WO2010033012A2 - An energy harvester - Google Patents

An energy harvester Download PDF

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Publication number
WO2010033012A2
WO2010033012A2 PCT/MY2009/000142 MY2009000142W WO2010033012A2 WO 2010033012 A2 WO2010033012 A2 WO 2010033012A2 MY 2009000142 W MY2009000142 W MY 2009000142W WO 2010033012 A2 WO2010033012 A2 WO 2010033012A2
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WO
WIPO (PCT)
Prior art keywords
energy
hollow chamber
resilient means
cantilevers
primary storage
Prior art date
Legal status (The legal status 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 status listed.)
Ceased
Application number
PCT/MY2009/000142
Other languages
French (fr)
Other versions
WO2010033012A3 (en
Inventor
A. S. M. Mukter-Uz-Zaman
Masuri Othman
Mohammad Shaharia Bhuyan
Agus Santoso Tamsir
Suraya Sulaiman
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Mimos Bhd
Original Assignee
Mimos Bhd
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 Mimos Bhd filed Critical Mimos Bhd
Priority to EP09814827.3A priority Critical patent/EP2335346B1/en
Priority to US13/119,885 priority patent/US8987973B2/en
Priority to CN200980146046.1A priority patent/CN102217185B/en
Publication of WO2010033012A2 publication Critical patent/WO2010033012A2/en
Publication of WO2010033012A3 publication Critical patent/WO2010033012A3/en
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

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Classifications

    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02NELECTRIC MACHINES NOT OTHERWISE PROVIDED FOR
    • H02N2/00Electric machines in general using piezoelectric effect, electrostriction or magnetostriction
    • H02N2/18Electric machines in general using piezoelectric effect, electrostriction or magnetostriction producing electrical output from mechanical input, e.g. generators
    • H02N2/186Vibration harvesters

