are respectively connected or connected to a load, so that the induction coil 21 can be magnetized when the load is connected.
  • Inductive polarity wherein the length of the induction coil 21 is greater than the width of the magnetic gap 15 and less than or equal to the length of the magnetic gap 15 plus any of the magnetic members 11, 12;
  • the inductive switch group 30 includes at least one conduction detector 31 and at least one disconnect detector 32 disposed in the magnetic array 10 and at least one conduction detector disposed in the coil array 20 35 and at least one cut detector 36 for controlling conduction between the coil 25 and the load of the coil array 20, wherein the conduction detector 31 is disposed on the first and second magnetic
  • the pieces 11, 12 are oppositely entered into the magnetic pole surface of the induction coil 21 according to the moving direction (as shown in FIG. 2A, FIG. 2B, FIG. 3A), and the cutting detector 32 is disposed in the movement direction of the previous magnetic member.
  • the direction is relatively away from the magnetic pole surface of the induction coil 21 (as shown in FIG. 2A, FIG. 2B, FIG.
  • the conduction detector 35 is further disposed on the induction coil 21 of the coil array 20 to move.
  • the direction is opposite to the magnetic pole surface of the magnetic array 10, and the conduction detector 35 can sense the corresponding sensing when the conduction detector 31 of the first and second magnetic members 11 and 12 is sensed.
  • the coil 21 is connected to the load and magnetized to induce polarity (as shown in FIGS. 2A, 2B, and 3A), and the cut detector 36 is disposed on the line.
  • the induction coil 21 of the column group 20 is relatively away from the magnetic pole surface of the magnetic array 10 in the moving direction, and the cutting detector 36 senses the cutting of the first and second magnetic members 11 and 12.
  • the corresponding induction coil 21 can be disconnected from the load, and the induction coil 21 is not magnetized to induce polarity due to no load (as shown in FIG. 2A, FIG. 2B, FIG. 3B);
  • the group constitutes a trans-magnetic gap generator which can increase the energy conversion rate and increase the power generation amount.
  • the magnetic array 10 and the coil array 20 are relatively moved, for example.
  • the magnetic array 10 is displaced from left to right as the rotor, and when the coil array 20 is stationary as the stator, when the inductive switch group 30 is in the coil array 20, the inductive detector 35 in the relative movement direction of the induction coil 21 is inductive.
  • the detector 31 on the first magnetic member 11 or the second magnetic member 12 of the magnetic array 10 is turned on (as shown in FIG. 2A or FIG. 3A)
  • the induction coil 21, the coil 25 and the load of the coil array 20 are loaded.
  • the induction coil 21 is magnetized to induce polarity, and the polarity of both ends of the induction coil 21 is magnetized to correspond to the magnetic poles of the first and second magnetic members 11 and 12 (for example, as shown in FIG. 2A)
  • the entry end of the magnetic member 11 is the S pole
  • the entrance end of the induction coil 21 is magnetized to the S pole
  • the exit end is magnetized to the N pole.
  • the direction forms a pulling force of the suction, so that the coil array 20 and the magnetic column group 10 form a plurality of magnetic assisting forces in the same moving direction, and the magnetic resistance after the magnetization of the load is avoided, thereby effectively eliminating the dynamic loss of the proliferation.
  • use the multi-magnetic assist that produces the same direction of motion to accelerate the operation to increase the cutting frequency, thereby increasing the amount of power generation and effectively improving its energy conversion rate.
  • the magnetic array 10 and the coil array 20 continue to move relative to each other.
  • the cutting detector 36 senses the original action of the magnetic array 10 in the relative movement direction.
  • the first magnetic member 11 or 12 of the first magnetic member such as the second magnetic member 12 of FIG. 2B or the first magnetic member 11 of FIG. 3B
  • Breaking with the load without magnetization inducing the magnetic pole can prevent the magnetization of the original inductive coil 21 from generating a corresponding polarity, so that the magnetization polarity of the original inductive coil 21 in the opposite direction of movement and the relative motion of the magnetic array 10 are not caused.
  • the magnetic poles at the exit end of the first magnetic member of the first or second magnetic members 11, 12 of the original direction are oppositely attracted (such as the N pole to the S pole of FIG. 2B or the S pole to the N pole of FIG. 3). Avoiding the magnetic resistance that hinders the direction of motion can effectively reduce the running loss, accelerate the operation and increase the cutting frequency, thereby increasing the power generation and effectively increasing the energy conversion rate.
  • the third preferred embodiment of the present invention is as shown in FIG. 4A and FIG. 4B.
  • at least one coil array 20 is disposed between or on both opposite magnetic arrays 10 (this embodiment)
  • the coil row group 20 is disposed between the two magnetic column groups 10 as an embodiment
  • the first and second magnetic members 11 and 12 of the two synchronously displaceable opposing magnetic column groups 10 have the same size and are opposite in position
  • two The first and second magnetic members 11 and 12 of the opposite magnetic column group 10 are arranged in opposite directions with the same pole magnetic poles
  • the positions of the induction coils 21 of the coil array group 20 are corresponding to the magnetic field group 10 adjacent to the first and second magnetic poles.
  • the same positions of the pieces 11, 12 are arranged to increase the magnetic assistance at the same point in time.
  • the embodiment is a matrix disk generator which is magnetic on one side or two opposite sides of the opposite magnetic column group 10.
  • the column group 10 is divided into at least one coil row group 20, and the first and second magnetic members 11 and 12 of the synchronously displaced opposing magnetic column group 10 are of the same size and opposite positions, and the two pairs of magnetic columns are opposite.
  • the first and second magnetic members 11 and 12 of the 10 are arranged opposite to each other with the same magnetic poles, and the positions of the first and second magnetic members 11 and 12 of the induction coil 21 of the coil array 20 corresponding to the magnetic array 10 are arranged in a misaligned manner.
  • the magnetic array 10 can be continuously driven to effectively increase the inertial force in the direction of motion.
  • the design of the inductive coil 21 of the coil array 20 is larger than the width of the magnetic gap 15 of the magnetic array 10 across the magnetic gap generator, so that the magnetic interaction can generate double magnetic assistance. And by increasing the length of the induction coil 21, prolonging the magnetic assistance time, and then switching the conduction of the inductive switch group 30, so as to generate a complete forward magnetic assistance during the movement, by avoiding the magnetization magnetic
  • the resistive load section eliminates kinetic energy loss and utilizes the forward magnetic assistance that produces the same direction of motion to increase its operation, increase the cutting frequency, and thus increase the amount of power generation, thereby effectively increasing its energy conversion rate.
  • the present invention is an excellent creation, in addition to effectively solving the problems faced by existing generators, and greatly improving the efficiency, and the same or similar product creation is not seen in the same technical field. Or public use, and at the same time have an improvement in efficacy, so the use habits have been in line with the novelty and inventive conditions of the invention patent, and the invention patent application is filed according to law.

