OA20941A - Single-sided fast MRI gradient field coils and applications thereof - Google Patents

Single-sided fast MRI gradient field coils and applications thereof Download PDF

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Publication number
OA20941A
OA20941A OA1202100416 OA20941A OA 20941 A OA20941 A OA 20941A OA 1202100416 OA1202100416 OA 1202100416 OA 20941 A OA20941 A OA 20941A
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OAPI
Prior art keywords
spiral
spiral coils
coil
coil set
electromagnetic field
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OA1202100416
Inventor
Aleksandar NACEV
Pulkit MALIK
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Promaxo, Inc
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Publication of OA20941A publication Critical patent/OA20941A/en

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Abstract

A single-sided gradient coil set for single-sided magnetic resonance imaging system is disclosed. The coil set is configured to generate a magnetic field outwards away from the coil set. The coil set includes one or more first spiral coils at a first position relative to the aperture and one or more second spiral coils at a second position relative to the aperture. The coil set is configure to flow a current through the one or more first spiral coils and the one or more second spiral coils to generate an electromagnetic field gradient configured to project away from the coil set and into an imaging region of the magnetic imaging system

Description

SINGLE-SIDED FAST MRI GRADIENT FIELD COILS AND APPLICATIONS THEREOF
BACKGROUND
Magnetic résonance imaging (MRI) Systems hâve primarily been ibcused on leveraging an enclosed form factor. This form factor includes surrounding the imaging région with electromagnetic field producing materials and imaging System components. A typical MRI System includes a cylindrical bore magnet where the patient is placed within the tube ofthe magnet for imaging. Components, such as radio frequency (RF) transmission (TX), RF réception (RX) coils, and electromagnetic gradient generating coîls are then placed on many si des of the patient to effectively surround the patient in order to perform the imaging.
Typically, the electromagnetic gradient generating coils are large and fully surround the field of view (i.e., the imaging région) so as to create a linear and monotonie magnetic field gradient throughout the entire field of view. The placement of components, in most current MRI Systems, virtually surrounds the patient severely limiting patient movement, and which can sometimes cause additional burdens during situating or removing the patient to and from the imaging région. Therefore, a need exists to provide modem imaging configurations in next génération MRI Systems that further aheviate the aforementioned issues with regards to patient comfort and burdensome limitations.
SUMMARY
At least one aspect of the dîsclosure is directed to a magnetic imaging apparatus. The apparatus includes a power source for providing a current and a single-sided gradient coil set connected to the power source. In accordance with various embodiments, the coil set includes an aperture. In accordance with various embodiments, the coil set also includes one or more first spiral coils at a first position relative to the aperture and one or more second spiral coils at a second position relative to the aperture. In accordance with various embodiments, the first position is across from the second position with respect to the aperture. In some implémentations of the apparatus, the coil set is configured to receive a current through the one or more first spiral coils and the one or more second spiral coils to generate an electromagnetic field gradient configured to project away from the coil set and into an imaging région of the magnetic imaging apparatus.
In accordance with various embodiments, the coil set is non-planar and oriented to partially surround the imaging région. In accordance with various embodiments, the one or more l
first spiral coils and the one or more second spiral coils are non-planar with respect to the aperture and mirror each other with respect to the aperture, ln accordance with varions embodiments, the electromagnetic field gradient is substantially uniform in the imaging région. In accordance with varions embodiments, the electromagnetic field gradient is greater than about 5 mT. In accordance with varions embodiments, the electromagnetic flekl gradient has a fisc time less than about 1 0 us.
In accordance with various embodiments, the one or more first spiral coils comprise at least two first spiral coils with at least two different diameters. In accordance with various embodiments, the one or more second spiral coils comprise at least two second spiral coils with at least two different diameters.
In some implémentations of the apparatus, the current flows through the one or more first spiral coils in altemating directions to minimize a rise time of the electromagnetic field gradient.
In accordance with various embodiments, the current flows through the one or more second spiral coils in altemating directions to minimize a rise time of the electromagnetic field gradient
In accordance with various embodiments, a primary first spiral coil of the one or more first spiral coils is configured to create a first large primary electromagnetic field gradient and a secondary first spiral coil of the one or more first spiral coils is configured to create a first small secondary electromagnetic field gradient to provide adjustments in the first large primary electromagnetic field gradient. In accordance with various embodiments, a primary second spiral coil of the one or more second spiral coils créâtes a second large primary electromagnetic field gradient and a secondary second spiral coil of the one or more second spiral coils créâtes a second small secondary electromagnetic field gradient to provide adjustments in the second large primary electromagnetic field gradient.
In accordance with various embodiments, a primary first spiral coil of the one or more first spiral coils and a secondary first spiral coil of the one or more first spiral coils adjacent to the primary first spiral coil hâve the current flowing through them in opposite directions. In accordance with various embodiments, a primary second spiral coil of the one or more second spiral coils and a secondary second spiral coil of the one or more second spiral coils adjacent to the primary second spiral coil hâve the current flowing through them in opposite directions.
In accordance with various embodiments, a primary first spiral coil of the one or more first spiral coils and a secondary first spiral coil of the one or more first spiral coils adjacent to the primary first spiral coil overlap up to 50% of respective coils to generate a more parai le! t'irst electromagnetic field gradient. In accordance with various embodiments, a prîmary second spiral coil of the one or more second spiral coils and a secondary second spiral coil of the one or more second spiral coils adjacent to the prîmary second spiral coil overlap tip to 50% of respective coils to generate a more parailel second electromagnetic field gradient.
In accordance with varions embodiments, the one or more first spiral coils and the one or more second spiral coils are connected to form a single current loop. In accordance with various embodiments, the one or more first spiral coils and the one or more second spiral coils comprise different maferials.
In accordance with various embodiments, the one or more first spiral coils and the one or more second spiral coils hâve diameters between about 10 pm to about 10 m.
In accordance with various embodiments, the coil set further comprises one or more electronic components for adjusting the electromagnetic field gradient. In accordance with various embodiments, the one or more electronic components include at least one PIN diode, a mechanical relay, a solid State relay, or a MEMS switch. In accordance with various embodiments, the one or more electronic components used for tuning încludes at least one of, conductive metals, metamaterials, or magnetic metals. In accordance with various embodiments, tuning the electromagnetic field gradient încludes changing the current or changing physical locations of the one or more electronic components.
In accordance with various embodiments, the coil set îs cryogenically cooled to reduce résistance and improve efficiency.
In accordance with various embodiments, the coil set further încludes an openîng opposite the aperture, wherein the région between the aperture and the opening defines a coil set région, and wherein the imaging région is at least partially disposed outside the coil set région.
At least one aspect of the disclosure is dîrected to a method for using a magnetic imaging apparatus. The method încludes providing a power source and providing a single-sided gradient coil set connected to the power source. In accordance with various embodiments, the coil set încludes an aperture. In accordance with various embodiments, the coil set comprises one or more first spiral coils at a first position relative to the aperture and one or more second spiral coils at a second position relative to the aperture. In accordance with various embodiments, the first position is across from the second position with respect to the aperture.
