The field of the invention relates to medical imaging systems, and more particularly to systems and methods for improving the imaging resolution of an imaging transducer.
Intraluminal, intracavity, intravascular, and intracardiac treatments and diagnosis of medical conditions utilizing minimally invasive procedures are effective tools in many areas of medical practice. These procedures are typically performed using imaging and treatment catheters that are inserted percutaneously into the body and into an accessible vessel of the vascular system at a site remote from the vessel or organ to be diagnosed and/or treated, such as the femoral artery. The catheter is then advanced through the vessels of the vascular system to the region of the body to be treated. The catheter may be equipped with an imaging device, typically an ultrasound imaging device, which is used to locate and diagnose a diseased portion of the body, such as a stenosed region of an artery. For example, U.S. Pat. No. 5,368,035, issued to Hamm et al., the entire disclosure of which is incorporated herein by reference, describes a catheter having an intravascular ultrasound imaging transducer.
a and 1b show an example of an imaging transducer assembly 1 known in the art. The imaging transducer assembly 1 is situated within the lumen 50 of a sheath 5 of a guidewire (partially shown) and is capable of rotating 360° within the sheath 5, about the axis of the sheath 5. The lumen 50 of the sheath 5 is typically filled with a sonolucent liquid, such as water or saline that surrounds the transducer assembly 1. The imaging transducer assembly 1 includes a drive shaft 10 and a stainless steel housing 20 coupled to the distal end of the drive shaft 10, which serves to reinforce the structure of the transducer assembly 1. Toward the distal end of the housing 20 is a layer of piezoelectric crystal (“PZT”) 40, attached to an acoustic lens 30 exposed to the sonolucent liquid in the lumen 50.
During operation, the imaging transducer assembly 1 may be placed within a blood vessel at an area where an image is desired, i.e. the imaging environment (not shown). Turning to
The quality of the image depends upon several factors. One of the factors is the width W of the acoustic beams 60. Accordingly, there is a need for an improved imaging device that outputs beams with a narrower width in order to increase the resolution of the image and allows images to be obtained for smaller objects.
The improved imaging device is intended for use within the lumen of a blood vessel. Generally, the imaging device includes an imaging transducer, capable of emitting one or more energy beams. In one embodiment of the invention, the imaging transducer may be surrounded by a sheath, where the sheath is configured such that when the imaging transducer emits the one or more energy beams, the sheath narrows the width of the one or more energy beams as the one or more energy beams exits the sheath.
Other systems, methods, features and advantages of the invention will be or will become apparent to one with skill in the art upon examination of the following figures and detailed description. It is intended that all such additional systems, methods, features and advantages be included within this description, be within the scope of the invention, and be protected by the accompanying claims.
In order to better appreciate how the above-recited and other advantages and objects of the present inventions are obtained, a more particular description of the invention briefly described above will be rendered by reference to specific embodiments thereof, which are illustrated in the accompanying drawings. It should be noted that the components in the figures are not necessarily to scale, emphasis instead being placed upon illustrating the principles of the invention. Moreover, in the figures, like reference numerals designate corresponding parts throughout the different views. However, like parts do not always have like reference numerals. Moreover, all illustrations are intended to convey concepts, where relative sizes, shapes and other detailed attributes may be illustrated schematically rather than literally or precisely.
a is a cross-sectional side view of an imaging transducer assembly known in the art.
b is a cross-sectional distal end view of the prior art imaging transducer assembly of
Described below are improved imaging devices.