Definitions

  • the present invention relates to an energy harvester.
  • the disclosed 5 invention capable of harvesting energy through mechanical vibrating force derives from the surrounding environment and other energy sources such as solar, radio frequency, thermal and the like.
  • the claimed device comprises a fastening device, a first thermally- conductive element engaging the fastening device, a thermoelectric device disposed in thermal contact with the first thermally-conductive element, a thermoelectric device 5disposed in thermal contact with the first thermally conductive element, and a second thermally-conductive element disposed in thermal contact with the thermoelectric device.
  • the disclosed apparatus comprises a beam including an electrically responsive material with attachment structure for enabling the beam to be coupled to an external structure experiencing vibration; a force biasing member disposed adjacent the beam; a support structure for engaging each of the beam and the biasing member to apply
  • the present invention aims to provide an energy harvester which capable of 20continuously harvesting energy from the surrounding environment.
  • the harvested energy may then subsequently be used to power an electronic device.
  • the energy harvester 25 may preferably acquire energy from kinetic movement, solar, thermal or even radio frequency in order to obtain sufficient energy for powering up an electronic device.
  • Still another object of the present invention is to achieve fully autonomous for a remote electronic device through coupling with the disclosed energy harvester to 30acquire sufficient power for operation.
  • one of the embodiment of the present invention is an energy harvester (100) comprising a base (110); one or more first resilient means (120) mounted on the base (110); a hollow chamber (130) having a mounting point (131) 5pivotally attached to the first resilient means (120) in static equilibrium in such a way that centre of mass of the hollow chamber (130) is aligned with the first resilient means (120) at the vertical axis; a hollow member(140) enclosed within the hollow chamber (130) being attached to one or more second resilient means (150) extending from the mounting point (131) in static equilibrium that centre of mass of the hollow lOmember (140) is aligned with the second resilient means (150) at the vertical axis; a plurality of piezoelectric material-built can
  • another preferred embodiment of the present invention includes an photovoltaic cells(180) attached onto surfaces of hollow chamber (130) to harvest solar energy and associated with the integrated circuit to store harvested energy into the primary storage (170). Subsequently, it is
  • the hollow chamber (130) is made of transparent material thus permitting entry of solar power into hollow chamber reaching the solar cell contained within.
  • a means for harvesting thermal energy is
  • the means of harvesting thermal energy (190) is one or more elongated member formed by direct contacting two different electric conducting 5material and subjecting the two different electric conducting material different temperature respectively to harvest energy.
  • a radio frequency harvesting means(200) may be attached onto the hollow chamber (130) for harvesting radio frequency energy and lOassociated with the integrated circuit to store harvested energy into the primary storage (170).
  • the radio frequency harvesting means(200) can be fabricated onto surface of the hollow member (140) for harvesting radio frequency energy and associated with the integrated circuit to store harvested energy into the primary storage (170).
  • the primary storage (170) is integrated with the base (110) forming a single unit in the energy harvesting system.
  • the primary storage (170) comprising capacitor and/or super capacitor to be charged by the harvested energy.
  • the present invention may further comprise a secondary storage (210), preferably 5rechargeable battery, to receive harvested energy from the primary storage and store harvested energy in the electrochemical form.
  • Figure 1 is a perspective view of one embodiment of the present invention
  • Figure 2 is a perspective view of the embodiment shown in figure 1 integrated with an radio frequency receiver
  • Figure 3 is an enlarged view of the cantilever
  • Figure 4 shows an electron collector used in one embodiment for collecting the electron generated through harvesting the energy
  • Figure 5 shows the perspective view of the radio frequency energy harvesting antenna.
  • Figure 6 shows the cross-sectional view of the radio frequency energy harvesting antenna
  • Figure 7 shows a block diagram of one embodiment of the present invention.
  • the present invention involves an energy harvester (100) comprising a base (110);one or more first resilient means (120) mounted on the base (110); a hollow chamber (130) having a mounting point (131) pivotally attached to the first resilient means (120) in static equilibrium in such a way that centre of mass of the hollow chamber (130) is aligned with the first resilient means (120) at the vertical axis; a hollow member (140) enclosed within the hollow chamber (130) being attached to one ormore second resilient means (150) extending from the mounting point (131) in static equilibrium that centre of mass of the hollow member (140) is aligned with the second resilient means (150) at the vertical axis; a plurality of piezoelectric material-built cantilevers (160) mounted on the hollow member (140) and spaced apart from one another in a predetermined gap at the vertical planar that the piezoelectric material- built cantilevers (160) are varied in length and/or centre of mass; a primary storage 5(170) associated with the hollow chamber (130
  • the hollow chamber (130) in the present invention is in a prismatic shape.
  • the hollow chamber (130) preferably possess a shape allowing the hollow chamber (130) mounted onto the first resilient means (120) in total static equilibrium, when no external force applied, without having the first resilient means (120) bent to one side due to imbalance in mass distribution of the hollow chamber
  • centre of mass of the hollow chamber (130) of the present invention shall solely be supported or weigh on the first resilient means (120) at the vertical axis, which means the centre of mass of the hollow chamber (130) is aligned with the first resilient means (120) at the vertical axis as in the embodiment shown in
  • elasticity in the first resilient means (120) allows the hollow chamber (130) to reciprocate on the first resilient means (120) upon application of external kinetic force thus the reciprocating movement generates energy to be stored.
  • an solenoid MEMS actuator maybe employed in the preferred embodiment. More
  • the hollow chamber (130) has most of its mass distributed away from the mounting point (131) or the first resilient means (120) thus increasing the sensitivity of the disclosed energy harvester or promoting reciprocating movement of the hollow chamber (130) upon even the slightest kinetic force.
  • the cube-shaped hollow chamber is diagonally mounted onto the 5first resilient means (120) at one corner or tip to promote reciprocating movement of the hollow chamber (130).
  • the mass of the hollow chamber is not evenly distributed while being mounted onto the first resilient means (120), still it is possible lOto have the centre of mass aligned with the first resilient means (120) as long as the first resilient means (120) is mechanically strong to counteract the force caused by the mass.
  • the hollow chamber tends to sway forward to one side rather than another, still, kinetic energy can be harvested.
  • the hollow member (140) in the present invention can adapt different possible forms or shapes as long the static equilibrium is established with the second resilient means (150) when there is no external force applied onto it. Though enclosed within the hollow chamber (130), there is no physical contact between the hollow member (140) and hollow chamber (130) either 0in the stationary state or during the reciprocation.
  • the hollow member (140) serves as a secondary harvester for kinetic energy under condition which vibration of the first resilient means (120) and the hollow chamber (130) is limited by the environmental factors.
  • the mass of the hollow member (140) is preferably distributed away from the point where the point attaching
  • one of the embodiments adapts an inverted triangular shape for the hollow member (140).
  • the present invention is a spring or the like. Relying on the respective mass and size of the hollow member (140) and hollow chamber (130), the making material, sustaining capabilities, elasticity, deflection angle of the spring can be varied from one embodiment to another.
  • the mass and size of the hollow member (140) and hollow chamber (130) can be manufacture in large size to harvest more energy yet may be miniaturized to fit in micro scale of a MEMS such as wireless sensor. 5
  • the hollow chamber is made of transparent material in whole or in part to permit light entry.
  • the transparent material can be glass or of plastic materials such as acrylic and polycarbonate.
  • plastic material is used owing to its better tensile strength lOover glass indicating greater resistance over applied force.
  • the location of such portion shall be located at the site where sunlight exposure is optimum like the top surface in the embodiment shown in figure 1 and 2.
  • the present invention aims to harvest energy from light sources as well.
  • a layer of photovoltaic cells (180) is attached onto surfaces of hollow chamber (130) to harvest electromagnetic energy, preferably solar energy, and associated with the integrated circuit to store harvested energy into the primary storage (170).
  • the photovoltaic cells(180) is
  • the layer of photovoltaic cells is disposed or mounted on the area where it can be exposed to the electromagnetic radiation at the most. For example, on the top surface of the embodiment presented in figures 1 and 2.
  • the disclosed energy harvester has integrated with a means for harvesting thermal energy (190) associated with the integrated circuit to store harvested energy into the primary storage (170).
  • the means for harvesting thermal energy (190) in the present invention is fabricated and carries its function
  • the means of harvesting thermal energy (190) is one or more elongate member formed by direct contacting two different electric conducting material and subjecting the two different electric conducting material different temperature respectively to harvest energy.
  • current will be generated when two different electric conducting materials are placed together contacting each other at one point but subjected to two different temperatures 5respectively.
  • one of the electric conducting material is preferably placed outside the hollow chamber (130) and another is placed within the hollow chamber.
  • Such design is especially useful in harvesting thermal energy as temperature within the hollow chamber (130) shall be much higher comparing the external temperature due to lack of air flow within the hollow chamber (130). IONonetheless, the harvesting thermal energy (190) is connected to the integrated circuit to direct the generated current to the primary storage (170).
  • a radio frequency harvesting means (200) fabricated onto surface of the hollow member (140) for harvesting radio frequency energy and associated
  • radio frequency harvesting means(200) attached onto the hollow chamber (130) for harvesting radio frequency energy and associated with the integrated circuit to store harvested energy into the primary storage (170). It is preferable that the radio frequency harvesting means(200) is attached at the side
  • the radio frequency harvesting means (200) is illustrated in both figure 5 and 6.
  • the radio frequency harvesting means shown comprises an antenna (202) spaced apart from a ground material (205) by an insulator (203) which are covered by a layer of
  • Void space (204) is provided in between the protective layer and the antenna. Furthermore, both the antenna (202) and the ground material are connected to the circuit for electricity generation.
  • the cantilevers will vibrate upon movement of the hollow member (140). It was found by the inventors that proof 5mass (162) at the tips (161) of the plurality of piezoelectric material-built cantilevers (160) can increase the level of vibration and so does the energy harvested. Moreover, it is known the cantilevers will have greater vibration at its resonant frequency. Therefore, proof mass can be deposited along the length of the cantilevers to modify or adjust its resonant frequency.
  • cantilevers in the lOpresent invention is modified to have different resonant frequency for each single cantilever to detect and vibrate over wide range of frequency. Possibly, the resonant frequency of each cantilever can be varied through fabricating the cantilevers at different length as in figure 3.
  • the primary storage (170) is integrated with the base (110) forming a single unit to reduce the size or miniaturize the disclosed energy harvester.
  • the disclosed invention to be fitted for MEMS application.
  • FIG. 170 Further embodiment in the present invention preferably has primary storage (170) 0comprising capacitor and/or super capacitor.
  • the energy harvested is stored in the form of electrical potential.
  • a secondary storage (210) is incorporated in the subsequent embodiment to receive harvested energy from the primary storage and store harvested energy.
  • the secondary storage in prepared in the form of rechargeable battery. Once the electrical potential in the primary storage exceeds its
  • the energy will be drained out to the rechargeable battery. From there, the electricity from the rechargeable battery is used to power up any attached instruments such as wireless sensor.