In accordance with various embodiments, the method încludes turning on the power source so as to flow a current through the one or more first spiral coils and the one or more second spiral coils to generate an electromagnetic field gradient that îs projected away from the coil set and into an imaging région of the magnetic imaging apparatus.
In accordance with various embodiments. the electromagnctic field gradient is greater than about 5 mT. In accordance with varions embodiments, the electromagnetic field gradient has a rise time less than about 10 ps.
In accordance with varions embodiments. the coil set further comprises one or more electronic components from one ofa PIN diode, a mechanical relay. a solid State relay, or a MEMS switch. In accordance with various embodiments, the method further includes tuning the electromagnctic field gradient by changing the current or by changing one of physîcal properties or locations of the one or more electronic components.
In accordance with various embodiments, the coil set further includes an opening opposite the aperture, wherein the région between the aperture and the opening defines a coil set région, and wherein the imaging région is at least partially disposed outside the coil set région.
At least one aspect of the disclosure is directed to a magnetic imaging apparatus. The apparatus includes a power source for providing a current and a single-sided gradient coil set connected to the power source, wherem the coil set is configured to generate an electromagnctic field gradient having a rise time less than about 10 ps and configured to project away from the coil set and into an imaging région of the magnetic imaging apparatus.
In accordance with various embodiments, the coil set further includes an aperture, and one or more first spiral coils at a first position relative to the aperture and one or more second spiral coils at a second position relative to the aperture, the first position being across from the second position with respect to the aperture.
In accordance with various embodiments, the coil set is non-planar and oriented to partially surround the imaging région. In accordance with various embodiments, the one or more first spiral coils and the one or more second spiral coils are non-planar with respect to the apeiture and mirror each other with respect to the aperture.
In accordance with various embodiments, the electromagnctic field gradient is substantially uniform in the imaging région. In accordance with various embodiments, the electromagnetic field gradient is greater than about 5 mT.
In accordance with various embodiments, the one or more first spiral coils comprise at least two first spiral coils with at least two different diameters. In accordance with various embodiments, the one or more second spiral coils comprise at least two second spiral coils with at least two different diameters.
In some implémentations of the apparatus, the current flows through the one or more first spiral coils in altemating directions to minimize a rise time of the electromagnetic field gradient.
In accordance with various embodiments. the current flows through the one or more second spiral coils in altemating directions to minimize a risc time of the electromagnetic field gradient.
In accordance with varions embodiments, a primary first spiral coil of the one or more lïrst spiral coils is configured to croate a first large primary electromagnetîc field gradient and a secondary first spiral coil ot the one or more first spiral coils is configured to croate a first small secondary electromagnetîc field gradient to provide adjustments in the first large primary electromagnetic field gradient. In accordance with various embodiments, a primary second spiral coil of the one or more second spiral coils créâtes a second large primary electromagnetic 10 field gradient and a secondary second spiral coil of the one or more second spiral coils créâtes a second small secondary electromagnetic field gradient to provide adjustments in the second large primary electromagnetic field gradient.
In accordance with various embodiments, a primary first spiral coil of the one or more first spiral coils and a secondary first spiral coil of the one or more first spiral coils adjacent to the primary first spiral coil hâve the current flowing through them in opposite directions. In accordance with various embodiments, a primary second spiral coil of the one or more second spiral coils and a secondary second spiral coil of the one or more second spiral coils adjacent to the primary second spiral coil hâve the current flowing through them in opposite directions.
In accordance with various embodiments, a primary first spiral coil of the one or more first spiral coils and a secondary first spiral coil of the one or more first spiral coils adjacent to the primary first spiral coil overlap up to 50% of respective coils to generate a more parallel first electromagnetic field gradient. In accordance with various embodiments, a primary second spiral coil of the one or more second spiral coils and a secondary second spiral coil of the 25 one or more second spiral coils adjacent to the primary second spiral coil overlap up to 50% of respective coils to generate a more parallel second electromagnetic field gradient.
In accordance with various embodiments, the one or more first spiral coils and the one or more second spiral coils are connected to form a single current loop. In accordance with various embodiments, the one or more first spiral coils and the one or more second spiral coils 30 comprise different materials.
In accordance with various embodiments, the one or more first spiral coils and the one or more second spiral coils hâve diameters between about 10 gm to about 10 m.
In accordance with various embodiments, the coil set further comprises one or more electronic components for adjusting the electromagnetic field gradient. In accordance with various embodiments, the one or more electronic components include at least one PIN diode, a mcchanîcal relay, a solid state relay, or a MEMS switch. In accordance with various embodiments, the one or more electronic components used for tuning includes at least one of, conductive métal s, metamaterials, or magnetic métal s. In accordance with varions embodiments, tuning the electromagnetic field gradient includes changing the current or changing physical locations of the one or more electronic components.
In accordance with various embodiments, the coil set is cryogénie ail y cooled to reducc résistance and improve efficiency.
In accordance with various embodiments, the coil set further includes an opening opposite the aperture, wherein the région between the aperture and the opening defines a coil set région, and wherein the imaging région is at least partially disposed outside the coil set région.
At least one aspect of the disclosure is directed to a method for using a magnetic imaging apparatus. The method includes providing a power source and providing a single-sided gradient coil set connected to the power source. The method includes tumîng on the power source so as to flow a current through the coil set. The method includes generating an electromagnetic field gradient having a rise time less than about 10 gs. The method includes projecting the electromagnetic field gradient away from the coil set and into an imaging région of the magnetic imaging apparatus.
In accordance with various embodiments, the electromagnetic field gradient is greater than about 5 mT.
In accordance with various embodiments, the coil set further comprises one or more electronic components from one of a PIN diode, a mechanical relay, a solid State relay, or a MEMS switch. In accordance with various embodiments, the method further includes tuning the electromagnetic field gradient by changing the current or by changing one of physical properties or locations of the one or more electronic components.
In accordance with various embodiments, the coil set further includes an opening opposite the aperture, wherein the région between the aperture and the opening defines a coil set région, and wherein the imaging région is at least partially disposed outside the coil set région.
These and other aspects and implémentations are discussed in detail below. The foregoing information and the following detailed description include illustrative examples of various aspects and implémentations, and provide an overview or framework for understanding the nature and character of the claimed aspects and implémentations. The drawings provide illustration and a further understanding of the various aspects and implémentations, and are incorporated in and constitute a part of this spécification.
BRIEF DESCRIPTION OF THE DRAWINGS
The accompanying drawings are not intended to be drawn to se ale. Like référencé numbers and désignations in the varions drawings indicate like cléments. For purposes of ckirity, not every component may be labeled in every drawing. In the drawings:
Figure 1 is a schematic view of an implémentation of a magnetic imaging apparatus, according to various embodiments;
Figure 2 is a schematic view of an implémentation of a single-sided gradient coil set, according to various embodiments;
Figure 3 is a schematic view of an implémentation of a single-sided gradient coil set, 10 according to various embodiments;
Figure 4 is a schematic view of an implémentation of a single-sided gradient coil set, according to various embodiments.
Figure 5 is a flowehart for a method for using a magnetic imaging apparatus, according to various embodiments.