Turning to
To increase the resolution of the image obtained by an imaging transducer assembly, the width W of the beam 60 may be narrowed. One approach to narrowing the acoustic beam emitted from an imaging transducer is shown in
The ability to narrow the width W1 of the beam 160 can be explained by using a physics principle known as Snell's Law, which states:
n1 sin Θ1=n2 sin Θ2 wherein, (1)
The refractive index, n, is a constant associated with a particular material, or medium, and indicates how much the medium will refract an energy beam that reaches the surface of the medium. The incident medium is the medium in which the incident energy beam is traveling, and the transmitted medium is the medium in which the refracted energy beam is traveling. Applying these terms to
The angle of incidence, Θ1, is measured between the incident energy beam and the normal to the surface between the incident and transmitted mediums. The angle of refraction, Θ2, is measured between the normal to the surface between the incident and transmitted mediums and the refracted energy beam. Applying these terms to
Likewise, the sheath 105 can also be viewed as the incident medium and the area 190 outside of the sheath 105 can be viewed as the refracted medium. Thus, angle C can be viewed as the angle of incidence, between the normal 180 to the surface of the outside 190 of the sheath 105 and the portion 164 of the beam 160 traveling through the sheath 105. Further, angle D can be viewed as the angle of refraction, between the normal 180 to the surface of the outside 190 of the sheath 105 and the portion 166 of the beam 160 traveling through the medium outside of the sheath 105. As shown in
In addition to the refractive index, n, a medium may also be characterized by its phase velocity or sound velocity, v, which is the velocity of propagation of an energy wave, e.g., acoustic wave, traveling through the medium. The phase velocity, v, is inversely proportional to the refractive index, n, and thus, Snell's Law may be represented as:
v2 sin Θ1=v1 sin Θ2 wherein, (2)
Using equation (1) or (2), if the medium within the lumen 150 is viewed as the incident medium, and the sheath 105 is viewed as the transmitted medium, then if the angle of refraction, Θ2, within the sheath 105, i.e., angle B, is increased to a value at least greater than angle A, then the acoustic beam 160 will desirably become more narrow, i.e., the value of W2 will be smaller.
There are several approaches to increasing angle B. One approach is to use a sheath 105 material with a higher phase velocity, v2, than the phase velocity of the medium within the lumen 150, v1. Using equation (2), a higher value v2 will result in a higher angle of refraction, Θ2, and thus, an increased angle B. For example, if water, which typically has a phase velocity of approximately 1.5 mm/μsec, is used as the medium within the lumen 150, then a sheath 105 material with a higher phase velocity, e.g., 2.0 mm/μsec, will result in an increased angle B.
With regard to angles C and D, where angle C is the angle of incidence within the sheath 105 and angle D is the angle of refraction outside 190 of the sheath 105, often the transmitted medium outside 190 of the sheath 105 is blood, which typically has substantially the same phase velocity as water, i.e., 1.5 mm/μsec. Accordingly, if the sheath 105 material has a higher phase velocity than the phase velocity of the medium outside 190 of the sheath 105, then using equation (2), the angle of incidence, angle C, may be larger than the angle of refraction, angle D. However, because of the curvature of the sheath 105, the normal to the surface of the outside 190 of the sheath 105 occurs at 180, and thus, the portion 166 of the beam 160 exiting the sheath 105 is still narrower than the portion 162 of the beam 160 within the lumen 150 of the sheath 105.
A common sheath 105 material includes a mixture of different types of materials, e.g., different types of PE materials. As can be appreciated by one of ordinary skill in the art, the sheath 105 materials may be produced by blending certain percentages of different materials having different densities, such as REXENE®, a polyethylene having a phase velocity of approximately 2.32 mm/μsec and a density of 0.89 g/mm, and ALATHON®, which has a phase velocity of approximately 2.25 mm/μsec and a density of 0.92 g/mm. This may affect the phase velocity v2 of the sheath 105 material. In one example, a sheath 105 material may include 70% REXENE® polyethylene and 30% ALATHON®.
Another approach is to increase the thickness of the sheath 105. An increased thickness may result in moving the normal line 180 to the outside surface of the sheath 105 closer to the center of the beam 160, thus resulting in a narrower beam 160. The thicker sheath 105 may decrease the incident angle within the sheath 105, angle C, and thus decrease the angle of refraction outside 190 of the sheath 105, i.e., angle D. However, because of the change in the normal line 180, the resulting beam thickness W2 will desirably be smaller. The amount of thickness may depend upon the diameter of the sheath 105 and the dimensions of the imaging environment, e.g., the diameter of a blood vessel in which the transducer assembly 100 and sheath 105 is located. For a sheath 105 having a diameter of approximately 1 mm and for a blood vessel having a diameter of at least 6 mm, it may be desirable to have sheath 105 thickness of at least 0.18 mm. In addition, multiple sheath layers may be used (not shown), and further, each layer may have a higher phase velocity than its neighboring inner layer.