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  • General Electrical Machinery Utilizing Piezoelectricity, Electrostriction Or Magnetostriction (AREA)

Abstract

An energy harvester (100) comprising a base (110); one or more first resilient means (120) mounted on the base (110); a hollow chamber (130) having a mounting point (131) pivotally attached to the first resilient means (120) in static equilibrium in such a way that centre of mass of the hollow chamber (130) is aligned with the first resilient means (120) at the vertical axis; a hollow member (140) enclosed within the hollow chamber (130) being attached to one or more second resilient means (150) extending from the mounting point (131) in static equilibrium that centre of mass of the hollow member (140) is aligned with the second resilient means (150) at the vertical axis; a plurality of piezoelectric material-built cantilevers (160) mounted on the hollow member (140) and spaced apart from one another in a predetermined gap at the vertical planar that the piezoelectric material-built cantilevers (160) are varied in length and/or centre of mass; a primary storage (170) associated with the hollow chamber (130), the hollow member (140) and the plurality of piezoelectric material- built cantilevers (160) through an integrated circuit for storing harvested energy; wherein the energy is harvested through vibration of the plurality of piezoelectric material-built cantilevers (160) at its approximately resonant frequency, reciprocation of the hollow chamber (130) and the hollow member (140) upon applying kinetic force.