Figure 6 is a flowehart for another method for using a magnetic imaging apparatus, according to various embodiments.
DETA1LED DESCRIPTION
Typîcal electromagnetic gradient coil configurations for MRI systems are large and usually surround the field of view, i.e., the imaging région. In parti cul ar, coils used for generating a gradient magnetic field for spatial encoding during magnetic imaging are typically large and usually placed on multiple sides of the patient. The gradient magnetic field coils are typically constructed in a curved fingerprint configuration that shapes into a cylindrical form factor. The gradient magnetic field coils are designed so that the generated magnetic field is linear over the région of interest, i.e., the imaging région, in order to croate straightforward mathematîcal reconstructions of MRI images. For a typical MRI System, the gradient magnetic field will be more linear in the imaging région, the more the coils surround the patient. Therefore, gradient magnetic field coils are specifically designed to encompass a patient. However, such configuration of the gradient magnetic field coils fails when the form factor modernizes to a single sided MRI System where surrounding the patient is no longer an option.
To further improve patient comfort and reduce burdensome movement limitations of the current MRI systems, single-sided MRI Systems hâve been developed. The dîsclosure as described herein generaliy relates to a magnetic imaging apparatus of a single-sided MRI System and its applications. In particular, the described technology relates to a magnetic imaging apparatus having a single-sided gradient coil set comprising several gradient magnetic field spiral coils configured to work in a single-sided MRI System. As described herein. the disclosed single-sided MRI System can be configured so that the patient is covered on one side, but not completel y suiTounded, by the electro magnetic field producing mater! aïs and imaging System components. The configurations as described herein otfer less restriction in patient movement 5 while reducing unnecessary burden during situating and'or removing of the patient from the MRI
System. In other words. the patient would not feel entrapped in the MRI System with the placement of a single-sided gradient coil set on only one side of the patient.
The technology disclosed herein includes novel configurations of a single-sided gradient coil set, as well as methods of generating spatially changing gradient magnetic fields 10 within the imaging région (i.e., région of interest) at a distance outward away from the singlesided gradient coil set. The single-sided gradient coil set as described herein includes one or more coil configurations that generate a near-linear field away from the coil set itself. The disclosed configurations are intended to generate a near-linear gradient field that is projected outwards and between the coil set because the coil can no longer surround the patient for imaging in a single-sided MRI System. In other words, for the gradient coil set to work in a single-sided MRI System, the gradient magnetic field for imaging has to be generated away from the coil set itself. In order to project the field out and away from the single-sided gradient coil set, the disclosed coil configurations include different sized coils that are arranged in sets or in different arrangements.
In various implémentations as described herein, the single-sided gradient coil set can be configured to hâve a current flowing in alternating directions in the disparate spiral coils or disparate sets of spiral coils to minimize the rise-time of the gradient magnetic field and generate a spatially changing magnetic field within the région of interest projected at a distance. In various implémentations as disclosed herein, the linearity of the magnetic gradient field is suffi ci ent for the single-sided nature of a gradient magnetic field System. Moreover, the coil set configurations as disclosed herein are intended to generate a gradient magnetic field that can rise quickly to improve scan time, spatial resolution, and reduce bioeffects in the resulting images. Possible bioeffects include peripheral nerve stimulation from rapidly changing electromagnetic fields or heating due to the increased coil température during operation.
Figure 1 shows a schematic view of an example implémentation of a magnetic imaging apparatus 100, in accordance with various embodiments. As shown in Figure 1, the apparatus 100 includes a single-sided gradient coil set 120 that is configured to project a gradient magnetic field outwards away from the coil set 120 and within a field of view 130. In various implémentations, the field of view 130 is a région of interest for magnetic résonance imaging (i.e., imaging région) where a patient résides. Since the patient résides in the field of view 130 away from the coil set 120, the apparatus 100 is suitable for use in a single-sided MRI System.
As shown in the figure, the coil set 120 includes variously sized spiral coils in varions sets of spiral coils 140a. 140b. 140c. and 140d (cohectivcly referred to as “spiral coils 140”).
Each set ofthe spiral coils 140 include at least one spiral coil and Figure 1 is shown to include 3 spiral coils. In accordance with various embodiments, each spiral coil in the spiral coils 140 lias an electrical contact at its center and an electrical contact output on the outer edge of the spiral coil so as to form a single running loop of electrically conducting material spiraling ont from the center to the outer edge, or vice versa. In accordance with various embodiments, cach spiral coil in the spiral coils 140 has a first electrical contact at a first position of the spiral coil and a second electrical contact at a second position the spiral coil so as to form a single running loop of electrically conducting material from the first position to the second position, or vice versa.
In accordance with various embodiments, the coil set 120 has a latéral dimension between about 0-001 mm to about 15 m. In various implémentations, the coil set 120 has a 15 latéral dimension between about 0.001 m and about 10 m, between about 0.01 m and about 8 ni, between about 0.03 m and about 6 m, between about 0.05 m and about 5 m, between about 0.1 m and about 3 m, between about 0.2 m and about 2 m, between about 0.3 m and about 1.5 m, between about 0.5 m and about 1 m, or between about 0.01 m and about 3 m, inclusive of any latéral dimension therebetween.
As shown in Figure 1, the coil set 120 also includes an aperture 125 at its center where the spiral coils 140 are disposcd around the aperture 125. The aperture 125 îtself does not contain any coil material within it for generating magnetic material. The coil set 120 also includes an opening 127 on the outer edge of the coil set 120 to which the spiral coils 140 can be disposed. Said another way, the aperture 125 and the opening 127 define the boundarîes of the coil set 120 within which the spiral coils 140 can be disposed. In accordance with various embodiments, the coil set 120 forms a bowl shape with a hole in the center.
In accordance with various embodiments, the spiral coils 140 form across the aperture 125. For example, the spiral coils 140a are disposed across from the spiral coils 140c with respect to the aperture 125. Similarly, the spiral coils 140b are disposed across from the spiral coils 140d with respect to the aperture 125. In accordance with various embodiments, the spiral coils 140a and 140c are formed across from each other. In accordance with various embodiments, the spiral coils 140b and 140d are formed across from each other. In accordance with various embodiments, the spiral coils 140 in the coil set 120 shown in Figure 1 are configured to créât e spatial encoding in the magnetic gradient field within the field of view 130.
As shown in Figure 1, the coil set 120 is also connected to a power source 150 via electrical contacts 152 and 154 by attaching the electrical contacts 152 and 1 54 to one or more of the spiral coils 140. In various implémentations, the electrical contact 152 is connected to one of the spiral coils 140. which is then connected to other spiral coils 140 in sériés and or in parallel, and one other spiral coil 140 is then connected to the electrical contact 154 so as to toi ni an electrical current loop. In varions implémentations, the spiral coils 140 aie ail elcctiically connected in sériés. In various implémentations, the spiral coils 140 are ail electrically connected in parallel. In various implémentations, some of the spiral coils 140 are electrically connected in sériés while other spiral coils 140 are electrically connected in parallel. In various implémentations, the spiral coils 140a are electrically connected in sériés while the spiral coils 140b are electrically connected in parallel. In various implémentations, the spiral coils 140c are electrically connected in sériés while the spiral coils 140d are electrically connected in parallel. The electrical connections between each spiral coil in the spiral coils 140 or each set of spiral coils 140 can be configured as needed to generate the magnetic field in the field of view 130.