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  • Engineering & Computer Science (AREA)
  • Power Engineering (AREA)
  • Linear Motors (AREA)

Abstract

La présente invention concerne un générateur électrique réparti à entrefer magnétique, comportant au moins un groupe de colonnes magnétiques, au moins un groupe de colonnes de bobines et un groupe de commutateurs de détection. Le groupe de colonnes magnétiques comporte respectivement au moins une première partie magnétique et au moins une deuxième partie magnétique qui sont agencées à des intervalles ; un axe de pôle magnétique des première et deuxième parties magnétiques est parallèle à la direction de déplacement ; des pôles magnétiques, ayant la même polarité, des première et deuxième parties magnétiques adjacentes se font mutuellement face, et sont séparés par un entrefer magnétique ; le groupe de colonnes de bobines est disposé sur un côté du groupe de colonnes magnétiques ou entre deux groupes de colonnes magnétiques agencés de façon opposée ; le groupe de colonnes de bobines comporte respectivement au moins une bobine de détection ayant le même axe et est agencé à des intervalles ; la bobine de détection peut former un pôle magnétique parallèle à la direction de déplacement ; la longueur de la bobine de détection est supérieure à la largeur de l'entrefer magnétique, et est inférieure ou égale à la longueur de l'entrefer magnétique plus la partie magnétique, de façon à coopérer avec la commutation sélective entre l'ouverture et la fermeture du groupe de commutateurs de détection. De cette manière, un phénomène de magnétorésistance après une magnétisation peut être évité, une assistance d'alimentation multi-aimants ayant la même direction de déplacement peut être générée ; et un rapport de conversion d'énergie est augmenté.
PCT/CN2016/081944 2016-05-13 2016-05-13 Générateur électrique réparti à entrefer magnétique WO2017193352A1 (fr)

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Application Number Priority Date Filing Date Title
PCT/CN2016/081944 WO2017193352A1 (fr) 2016-05-13 2016-05-13 Générateur électrique réparti à entrefer magnétique

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PCT/CN2016/081944 WO2017193352A1 (fr) 2016-05-13 2016-05-13 Générateur électrique réparti à entrefer magnétique

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Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN113241487A (zh) * 2021-04-16 2021-08-10 湖南汽车工程职业学院 无人驾驶新能源汽车的电池防寒防冻装置

Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP0522950B1 (fr) * 1991-07-09 1997-05-28 Railway Technical Research Institute Moteur linéaire avec un élément mobile à aimantation à la base de la force linéaire résultant de l'interaction entre un élément à induction magnétostatique et une bobine électromagnétique
TW201025792A (en) * 2008-12-22 2010-07-01 Ind Tech Res Inst High efficient power generating module
CN204794383U (zh) * 2015-06-11 2015-11-18 宇生自然能源科技股份有限公司 电磁装置

Patent Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP0522950B1 (fr) * 1991-07-09 1997-05-28 Railway Technical Research Institute Moteur linéaire avec un élément mobile à aimantation à la base de la force linéaire résultant de l'interaction entre un élément à induction magnétostatique et une bobine électromagnétique
TW201025792A (en) * 2008-12-22 2010-07-01 Ind Tech Res Inst High efficient power generating module
CN204794383U (zh) * 2015-06-11 2015-11-18 宇生自然能源科技股份有限公司 电磁装置

Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN113241487A (zh) * 2021-04-16 2021-08-10 湖南汽车工程职业学院 无人驾驶新能源汽车的电池防寒防冻装置
CN113241487B (zh) * 2021-04-16 2023-03-24 湖南汽车工程职业学院 无人驾驶新能源汽车的电池防寒防冻装置

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