Description

AN ENERGY HARVESTER
FIELD OF INVENTION
The present invention relates to an energy harvester. In more specific, the disclosed 5 invention capable of harvesting energy through mechanical vibrating force derives from the surrounding environment and other energy sources such as solar, radio frequency, thermal and the like.
BACKGROUND OF THE INVENTION lOWith rapid development of remote and wireless sensor network, continuous power supply is becoming the limiting factor for the lifetime of the device as depletion of the attached battery power. For example, in precision agriculture, sensors are normally located in a distant plantation and powered up by a battery which has limited capacity and lifetime to supply power for the sensors. Therefore, for a self-contained sensor or
15processing circuit to attain truly autonomous, renewable on-board power supply is required. One way to eliminating use of exhaustible battery from the device is through continuous energy harvesting from a sustainable source. Energy harvesting is the process by which energy is captured and stored also known as power harvesting or energy scavenging. Such approach is especially useful for small autonomous devices,
201ike those used in sensor networks so that they are portable and require little power. However, energy harvesting involving a single source is usually insufficient to completely and continuously to power the electronic system. Therefore, it is desired to have a hybrid energy harvesting system to acquire energy from different sustainable source.
25
Worldwide patent application no. 2007070022 claims an ambient energy harvesting system comprising a magnetic flux-generating assembly, a coil positioned adjacent to the magnetic flux-generating assembly, and a cantilevered arm which vibration enables relative movement between magnetic flux-generating assembly and the coil to
30generate an electric current in the coil. Mitchell et al. provides an energy harvesting device in United State Patent publication no 2008092937. The claimed device comprises a fastening device, a first thermally- conductive element engaging the fastening device, a thermoelectric device disposed in thermal contact with the first thermally-conductive element, a thermoelectric device 5disposed in thermal contact with the first thermally conductive element, and a second thermally-conductive element disposed in thermal contact with the thermoelectric device.
Further in United State patent application no 2008100180, an apparatus capable of lOharvesting energy through small vibration amplitudes over a wide frequency band.
The disclosed apparatus comprises a beam including an electrically responsive material with attachment structure for enabling the beam to be coupled to an external structure experiencing vibration; a force biasing member disposed adjacent the beam; a support structure for engaging each of the beam and the biasing member to apply
15compressive force wherein the beam adapted to flex in response to vibration from the external structure to generate electrical signal.
SUMMARY OF THE INVENTION
The present invention aims to provide an energy harvester which capable of 20continuously harvesting energy from the surrounding environment. The harvested energy may then subsequently be used to power an electronic device.
Further object of the present invention is to disclose an energy harvester able to harvest energy from more than one source. In more particular, the energy harvester 25may preferably acquire energy from kinetic movement, solar, thermal or even radio frequency in order to obtain sufficient energy for powering up an electronic device.
Still another object of the present invention is to achieve fully autonomous for a remote electronic device through coupling with the disclosed energy harvester to 30acquire sufficient power for operation. At least one of the preceding objects is met, in whole or in part, by the present invention, in which one of the embodiment of the present invention is an energy harvester (100) comprising a base (110); one or more first resilient means (120) mounted on the base (110); a hollow chamber (130) having a mounting point (131) 5pivotally attached to the first resilient means (120) in static equilibrium in such a way that centre of mass of the hollow chamber (130) is aligned with the first resilient means (120) at the vertical axis; a hollow member(140) enclosed within the hollow chamber (130) being attached to one or more second resilient means (150) extending from the mounting point (131) in static equilibrium that centre of mass of the hollow lOmember (140) is aligned with the second resilient means (150) at the vertical axis; a plurality of piezoelectric material-built cantilevers (160) mounted on the hollow member (140) and spaced apart from one another in a predetermined gap at the vertical planar that the piezoelectric material-built cantilevers (160) are varied in length and/or centre of mass; a primary storage (170) associated with the hollow
15 chamber (130), the hollow member (140) and the plurality of piezoelectric material- built cantilevers (160) for storing harvested energy through an integrated circuit; wherein the energy is harvested through vibration of the plurality of piezoelectric material-built cantilevers (160), reciprocation of the hollow chamber (130) and the hollow member (140) upon applying kinetic force.
20
In order to harvest energy from other available source, another preferred embodiment of the present invention includes an photovoltaic cells(180) attached onto surfaces of hollow chamber (130) to harvest solar energy and associated with the integrated circuit to store harvested energy into the primary storage (170). Subsequently, it is
25preferable that the hollow chamber (130) is made of transparent material thus permitting entry of solar power into hollow chamber reaching the solar cell contained within.
30 Similarly, in another preferred embodiment, a means for harvesting thermal energy is
(190) associated with the integrated circuit to store harvested energy into the primary storage (170). Particularly, the means of harvesting thermal energy (190) is one or more elongated member formed by direct contacting two different electric conducting 5material and subjecting the two different electric conducting material different temperature respectively to harvest energy.
In other aspect of the present invention, a radio frequency harvesting means(200) may be attached onto the hollow chamber (130) for harvesting radio frequency energy and lOassociated with the integrated circuit to store harvested energy into the primary storage (170). Similarly, the radio frequency harvesting means(200) can be fabricated onto surface of the hollow member (140) for harvesting radio frequency energy and associated with the integrated circuit to store harvested energy into the primary storage (170).
15