In various implémentations, the coil set 120 includes the spiral coils 140 spread out as shown in Figure 1. In accordance with various embodiments, each of the sets of spiral coils 140a, 140b, 140c, and 140d are configured in a line from the aperture 125 to the opening 127 so that each set of spiral coils is set apart from another by an angle of 901’. In accordance with various embodiments, 140a and 140b are set at 45° front one another, and 140c and 140d are set at 45° from one another, while 140c is set 135° on the other side of 140b and 140d is set 135° on the other side of 140a. In essence, any of the sets of spiral coils 140 can be configured in any arrangement for any number “n” of sets of spiral coils 140.
In various implémentations, the spiral coils 140 hâve the same diameter. In accordance with various embodiments, each of the sets of spiral coils 140a, 140b, 140c, and 140d hâve the same diameter. in accordance with various embodiments, the spiral coils 140 hâve different diameters. In accordance with various embodiments, each of the sets of spiral coils 140a, 140b, 140c, and 140d hâve different diameters. In accordance with various embodiments, the spiral coils in each of the sets of spiral coils 140a, I40b, 140c, and 140d hâve different diameters. In accordance with various embodiments, 140a and 140b hâve the same first diameter and 140c and 140d hâve the same second diameter, but the first diameter and the second diameter are not the same.
In accordance with various embodiments, each spiral coil in the spiral coils 140 has a diameter between about 10 pm and about 10m. In accordance with various embodiments, each spiral coil in the spiral coils 140 has a diameter between about 0.001 m and about 9 m, between about 0.005 m and about 8 m, between about 0.01 m and about 6 m, between about 0.05 in and about 5 m, between about 0.1 m and about 3 m, between about 0.2 m and about 2 m. between about 0.3 m and about 1.5 m, between about 0.5 m and about 1 m, or between about 0.01 m and about 3 m, inclusive of any diameter therebetween.
In accordance with varions embodiments, the spiral coils 140 are connected to form a single electrical circuit loop (or single current loop). As shown in Figure 1, for example, one spiral coil in the spiral coils 140 is connected to the electrical contact 152 of the power source 150 and another spiral coil be connected to the electrical contact 154 so that the spiral coils 140 complétés an electrical circuit.
In accordance with varions embodiments, the coil set 120 generates an electromagnetic field strength (also referred to herein as “electromagnetic field gradient” or “gradient magnetic field”) between about t μΤ and about 10 T. In accordance with varions embodiments, the coil set 120 can generate an electromagnetic field strength between about 100 μ T and about 1 T, about 1 mT and about 500 mT, or about 10 mT and about 100 mT, inclusive of any magnetic field strength therebetween. In accordance with varions embodiments, the coil set 120 can generate an electromagnetic field strength greater than about 1 pT, about 10 pT, about 100 μΤ, about 1 mT, about 5 mT, about 10 mT, about 20 mT, about 50 mT, about 100 mT, or about 500 mT.
In accordance with varions embodiments, the coil set 120 generates an electromagnetic field that is pulsed at a rate with a rise-time less than about 100 ps. In accordance with varions embodiments, the coil set 120 generates an electromagnetic field that is pulsed at a rate with a rise-time less than about 1 ps, about 5 ps, about 10 ps, about 20 ps, about 30 ps, about 40 ps, about 50 ps, about 100 ps, about 200 ps, about 500 ps, about 1 ms, about 2 ms, about 5 ms, or about 10 ms.
in accordance with varions embodiments, the coil set 120 is oriented to partially surround the région of interest 130. In accordance with varions embodiments, the spiral coils 140 are non-planar to each other. In accordance with varions embodiments, the sets of spiral coils 140a, 140b, 140c, and 140d are non-planar to each other. Said another way, the spiral coils 140 and each of the sets of spiral coils 140a, 140b, 140c, and 140d form a three-dimensional structure that surrounds the région of interest 130 where a patient résides.
In accordance with varions embodiments, the spiral coils 140 include the saine material. In accordance with varions embodiments, the spiral coils 140 include different materials. In accordance with varions embodiments, the spiral coils in set 140a include the same first material, the spiral coils in set 140b include the same second material, the spiral coils in set 140c include the same third material, the spiral coils in set 140d include the same fourth material, but the first, second, third and fourth materials are different materials. In accordance with various embodiments. the first and second materials are the same material. but that same material îs different from the third and fourth materials, which are the same. In essence, any of the spiral coils 140 can be of the same material or different materials depending on the configuration of the coil set 120.
In accordance with various embodiments, the spiral coils 140 include hollow tubes or solid tubes. In accordance with various embodiments, the spiral coils 140 include one or more windings. In accordance with various embodiments, the windings include litz wires or any electrical conducting wires. In accordance with various embodiments, the spiral coils 140 include copper, aluminum, si 1 ver, s il ver paste, or any high electrical conducting material, including métal, alloys or superconducting métal, alloys or non-métal. In accordance with various embodiments, the spiral coils 140 include metamaterials.
In accordance with various embodiments, the coil set 120 includes one or more electronic components for tuning the magnetic field. The one or more electronic components can include a PIN diode, a mechanical relay, a solid State relay, or a switch, including a micro15 electro-mechanical system (MEMS) switch. In accordance with various embodiments, the coil can be configured to include any of the one or more electronic components along the electrical circuit. In accordance with various embodiments, the one or more components can include mu metals, dielectrics, magnetic, or metallic components not actively conducting electricity and can tune the coil. In accordance with various embodiments, the one or more electronic components used for tuning includes at least one of conductive metals, metamaterials, or magnetic metals. In accordance with various embodiments, tuning the electromagnetic field includes changing the current or by changing physical locations of the one or more electronic components. In accordance with various embodiments, the coil is cryogenically cooled to reduce résistance and improve efficiency.
Figure 2 is a schematic view of an implémentation of a single-sided gradient coil set
200. As shown in the figure, the coil set 200 includes spiral coils 240a, 240b, and 240c arranged laterally adjacent to one another at a séparation distance. Although only 3 spiral coiis are shown in Figure 2 for illustrative purposes to convey the general concept of the spiral coils in the coil set 200, the illustration should be non-limiting to the technology as described herein. A current 30 source (not shown) is connected to each of the spiral coils 240a, 240b, and 240c to provide a current in directions 250a, 250b, and 25Ûc as shown in Figure 2. The current directions 250a, 250b, and 250c that flow through the spiral coils 240a, 240b, and 240c generate respective magnetic fields 260a, 260b, and 260c. As iliustrated, the direction, magnitude, uniformity, etc., for each of the magnetic fields 260a, 260b, and 260c generated by the respective spiral coils
240a, 240b, and 240c can be specifically configured to obtain the desired overall electromagnetic field or gradient field profile.
The configuration shown in Figure 2 can be used, for cxample. to diminish the effects of magnetic field harmonies, by having the middle spiral coil 240b running the current in opposinu directions of the two other spiral coïls 240a and 240c. In accordance w ith valions embodiments, the spiral coil 240b can be configured to generate the majority of magnetic field, while the spiral coils 240a and 240c are configured to correct for tlie harmonies and non-linearity of the magnetic field generated by the spiral coil 240b. In essence, any possible configuration can be implemented using the technology described herein to shape and form a desired electromagnetic field or field gradient to help with MRI imaging.
In accordance with various embodiments, the opposing current directions in the spiral coils 240a, 240b, and 240c can help with decreasing the electromagnetic gradient coil current rise time. In accordance with various embodiments, the electromagnetic field gradient has a rise time less than about 1 ps, about 5 ps, about 10 ps, about 20 ps, about 30 μ s, about 40 ps, about 50 ps, about 100 ps, about 200 μ s, about 500 ps, about 1 ms, about 2 ms, about 5 ms, or about 10 ms.
In accordance with various embodiments, the opposing current directions help with lowering the coupling inductance between the spiral coils 240a, 240b, and 240c. In accordance with various embodiments, the coupling inductance between the spiral coils 240a, 240b, and 240c is lowered by between about 1% and about 80%, about 5% and about 60%, about 10% and about 40%, about 15% and about 30%, or about 1% and about 10%, inclusive of any ranges therebetween.
Figure 3 is a schematic view of an implémentation of a single-sided gradient coil set 300. As showrn in the figure, the coil set 300 includes spiral coils 340a, 340b, and 340c arranged laterally adjacent to one another so that the spiral coils are touching. A current source (not shown) is connected to each of the spiral coils 340a, 340b, and 340c to provide a current in directions 350a, 350b, and 350c as shown in Figure 3. The current directions 350a, 350b, and 350c that flow through the spiral coils 340a, 340b, and 340c generate respective magnetic fields 360a, 360b, and 360c. Similar to the coil set 200 of Figure 2, the magnitude, uniformity, etc., for each of the magnetic fields 360a, 360b, and 360c generated by the respective spiral coils 340a, 340b, and 340c can be specifically configured to obtain the desired overall electromagnetic field or gradient field profile.
The configuration shown in Figure 3 can also be used to diminish the effects of magnetic field harmonies as discussed with respect to Figure 2. In accordance with various embodiments, the opposing current directions in the spiral coils 340a, 340b, and 340c can help with decreasinu the elcctromagnetic gradient coil current rise time. Since the spiral coils 340a. 340b, and 340c arc doser to one another as compared to the spiral coils 240a, 240b, and 240c, the diminishing effects is more enhanced m the decleasing ot the gradient coil current rise time. in accordance with various embodiments. the electromagnetic field gradient generated by the spiral coils 340a, 340b, and 340c has a rise time less than about 0.1 ps, about 0.5 lis, about 1 ps, about 5 ps, about 1 0 ps, about 20 ps, about 30 us, about 40 ps, about 50 us, about 100 ps. about 200 us, about 500 ps, about 1 ms. about 2 ms, about 5 ms, or about 10 ms.
In accordance with various embodiments, the opposing current directions help with lowering the coupling inductance between the spiral coils 340a, 340b, and 340c. In essence, the opposing current directions of doser spiral coils can help with further lowering the coupling inductance between the spiral coils 340a, 340b, and 340c as compared to the spiral coils 240a, 240b, and 240c. In accordance with various embodiments, the coupling inductance between the spiral coils 340a, 340b, and 340c is lowered by between about 1% and about 90%, about 5% and about 60%, about 10% and about 40%, about 15% and about 30%, or about 1% and about 10%, inclusive of any ranges therebetween.
Figure 4 is a schematic view of an implémentation of a single-sided gradient coil set 400. As shown in the figure, the coil set 400 includes spiral coils 440a, 440b, and 440c that are overlapping one another. A current source (not shown) is connected to each of the spiral coils 440a, 440b, and 440c to provide a current in the same directions 450a, 450b, and 450c as shown in Figure 4. The same current directions 450a, 450b, and 450c that flow through the spiral coils 440a, 440b, and 440c generate the same direction of magnetic fields 460a, 460b, and 460c. Similar to the coil set 200 of Figure 2 and coil set 300 of Figure 3, the magnitude, uniformity, etc., for each of the magnetic fields 460a, 460b, and 460c generated by the respective spiral coils 440a, 440b, and 440c can be specîficaliy configured to obtain the desired overall electromagnetic field or gradient field profile. However, the same direction of overlapping spiral coils 440a, 440b, and 440c magnetically découplé the spiral coils 440a, 440b, and 440c. The overlap of the spiral coils 440a, 440b, and 44 allows for the magnetic field within one coil (e.g., spiral coil 440b) to increase the magnetic field within the overlapping coils (e.g., spiral coil 440a and 440c), and vice versa.
Figure 5 is a flowehart for a method S100 for using a magnetic imaging apparatus, according to various embodiments. In accordance with various embodiments, the method S100 includes providing a power source at step SI 10.
In accordance with various embodiments, the method S100 includes providing a single-sided gradient coil set connected to the power source at step S120. In accordance with various embodiments, the coil set includes an aperture and one or more first spiral coils at a first position relative to the aperture and one or more second spiral coils at a second position relative to the aperture. In accordance with various embodiments, the first position being across from the second position with respect to the aperture.
As shown in Figure 5, the method S100 includes, at step S 130, turning on the power source so as to flow a current through the one or more first spiral coils and the one or more second spiral coils. In accordance with varions embodiments, the current tlow generales an electromagnetic field gradient that is projected away from the coil set and into an imaging région of the magnetic imaging apparatus.
In accordance with various embodiments, the electromagnetic field gradient is greater than about 5 mT. In accordance with various embodiments, the electromagnetic field gradient has a rise time less than about 10 ps. in accordance with various embodiments, the coil set further includes one or more electronic components from one of a PIN diode, a mechanica] relay, a solid State relay, or a MEMS switch.
In accordance with various embodiments, the method S100 optionally includes, at step S140, tuning the electromagnetic field gradient by changing the current orby changing one of physical properties or locations of the one or more electronic components.
In accordance with various embodiments, the coil set further includes an opening opposite the aperture, wherein the région between the aperture and the opening defines a coil set région, and wherein the imaging région is at least partially disposed outsîde the coil set région.
Figure 6 is a fiowchart for a method S200 for using a magnetic imaging apparatus, according to various embodiments. In accordance with various embodiments, the method S200 includes providing a power source at step S210.
In accordance with various embodiments, the method S200 includes providing a sîngle-sided gradient coil set connected to the power source at step S220.
As shown în Figure 6, the method S200 includes turning on the power source so as to flow a current through the coil set, at step S230.
In accordance with various embodiments, the method S200 includes generating an electromagnetic field gradient having a rise time less than about 10 ps, at step S240.
In accordance with varions embodiments, the method S200 includes projecting the electromagnetic field gradient away from the coil set and into an imaging région of the magnetic imaging apparatus, at step S25Û.