To optimise yield of the harvested energy, in one embodiment, tips (161) of the plurality of piezoelectric material-built cantilevers (160) possess proof mass (162) which induce greater vibration on the cantilevers (160) hence the energy harvested. 0For miniaturize the size of the energy harvester into a microelectromechanical system (MEMS), the primary storage (170) is integrated with the base (110) forming a single unit in the energy harvesting system. Preferably, the primary storage (170) comprising capacitor and/or super capacitor to be charged by the harvested energy. Moreover, the present invention may further comprise a secondary storage (210), preferably 5rechargeable battery, to receive harvested energy from the primary storage and store harvested energy in the electrochemical form.
BRIEF DESCRIPTION OF THE DRAWINGS
Figure 1 is a perspective view of one embodiment of the present invention;
30 Figure 2 is a perspective view of the embodiment shown in figure 1 integrated with an radio frequency receiver;
Figure 3 is an enlarged view of the cantilever;
Figure 4 shows an electron collector used in one embodiment for collecting the electron generated through harvesting the energy;
Figure 5 shows the perspective view of the radio frequency energy harvesting antenna.;
Figure 6 shows the cross-sectional view of the radio frequency energy harvesting antenna; and Figure 7 shows a block diagram of one embodiment of the present invention.
DETAILED DESCRIPTION OF THE INVENTION
It is to be understood that the present invention may be embodied in other specific forms and is not limited to the sole embodiment described herein. Howevermodification and equivalents of the disclosed concepts such as those which readily occur to one skilled in the art are intended to be included within the scope of the claims which are appended thereto.
The present invention involves an energy harvester (100) comprising a base (110);one or more first resilient means (120) mounted on the base (110); a hollow chamber (130) having a mounting point (131) pivotally attached to the first resilient means (120) in static equilibrium in such a way that centre of mass of the hollow chamber (130) is aligned with the first resilient means (120) at the vertical axis; a hollow member (140) enclosed within the hollow chamber (130) being attached to one ormore second resilient means (150) extending from the mounting point (131) in static equilibrium that centre of mass of the hollow member (140) is aligned with the second resilient means (150) at the vertical axis; a plurality of piezoelectric material-built cantilevers (160) mounted on the hollow member (140) and spaced apart from one another in a predetermined gap at the vertical planar that the piezoelectric material- built cantilevers (160) are varied in length and/or centre of mass; a primary storage 5(170) associated with the hollow chamber (130), the hollow member (140) and the plurality of piezoelectric material-built cantilevers (160) through an integrated circuit for storing harvested energy; wherein the energy is harvested via vibration of the plurality of piezoelectric material-built cantilevers (160) at its approximately resonant frequency, reciprocation of the hollow chamber (130) and the hollow member (140) lOupon applying kinetic force.
Referring to figure 1, the hollow chamber (130) in the present invention is in a prismatic shape. However, it is not intention of the inventors to rule out other possible forms or shapes applicable onto the hollow chamber (130) in the present invention
15 such as rectangular, con, triangular, polygonal, circular and so. It is important to be noted herein that the hollow chamber (130) preferably possess a shape allowing the hollow chamber (130) mounted onto the first resilient means (120) in total static equilibrium, when no external force applied, without having the first resilient means (120) bent to one side due to imbalance in mass distribution of the hollow chamber
20(130) while being mounted onto the first resilient means (120). Particularly, in the static equilibrium state, centre of mass of the hollow chamber (130) of the present invention shall solely be supported or weigh on the first resilient means (120) at the vertical axis, which means the centre of mass of the hollow chamber (130) is aligned with the first resilient means (120) at the vertical axis as in the embodiment shown in
25figure 1. Yet, elasticity in the first resilient means (120) allows the hollow chamber (130) to reciprocate on the first resilient means (120) upon application of external kinetic force thus the reciprocating movement generates energy to be stored. For converting the kinetic energy to electric energy to be stored, but not limited to, an solenoid MEMS actuator maybe employed in the preferred embodiment. More
30preferably, as in figure 1, the hollow chamber (130) has most of its mass distributed away from the mounting point (131) or the first resilient means (120) thus increasing the sensitivity of the disclosed energy harvester or promoting reciprocating movement of the hollow chamber (130) upon even the slightest kinetic force. For example, instead of mounting a cube— shaped hollow chamber (130) at its base, preferably in the present invention, the cube-shaped hollow chamber is diagonally mounted onto the 5first resilient means (120) at one corner or tip to promote reciprocating movement of the hollow chamber (130).
In another embodiment where the mass of the hollow chamber is not evenly distributed while being mounted onto the first resilient means (120), still it is possible lOto have the centre of mass aligned with the first resilient means (120) as long as the first resilient means (120) is mechanically strong to counteract the force caused by the mass. Though in such embodiment, the hollow chamber tends to sway forward to one side rather than another, still, kinetic energy can be harvested.
15 Similarly, in the preferred embodiment, the hollow member (140) in the present invention can adapt different possible forms or shapes as long the static equilibrium is established with the second resilient means (150) when there is no external force applied onto it. Though enclosed within the hollow chamber (130), there is no physical contact between the hollow member (140) and hollow chamber (130) either 0in the stationary state or during the reciprocation. The hollow member (140) serves as a secondary harvester for kinetic energy under condition which vibration of the first resilient means (120) and the hollow chamber (130) is limited by the environmental factors. As setting forth as to the hollow chamber (130), the mass of the hollow member (140) is preferably distributed away from the point where the point attaching
25 with the second resilient means (150) to enhance susceptibility towards the surrounding kinetic force to be harvested. In the figure 1 , one of the embodiments adapts an inverted triangular shape for the hollow member (140).
Of the most preferred embodiment, the first (120) and second resilient means (150) in