In accordance with various embodiments, the electromagnetic field gradient is greater than about 5 mT. In accordance with various embodiments, the electromagnetic field gradient has a rise time less than about 10 ps. In accordance with various embodiments, the coil set further includes one or more electronic components from one of a PIN diode, a mechanical relay, a solid State relay, or a MEMS switch.
In accordance with various embodiments. the method S200 optionally includes, at step S260. tuning the electromagnetic field gradient by changing the current or by changing one of physical propertics or locations of the one or more electronic components.
In accordance with various embodiments, the coil set further includes an aperture and one or more first spiral coils at a first position relative to the aperture and one or more second spiral coils at a second position relative to the aperture. in accordance with various embodiments, the first position being across from the second position with respect to the aperture.
In accordance with various embodiments, the coil set further includes an opening opposite the aperture, wherein the région between the aperture and the opening defmes a coil set région, and wherein the imaging région is at least parti al ly disposed outside the coil set région.
RECITATION OF EMBODIMENTS
1. A magnetic imaging apparatus comprising: a power source for providing a current; and a single-sided gradient coil set connected to the power source, the coil set having an aperture, wherein the coil set comprises one or more first spiral coils at a first position relative to the aperture and one or more second spiral coils at a second position relative to the aperture, the first position being across from the second position with respect to the aperture, and wherein the coil set is configured to receive a current through the one or more first spiral coils and the one or more second spiral coils, thereby generating an electromagnetic field gradient configured to Project away from the coil set and into an imaging région of the magnetic imaging apparatus.
2. The apparatus of embodiment 1, wherein the coil set is non-planar and oriented to partially surround the imaging région.
3. The apparatus of anyone of embodiments 1-2, wherein the one or more first spiral coils and the one or more second spiral coils are non-planar with respect to the aperture and mirror each other with respect to the aperture.
4. The apparatus of anyone of embodiments 1-3, wherein the electromagnetic field gradient is substantially uniform in the imaging région.
5. The apparatus of anyone of embodiments 1-4, wherein the electromagnetic field gradient is greater than about 5 mT.
6. The apparatus of anyone of embodiments 1-5, wherein the electromagnetic field gradient has a rise time less than about 10 ps.
7. The apparatus of anyone of embodiments 1-6. wherein the one or more first spiral coils comprise at least two first spiral coils with at least two different diameters.
8. The apparatus of embodiment 7, wherein the one or more second spiral coils comprise at least two second spiral coils with at least two different diameters.
9. The apparatus of anyone of embodiments 1-8, wherein the current is configured to flow through the one or more first spiral coils in alternating directions.
KJ. The apparatus of embodiment 9, wherein the current is configured ro flow through the one or more second spiral coils in alternating directions to minimize a rise time ofthe electromagnetic field gradient.
.The apparatus of anyone of embodiments 1 -1 ü, wherein a primary first spiral coil ofthe one or more first spiral coils is configured to create a first large primary electromagnetic field gradient and a secondary first spiral coil of the one or more first spiral coils is configured to create a first small secondary electromagnetic field gradient to provide adjustments in the first large primary electromagnetic field gradient.
12. The apparatus of embodiment 11, wherein a primary second spiral coi) ofthe one or more second spiral coils créâtes a second large primary electromagnetic field gradient and a secondary second spiral coil of the one or more second spiral coils is configured to create a second small secondary electromagnetic field gradient to provide adjustments in the second large primary electromagnetic field gradient.
13. The apparatus of anyone of embodiments 1-12, wherein a primary first spiral coil of the one or more first spiral coils and a secondary first spiral coil of the one or more first spiral coils adjacent to the primary first spiral coil hâve the current flowing through them in opposite directions.
14. The apparatus of embodiment 13, wherein a primary second spiral coil ofthe one or more second spiral coils and a secondary second spiral coil of the one or more second spiral coils adjacent to the primary second spiral coil hâve the current flowing through them in opposite directions.
15. The apparatus of anyone of embodiments 1-14, wherein a primary first spiral coil ofthe one or more first spiral coils and a secondary first spiral coil of the one or more first spiral coils adjacent to the primary first spiral coil overlap up to 50% of respective coils to generate a more parallel first electromagnetic field gradient.
16. The apparatus of embodiment 15, wherein a primary second spiral coil of the one or more second spiral coils and a secondary second spiral coil of the one or more second spiral coils adjacent to the primary second spiral coil overlap up to 50% of respective coiis to generate a more parallel second electromagnetic field gradient.
7. The apparatus of anyone of embodiments 1-16, wherein the one or more first spiral coils and the one or more second spiral coîls are connected to form a single current loop.
8.The apparatus of anyone of embodiments 1-17. wherein the one or more first spiral coils and the one or more second spiral coils comprise different materials.
19. The apparatus of anyone of embodiments 1-18, wherein the one or more first spiral coils and the one or more second spiral coils hâve diameters between about 10 pm to about 10 m.
20. The apparatus of anyone of embodiments 1-19, wherein the coil set further comprises one or more electronic components for tuning the electromagnetic field gradient.
21. The apparatus of embodiment 20, wherein the one or more electronic components include at least one of a PIN diode, a mechanical relay, a solid State relay, or a MEMS switch.
22. The apparatus of anyone of embodiments 1-21, wherein the one or more electronic components used for tuning includes at least one of dielectrics, conductive metals, metamaterials, or magnetic metals.
23. The apparatus of embodiment 22, wherein tuning the electromagnetic field gradient includes changing the current or changing physical locations of the one or more electronic components.
24. The apparatus of anyone of embodiments 1-23, wherein the coil set is cryogenically cooled to reduce résistance and improve efficiency.
25.The apparatus of anyone of embodiments 1-24, wherein the coil set further comprises an opening opposite the aperture, wherein the région between the aperture and the opening defines a coil set région, and wherein the imaging région is at least partially disposed outside the coil set région.
26. A method for using a magnetic imaging apparatus comprising: providing a power 25 source; providing a single-sided gradient coil set connected to the power source, the coil set having an aperture, wherein the coil set comprises one or more first spiral coils at a first position relative to the aperture and one or more second spiral coils at a second position relative to the aperture, the first position being across from the second position with respect to the aperture; and tumîng on the power source so as to tlow a current through the one or more first spiral coils and 30 the one or more second spiral coîls, thereby generating an electromagnetic field gradient that is projected away from the coil set and into an imaging région of the magnetic imaging apparatus.
27. The method of embodiment 26, wherein the electromagnetic field gradient is greater than about 5 mT.
28. The method of anyone of embodiments 26-27, wherein the electromagnetic field 35 gradient has a rise time less than about 10 ps.
29. The method of anyone of embodiments 26-28, wherein the coil set further comprises one or more electronîc components from one of a PIN diode, a mechanical relay, a solid state relay, or a MEMS switch.
30. The method of embodiment 29. further comprising: tuning the electromagnetic field irradient by changing the carrent or by changing one ol physical properties or locations of the one or more electronîc components.
1. The method of anyone of embodiments 26-30, wherein the coil set further comprises an opening opposite the aperture, wherein the région between the aperture and the opening defines a coîl set région, and wherein the imaging région is at least partially disposed outside the coil set région.
32. A magnetic imaging apparatus comprising: a power source for providing a current; and a single-sided gradient coil set connected to the power source, wherein the coil set is configured to generate an electromagnetic field gradient having a rise time less than about 10 ps and configured to project away from the coil set and into an imaging région of the magnetic imaging apparatus.
33. The apparatus of embodiment 32, wherein the coil set further comprising: an aperture, and one or more first spiral coils at a first position relative to the aperture and one or more second spiral coils at a second position relative to the aperture, the first position being across from the second position with respect to the aperture.
34. The apparatus of anyone of embodiments 32-33, wherein the coil set is non-planar and oriented to partially surround the imaging région.
35. The apparatus of anyone of embodiments 33-34, wherein the one or more first spiral coils and the one or more second spiral coils are non-planar with respect to the aperture and mirror each other with respect to the aperture.
36. The apparatus ofanyone of embodiments 32-35, wherein the electromagnetic field gradient is substantially unîform in the imaging région.
37. The apparatus of anyone of embodiments 32-36, wherein the electromagnetic field gradient is greater than about 5 mT.
38. The apparatus of anyone of embodiments 33-37, wherein the one or more first spiral coils comprise at least two first spiral coils with at least two different diameters.
39. The apparatus of embodiment 38, wherein the one or more second spiral coils comprise at least two second spiral coils with at least two different diameters.
40. The apparatus of anyone of embodiments 33-39, wherein the current is configured to flow through the one or more first spiral coils in altemating directions.
.The apparatus of embodiment 40, wherein the current is configured to flow through the one or more second spiral coils in altemating directions to minimize a rise time of the electromagnetic field gradient.
42. The apparatus of anyone of embodiments 33-41 „ wherein a primary first spiral coil of the one or more first spiral coils is configured to create a tirst large primary electromagnetic field gradient and a secondary first spiral coil of the one or more first spiral coils is configured to croate a first small secondary electromagnetic field gradient to providc adjustments in the first large primary electromagnetic field gradient.
43. The apparatus of embodiment 42, wherein a primary second spiral coil ofthe one or more second spiral coils créâtes a second large primary electromagnetic field gradient and a secondary second spiral coil of the one or more second spiral coils is configured to create a second small secondary electromagnetic field gradient to provide adjustments in the second large primary electromagnetic field gradient.
44. The apparatus of anyone of embodiments 33-43, wherein a primary first spiral coil ofthe one or more first spiral coils and a secondary first spiral coil of the one or more first spiral coils adjacent to the primary first spiral coil hâve the current flowing through them in opposite directions.
45. The apparatus of embodiment 44, wherein a primary second spiral coil of the one or more second spiral coils and a secondary second spiral coil of the one or more second spiral coils adjacent to the primary second spiral coil hâve the current flowing through them in opposite directions.
46. The apparatus of anyone of embodiments 33-45, wherein a primary first spiral coil of the one or more first spiral coils and a secondary first spiral coil of the one or more first spiral coils adjacent to the primary first spiral coil overlap up to 50% of respective coils to generate a more parallel first electromagnetic field gradient.
47. The apparatus of embodiment 46, wherein a primary second spiral coil of the one or more second spiral coils and a secondary second spiral coil of the one or more second spiral coils adjacent to the primary second spiral coil overlap up to 50% of respective coils to generate a more parallel second electromagnetic field gradient.
48. The apparatus of anyone of embodiments 33-47, wherein the one or more first spiral coils and the one or more second spiral coils are connected to form a single current loop.
49. The apparatus of anyone of embodiments 33-48, wherein the one or more first spiral coils and the one or more second spiral coils comprise different materials.
50. The apparatus of anyone of embodiments 33-49, wherein the one or more first spiral coils and the one or more second spiral coils hâve diameters between about 10 pm to about 10 m.
1 .The apparatus of anyone of embodiments 32-50, wherein the coil set turther comprises one or more electronic components for tuning the electromagnetic field gradient.
52. The apparatus of embodiment 51, wherein the one or more electronic components include at least one of a PIN diode, a mechanical relay, a solid State relay, or a MEMS switch.
53. The apparatus of anyone of embodiments 32-52, wherein the one or more electronic components used for tuning includes at least one of dielectrics, conductive metals, metamaterials, or magnetic metals.
54. The apparatus of anyone of embodiments 32-53, wherein tuning the electromagnetic field gradient includes changing the current or changing physîcal locations of the one or more electronic components.
55. The apparatus of anyone of embodiments 32-54, wherein the coil set is cryogenically cooled to reduce résistance and improve efficiency.
56. The apparatus of anyone of embodiments 33-55, wherein the coil set further comprises an opening opposite the aperture, wherein the région between the aperture and the opening defines a coil set région, and wherein the imaging région is at least partially disposed outside the coil set région.
57. A method for using a magnetic imaging apparatus comprising: providing a power source; providing a single-sided gradient coil set connected to the power source; tuming on the power source so as to tlow a current through the coil set; generating an electromagnetic field gradient having a rise time less than about 10 ps; and projecting the electromagnetic field gradient away from the coil set and into an imaging région of the magnetic imaging apparatus.
58. The method of embodiment 57, wherein the electromagnetic field gradient is greater than about 5 mT.
59. The method of anyone of embodiments 57-58, wherein the coil set further comprises one or more electronic components from one of a PIN diode, a mechanical relay, a solid State relay, or a MEMS switch.
60. The method of embodiment 59, further comprising: tuning the electromagnetic field gradient by changing the current or by changing one of physîcal properties or locations of the one or more electronic components.
.The method of anyone of embodiments 57-60, wherein the coil set further comprising: an aperture, and one or more first spiral coils at a first position relative to the aperture and one or more second spiral coils at a second position relative to the aperture, the first position being across from the second position with respect to the aperture.
62. The method of embodiment 61, wherein the coil set further comprises an opening opposite the aperture, wherein the région between the aperture and the opening defines a coil set région, and wherein the imaging région is at least partially disposed outside the coil set région.
While this spécification contains many spécifie implémentation details, these should not be construed as limitations on the scope of any inventions or of what may be claimed. but rather as descriptions of features spécifie to partîcular implémentations of partîcular inventions. Certain features that are described in this spécification in the context of separate implémentations can also be implemented in combination in a single implémentation. Conversely, varions features that are described in the context of a single implémentation can also be implemented in multiple implémentations separately or in any suitable sub-combination. Moreover, although features may be described above as acting in certain combinations and even initially claimed as such, one or more features from a claimed combination can in some cases be excised from the combination, and the claimed combination may be directed to a sub-combination or variation of a sub-combination.
Similarly, while operations are depicted in the drawings in a partîcular order, this should not be understood as requiring that such operations be performed in the partîcular order shown or in sequcntial order, or that ail illustrated operations be performed, to achieve désirable results. In certain circumstances, multîtasking and parallel processing may be advantageous. Moreover, the séparation of various System components in the implémentations described above should not be understood as requiring such séparation in ail implémentations, and it should be understood that the described program components and Systems can generally be integrated together in a single software product or packaged into multiple software products.