30the present invention is a spring or the like. Relying on the respective mass and size of the hollow member (140) and hollow chamber (130), the making material, sustaining capabilities, elasticity, deflection angle of the spring can be varied from one embodiment to another. For example, the mass and size of the hollow member (140) and hollow chamber (130) can be manufacture in large size to harvest more energy yet may be miniaturized to fit in micro scale of a MEMS such as wireless sensor. 5
In order to harvest solar energy from sunlight exposure or other light sources, the hollow chamber is made of transparent material in whole or in part to permit light entry. The transparent material can be glass or of plastic materials such as acrylic and polycarbonate. Preferably, plastic material is used owing to its better tensile strength lOover glass indicating greater resistance over applied force. For the embodiment in which only partial of the hollow chamber is built with the transparent material, the location of such portion shall be located at the site where sunlight exposure is optimum like the top surface in the embodiment shown in figure 1 and 2.
15As in foregoing, the present invention aims to harvest energy from light sources as well. As such, in the preferred embodiment, a layer of photovoltaic cells (180) is attached onto surfaces of hollow chamber (130) to harvest electromagnetic energy, preferably solar energy, and associated with the integrated circuit to store harvested energy into the primary storage (170). Specifically, the photovoltaic cells(180) is
20preferably enclosed within the hollow chamber (130) as well to protect it from accidental physical damage if disposed externally of the hollow member (130). To acquire optimal, the layer of photovoltaic cells is disposed or mounted on the area where it can be exposed to the electromagnetic radiation at the most. For example, on the top surface of the embodiment presented in figures 1 and 2.
25
Further embodiment, the disclosed energy harvester has integrated with a means for harvesting thermal energy (190) associated with the integrated circuit to store harvested energy into the primary storage (170). Basically, the means for harvesting thermal energy (190) in the present invention is fabricated and carries its function
30based on Seebeck effect. Preferably, the means of harvesting thermal energy (190) is one or more elongate member formed by direct contacting two different electric conducting material and subjecting the two different electric conducting material different temperature respectively to harvest energy. In more specific, current will be generated when two different electric conducting materials are placed together contacting each other at one point but subjected to two different temperatures 5respectively. hi the present invention, one of the electric conducting material is preferably placed outside the hollow chamber (130) and another is placed within the hollow chamber. Such design is especially useful in harvesting thermal energy as temperature within the hollow chamber (130) shall be much higher comparing the external temperature due to lack of air flow within the hollow chamber (130). IONonetheless, the harvesting thermal energy (190) is connected to the integrated circuit to direct the generated current to the primary storage (170).
In one embodiment, a radio frequency harvesting means (200) fabricated onto surface of the hollow member (140) for harvesting radio frequency energy and associated
15with the integrated circuit to store harvested energy into the primary storage (170). For another alternative embodiment, radio frequency harvesting means(200) attached onto the hollow chamber (130) for harvesting radio frequency energy and associated with the integrated circuit to store harvested energy into the primary storage (170). It is preferable that the radio frequency harvesting means(200) is attached at the side
20surfaces of the hollow chamber (130) as the top surface may be mounted by the photovoltaic cells (180). Pursuant to one preferred embodiment, the radio frequency harvesting means (200) is illustrated in both figure 5 and 6. Referring to figure 6, the radio frequency harvesting means shown comprises an antenna (202) spaced apart from a ground material (205) by an insulator (203) which are covered by a layer of
25protective shield (201). Void space (204) is provided in between the protective layer and the antenna. Furthermore, both the antenna (202) and the ground material are connected to the circuit for electricity generation.
Attention shall now drawn to the fact that the cantilevers built on the hollow member
30can convert kinetic energy to electrical current owing to the characteristic which the piezoelectric material is capable of generating electrical potential upon applying mechanical force to it. For harvesting the electrical potential, interdigitated electrodes is preferably employed as the electrical potential collector to direct the generated electric to the primary storage. In the present invention, the cantilevers will vibrate upon movement of the hollow member (140). It was found by the inventors that proof 5mass (162) at the tips (161) of the plurality of piezoelectric material-built cantilevers (160) can increase the level of vibration and so does the energy harvested. Moreover, it is known the cantilevers will have greater vibration at its resonant frequency. Therefore, proof mass can be deposited along the length of the cantilevers to modify or adjust its resonant frequency. In the most preferred embodiment, cantilevers in the lOpresent invention is modified to have different resonant frequency for each single cantilever to detect and vibrate over wide range of frequency. Possibly, the resonant frequency of each cantilever can be varied through fabricating the cantilevers at different length as in figure 3.
15 According to another embodiment, the primary storage (170) is integrated with the base (110) forming a single unit to reduce the size or miniaturize the disclosed energy harvester. Thus allowing the disclosed invention to be fitted for MEMS application.
Further embodiment in the present invention preferably has primary storage (170) 0comprising capacitor and/or super capacitor. The energy harvested is stored in the form of electrical potential. Moreover, a secondary storage (210) is incorporated in the subsequent embodiment to receive harvested energy from the primary storage and store harvested energy. Specifically, the secondary storage in prepared in the form of rechargeable battery. Once the electrical potential in the primary storage exceeds its
25maximum capacity, the energy will be drained out to the rechargeable battery. From there, the electricity from the rechargeable battery is used to power up any attached instruments such as wireless sensor.
The present disclosure includes as contained in the appended claims, as well as that of
30the foregoing description. Although this invention has been described in its preferred form with a degree of particularity, it is understood that the present disclosure of the preferred form has been made only by way of example and that numerous changes in the details of construction and the combination and arrangements of parts may be resorted to without departing from the scope of the invention