References to “or” may be construed as inclusive so that any tenus described using “or” may indicate any of a single, more than one, and ail of the described terms. The labels “first,” “second,” “third,” and so forth are not necessarily meant to indicate an ordering and are generally used merely to distinguîsh between lîke or simîiar items or éléments.
Various modifications to the implémentations described in this disclosure may be readily apparent to those skilled in the art, and the generic principes defined herein may be applied to other implémentations without departing from the spirit or scope of this disclosure. Thus, the daims are not intended to be limited to the implémentations shown herein, but are to be accorded the widest scope consistent with this disclosure, the princîples and the novel features disclosed herein.

Claims (33)

1. A magnetic imaging apparatus comprising:
a power source for providing a current; and a single-sided gradient coil set connected to the power source, the coil set having an aperture, wherein the coil set comprises one or more first spiral coils at a first position relative to the aperture and one or more second spiral coils at a second position relative to the aperture, the first position being across from the second position with respect to the aperture, and wherein the coil set is configured to receive a current through the one or more first spiral coils and the one or more second spiral coils, thereby generating an electromagnetic field gradient configured to project away from the coil set and into an imaging région of the magnetic imaging apparatus.
2. The apparatus of claim 1, wherein the coil set îs non-planar and oriented to partially surround the imaging région.
3. The apparatus of claim 1, wherein the one or more first spiral coils and the one or more second spiral coils are non-planar with respect to the aperture and mirror each other with respect to the aperture.
4. The apparatus of claim 1, wherein the electromagnetic field gradient is substantially uniform in the imaging région.
5. The apparatus of claim 1, wherein the electromagnetic field gradient is greater than about 5 mT.
6. The apparatus of claim 1, wherein the electromagnetic field gradient has a rise time less than about 10 ps.
7. The apparatus of claim 1, wherein the one or more first spiral coiis comprise at least two first spiral coils with at least two different diameters,
8. The apparatus of claim 7, wherein the one or more second spiral coils comprise at least two second spiral coils with at least two different diameters.
9. The apparatus of claim 1, wherein the current is configured to flow through the one or more first spiral coils in alternating directions.
10. The apparatus of claim 9, wherein the current is configured to flow through the one or more second spiral coils in alternating directions to minimize a rise time of the electromagnetic field gradient.
11. The apparatus of claim 1, wherein a primary first spiral coil of the one or more first spiral coils is configured to create a first large primary electromagnetic field gradient and a secondary first spiral coil of the one or more first spiral coils is configured to create a first small secondary electromagnetic field gradient to provide adjustments in the first large primary electromagnetic field gradient.
12. The apparatus of claim 11, wherein a primary second spiral coil ofthe one or more second spiral coils créâtes a second large primary electromagnetic field gradient and a secondary second spiral coil ofthe one or more second spiral coils is configured to create a second small secondary electromagnetic field gradient to provide adjustments in the second large primary electromagnetic field gradient.
13. The apparatus of claim 1, wherein a primary first spiral coil of the one or more first spiral coils and a secondary first spiral coil of the one or more first spiral coils adjacent to the primary first spiral coil hâve the current flowing through them in opposite directions.
14. The apparatus of claim 13, wherein a primary second spiral coil ofthe one or more second spiral coils and a secondary second spiral coil of the one or more second spiral coils adjacent to the primary second spiral coil hâve the current flowing through them in opposite directions.
15. The apparatus of claim 1, wherein a primary first spiral coil of the one or more first spiral coils and a secondary first spiral coil of the one or more first spiral coils adjacent to the primary first spiral coil overlap up to 50% of respective coils to generate a more parallel first electromagnetic field gradient.
16. The apparatus of claim 15, wherein a primary second spiral coil of the one or more second spiral coils and a secondary second spiral coil of the one or more second spiral coils adjacent to the primary second spiral coil overlap up to 50% of respective coils to generate a more parallel second electromagnetic field gradient.
17. The apparatus of claim 1, wherein the one or more first spiral coils and the one or more second spiral coils are connected to form a single current loop.
18. The apparatus of claim 1, wherein the one or more first spiral coils and the one or more second spiral coils comprise different materials.
19. The apparatus of claim 1, wherein the one or more first spiral coils and the one or more second spiral coils hâve diameters between about 10 pm to about 10 m.
20. The apparatus of claim 1, wherein the coil set further comprises one or more electronic components for tuning the electromagnetic field gradient.
21. The apparatus of claim 20, wherein the one or more electronic components include at least one of a PIN diode, a mechanical relay, a solid state relay, or a MEMS switch.
22. The apparatus of claim 20, wherein the one or more electronic components used for tuning includes at least one of dieîectrics, conductive metals, metamaterials, or magnetic metals.
23. The apparatus of claim 22, wherein tuning the electromagnetic field gradient includes changing the current or changing physical locations of the one or more electronic components.
24. The apparatus of claim 1, wherein the coil set is cryogenically cooled to reduce résistance and improve efficiency.
25. The apparatus of claim 1, wherein the coil set further comprises an opening opposite the aperture, wherein the région between the aperture and the opening defines a coil set région, and wherein the imaging région is at least partially disposed outside the coil set région.
26. A method for using a magnetic imaging apparatus comprising: providing a power source;
providing a single-sided gradient coil set connected to the power source, the coil set having an aperture, wherein the coil set comprises one or more first spiral coils at a first position relative to the aperture and one or more second spiral coils at a second position relative to the aperture, the first position being across from the second position with respect to the aperture; and turning on the power source so as to flow a current through the one or more first spiral coils and the one or more second spiral coils, thereby generating an electromagnetic field gradient that is projected away from the coil set and into an imaging région of the magnetic imaging apparatus.
27. The method of claim 26, wherein the electromagnetic field gradient is greater than about 5 mT.
28. The method of claim 26, wherein the electromagnetic field gradient has a rise time less than about 10 ps.
29. The method of daim 26, wherein the coil set further comprises one or more electronic components from one of a PIN diode, a mechanical relay, a solid State relay, or a MEMS switch.
30. The method of claim 29, further comprising:
tuning the electromagnetic field gradient by changing the current or by changing one of physical properties or locations of the one or more electronic components.
31. The method of claim 26, wherein the coil set further comprises an opening opposite the aperture, wherein the région between the aperture and the opening defines a coil set région, and wherein the imaging région is at least partially disposed outside the coil set région.
32. A magnetic imaging apparatus comprising: a power source for providing a current; and a single-sided gradient coil set connected to the power source, wherein the coil set is configured to generate an electromagnetic fieid gradient having a rise time less than about 10 ps and configured to project away from the coil set and into an imaging région ofthe magnetic imaging apparatus.
33. A method for using a magnetic imaging apparatus comprising: providing a power source;
providing a single-sided gradient coil set connected to the power source;
turning on the power source so as to flow a current through the coil set;
generating an electromagnetic field gradient having a rise time less than about 10 ps; and projecting the electromagnetic field gradient away from the coil set and into an imaging région of the magnetic imaging apparatus.
OA1202100416 2019-03-25 2020-03-25 Single-sided fast MRI gradient field coils and applications thereof OA20941A (en)

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