Claims

CLAIMS:
1. An energy harvester ( 100) comprising a base (110); one or more first resilient means (120) mounted on the base (110); a hollow chamber (130) having a mounting point (131) pivotally attached to the first resilient means (120) in static equilibrium in such a way that centre of mass of the hollow chamber (130) is aligned with the first resilient means (120) at the vertical axis; a hollow member (140) enclosed within the hollow chamber (130) being attached to one or more second resilient means (150) extending from the mounting point (131) in static equilibrium that centre of mass of the hollow member (140) is aligned with the second resilient means (150) at the vertical axis; a plurality of piezoelectric material-built cantilevers (160) mounted on the hollow member (140) and spaced apart from one another in a predetermined gap at the vertical planar that the piezoelectric material-built cantilevers (160) are varied in length and/or centre of mass; a primary storage (170) associated with the hollow chamber (130), the hollow member (140) and the plurality of piezoelectric material-built cantilevers (160) for storing harvested energy through an integrated circuit; wherein the energy is harvested through vibration of the plurality of piezoelectric material-built cantilevers (160), reciprocation of the hollow chamber (130) and the hollow member (140) upon applying kinetic force.
2. An energy harvester according to claim 1, wherein the hollow chamber (130) is made of transparent material.
3. An energy harvester according to claim 1 or 2 further comprising photovoltaic cells(l 80) attached onto surfaces of hollow chamber (130) to harvest solar energy and associated with the integrated circuit to store harvested energy into the primary storage (170).
4. An energy harvester according to claims 1 to 3 further comprising a means for harvesting thermal energy (190) associated with the integrated circuit to store harvested energy into the primary storage (170).
5. An energy harvester according to claim 4, wherein the means of harvesting thermal energy (190) is one or more elongated member formed by direct contacting two different electric conducting material and subjecting the two different electric conducting material different temperature respectively to harvest energy.
6. An energy harvester according to claims 1 to 4 further comprising a radio frequency harvesting means(200) attached onto the hollow chamber (130) for harvesting radio frequency energy and associated with the integrated circuit to store harvested energy into the primary storage (170).
7. An energy harvester according to claims 1 to 4 further comprising a radio frequency harvesting means(200) fabricated onto surface of the hollow member (140) for harvesting radio frequency energy and associated with the integrated circuit to store harvested energy into the primary storage (170).
8. An energy harvester according to claims 1 to 7, wherein tips (161) of the plurality of piezoelectric material-built cantilevers (160) possess proof mass (162).
9. An energy harvester according to claims 1 to 8, wherein the primary storage (170) is integrated with the base (110).
10. An energy harvester according to claims 1 to 8, wherein the primary storage (170) comprising capacitor and/or super capacitor.
11. An energy harvester a according to claims 1 to 8 further comprising a secondary storage (210) to receive harvested energy from the primary storage and store harvested energy.
PCT/MY2009/000142 2008-09-18 2009-09-10 An energy harvester Ceased WO2010033012A2 (en)

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EP09814827.3A EP2335346B1 (en) 2008-09-18 2009-09-10 An energy harvester
US13/119,885 US8987973B2 (en) 2008-09-18 2009-09-10 Energy harvester
CN200980146046.1A CN102217185B (en) 2008-09-18 2009-09-10 Energy collecting device

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MYPI20083637A MY146160A (en) 2008-09-18 2008-09-18 An energy harvester
MYPI20083637 2008-09-18

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WO2010033012A3 WO2010033012A3 (en) 2010-07-01

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Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP2508364A1 (en) 2011-04-06 2012-10-10 Stichting IMEC Nederland Improvements in or relating to micro-power systems for a self-powered monitoring sensor
US9121394B2 (en) 2013-04-04 2015-09-01 Metso Minerals Industries, Inc. Energy harvester for converting vibrational motion of a vibrating equipment into electrical energy, and a device for monitoring the operation of a vibrating equipment

Families Citing this family (17)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
MY162273A (en) 2008-09-29 2017-05-31 Mimos Berhad A device for maximum detection of vibrating energy for harvesting energy
US8569861B2 (en) 2010-12-22 2013-10-29 Analog Devices, Inc. Vertically integrated systems
US9225311B2 (en) * 2012-02-21 2015-12-29 International Business Machines Corporation Method of manufacturing switchable filters
CN103818869B (en) * 2014-02-20 2015-11-18 东南大学 Internet of Things radio-frequency receiving-transmitting assembly clamped fishbone beam vibration electromagnetism self-powered microsensor
CN103818870B (en) * 2014-02-20 2015-11-18 东南大学 Internet of Things radio-frequency receiving-transmitting assembly cantilever fishbone beam vibration electromagnetism self-powered microsensor
US10557881B2 (en) 2015-03-27 2020-02-11 Analog Devices Global Electrical overstress reporting
US9871373B2 (en) 2015-03-27 2018-01-16 Analog Devices Global Electrical overstress recording and/or harvesting
NL2015077B1 (en) * 2015-07-02 2017-01-30 Ruijssenaars Janjaap Device for generating energy.
US9911290B1 (en) 2015-07-25 2018-03-06 Gary M. Zalewski Wireless coded communication (WCC) devices for tracking retail interactions with goods and association to user accounts
US9894471B1 (en) 2015-07-25 2018-02-13 Gary M. Zalewski Wireless coded communication (WCC) devices with power harvesting power sources for processing biometric identified functions
US10338132B2 (en) 2016-04-19 2019-07-02 Analog Devices Global Wear-out monitor device
US10365322B2 (en) 2016-04-19 2019-07-30 Analog Devices Global Wear-out monitor device
US10243136B2 (en) 2016-08-22 2019-03-26 Masoud Ghanbari Piezoelectric energy harvesting system from vehicle's tires
US11024525B2 (en) 2017-06-12 2021-06-01 Analog Devices International Unlimited Company Diffusion temperature shock monitor
EP3935581A4 (en) 2019-03-04 2022-11-30 Iocurrents, Inc. Data compression and communication using machine learning
CN110022086A (en) * 2019-03-18 2019-07-16 温州大学 A kind of rail traffic electric energy acquisition method and device thereof
US12530068B2 (en) 2024-06-15 2026-01-20 Silicon Laboratories Inc. Power awareness for energy harvesting

Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20070070022A1 (en) 2005-09-26 2007-03-29 Nec Corporation Differential amplifier, digital-to-analog converter and display device
US7345407B2 (en) 2005-11-18 2008-03-18 Adaptivenergy, Llc. Human powered piezoelectric power generating device
US20080092937A1 (en) 2006-09-15 2008-04-24 The Boeing Company Energy harvesting devices
US20080100180A1 (en) 2006-10-20 2008-05-01 Clingman Dan J Broadband energy harvester apparatus and method

Family Cites Families (14)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP3951438B2 (en) * 1998-04-23 2007-08-01 株式会社村田製作所 Piezoelectric wind power generator
JP2003209980A (en) * 2001-11-12 2003-07-25 Jigyo Sozo Kenkyusho:Kk Vibration generator
JP3759945B2 (en) * 2004-02-25 2006-03-29 太平洋セメント株式会社 Wind power generator and wind power generation system
CN1292930C (en) * 2004-11-08 2007-01-03 西安交通大学 Automobile vibrational energy piezo-electric generating method and system
WO2006109362A1 (en) * 2005-04-11 2006-10-19 Taiheiyo Cement Corporation Wind turbine generator and wind turbine generating system
US8030807B2 (en) 2005-12-09 2011-10-04 Chubb International Holdings Limited Electromechanical energy harvesting system
KR101617503B1 (en) * 2006-01-18 2016-05-18 퀄컴 인코포레이티드 Method and apparatus for delivering energy to an electrical or electronic device via a wireless link
JP2008192944A (en) 2007-02-07 2008-08-21 Taiheiyo Cement Corp Piezoelectric generator
ITRM20070079A1 (en) * 2007-02-15 2008-08-16 Wisepower S R L BISTABLE PIEZOELECTRIC GENERATOR.
EP2209201B1 (en) * 2007-11-13 2014-11-05 Kohei Hayamizu Power generation unit
MY147928A (en) * 2008-09-18 2013-02-15 Mimos Berhad Apparatus for solar tracking of energy harvester
MY162273A (en) * 2008-09-29 2017-05-31 Mimos Berhad A device for maximum detection of vibrating energy for harvesting energy
CN103299534B (en) * 2010-08-30 2015-12-09 吕卫星 bladeless wind turbine
FR2965406A1 (en) * 2010-09-29 2012-03-30 Commissariat Energie Atomique DEVICE FOR RECOVERING PRESSURE ENERGY

Patent Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20070070022A1 (en) 2005-09-26 2007-03-29 Nec Corporation Differential amplifier, digital-to-analog converter and display device
US7345407B2 (en) 2005-11-18 2008-03-18 Adaptivenergy, Llc. Human powered piezoelectric power generating device
US20080092937A1 (en) 2006-09-15 2008-04-24 The Boeing Company Energy harvesting devices
US20080100180A1 (en) 2006-10-20 2008-05-01 Clingman Dan J Broadband energy harvester apparatus and method

Non-Patent Citations (1)

* Cited by examiner, † Cited by third party
Title
See also references of EP2335346A4

Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP2508364A1 (en) 2011-04-06 2012-10-10 Stichting IMEC Nederland Improvements in or relating to micro-power systems for a self-powered monitoring sensor
US9121394B2 (en) 2013-04-04 2015-09-01 Metso Minerals Industries, Inc. Energy harvester for converting vibrational motion of a vibrating equipment into electrical energy, and a device for monitoring the operation of a vibrating equipment

Also Published As

Publication number Publication date
EP2335346A4 (en) 2014-01-15
US8987973B2 (en) 2015-03-24
EP2335346B1 (en) 2014-12-31
MY146160A (en) 2012-06-29
WO2010033012A3 (en) 2010-07-01
CN102217185A (en) 2011-10-12
US20130057111A1 (en) 2013-03-07
EP2335346A2 (en) 2011-06-22
CN102217185B (en) 2015-08-19

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