In yet another approach, the radius of curvature of the inside surface of the sheath 105 may be decreased. In this approach, the decreased radius of curvature may cause the angle of incidence, Θ1, i.e., angle A, to increase, which may then, using equation (1) or (2), increase the angle of refraction, Θ2, within the sheath 105, i.e., angle B. In another approach, a medium within the lumen 150 may be selected or produced with a lower phase velocity, v1. Using equation (2), a medium within the lumen 150 with a lower phase velocity, v1, may result in a higher angle of refraction, Θ2, within the sheath 105, i.e., angle B. For example, typically, the medium within the lumen 150 is water, which typically has a phase velocity of approximately 1.5 mm/μsec. Other liquids or materials may be used that have lower phase velocities than the phase velocity for water, such as certain types of alcohols, such as ethanol, which has a phase velocity of 1.207 mm/μsec.
Turning to
These approaches may be used individually or in any combination with other approaches mentioned above and/or with other suitable approaches to narrow the beam emitted from the assembly 100.
The above descriptions utilize a single transducer assembly 100. However, the concepts and principles described above are equally applicable to the use of multiple transducer arrays encased with acoustic beams that are steered either by mechanical rotation or electronic phasing.
Turning to
The length of the guidewire 500 may vary depending on the application. In a preferred embodiment, the length of the guidewire 500 is between 30 cm and 300 cm. A catheter (not shown) may be configured to use several different diameters of guidewires 500. For example, the guidewire 500 may have a diameter of 0.010, 0.014, 0.018, or 0.035 inches. Typically, the diameter of the guidewire 500 is uniform.
A proximal portion 510 of the guidewire 500 may be adapted to connect to circuitry (not shown) that processes imaging signals from the imaging transducer, such circuits well known in the art.
In the foregoing specification, the invention has been described with reference to specific embodiments thereof. It will, however, be evident that various modifications and changes may be made thereto without departing from the broader spirit and scope of the invention. For example, the reader is to understand that the specific ordering and combination of process actions described herein is merely illustrative, and the invention can be performed using different or additional process actions, or a different combination or ordering of process actions. For example, this invention is particularly suited for applications involving medical imaging devices utilizing acoustic imaging devices, but can be used on any design involving imaging devices in general, such as optical or light imaging devices. As a further example, each feature of one embodiment can be mixed and matched with other features shown in other embodiments. Additionally and obviously, features may be added or subtracted as desired. Accordingly, the invention is not to be restricted except in light of the attached claims and their equivalents.
Number | Name | Date | Kind |
---|---|---|---|
3005452 | Pitman | Oct 1961 | A |
4349032 | Koyata | Sep 1982 | A |
4387720 | Miller | Jun 1983 | A |
4674515 | Andou et al. | Jun 1987 | A |
4794931 | Yock | Jan 1989 | A |
4815470 | Curtis et al. | Mar 1989 | A |
4821731 | Martinelli et al. | Apr 1989 | A |
4834102 | Schwarzchild et al. | May 1989 | A |
4951677 | Crowley et al. | Aug 1990 | A |
5000185 | Yock | Mar 1991 | A |
5024234 | Leary et al. | Jun 1991 | A |
5054492 | Scribner et al. | Oct 1991 | A |
5078702 | Pomeranz | Jan 1992 | A |
5115814 | Griffith et al. | May 1992 | A |
5199437 | Langberg | Apr 1993 | A |
5203338 | Jang | Apr 1993 | A |
5243988 | Sieben et al. | Sep 1993 | A |
5249580 | Griffith | Oct 1993 | A |
5305755 | Nakao | Apr 1994 | A |
5368035 | Hamm et al. | Nov 1994 | A |
5400789 | Griffith | Mar 1995 | A |
5438997 | Sieben et al. | Aug 1995 | A |
5509917 | Cecchetti et al. | Apr 1996 | A |
5571114 | Devanaboyina | Nov 1996 | A |
5640961 | Verdonk | Jun 1997 | A |
5655537 | Crowley | Aug 1997 | A |
5820561 | Olstad et al. | Oct 1998 | A |
5827313 | Ream | Oct 1998 | A |
5873830 | Hossack et al. | Feb 1999 | A |
5879305 | Yock et al. | Mar 1999 | A |
5897504 | Buck et al. | Apr 1999 | A |
5902242 | Ustuner et al. | May 1999 | A |
5902245 | Yock | May 1999 | A |
5921934 | Teo | Jul 1999 | A |
5931788 | Keen et al. | Aug 1999 | A |
5979093 | Harruff et al. | Nov 1999 | A |
5980451 | O'Hara et al. | Nov 1999 | A |
5984871 | TenHoff et al. | Nov 1999 | A |
5993390 | Savord et al. | Nov 1999 | A |
6014473 | Hossack et al. | Jan 2000 | A |
6019724 | Gronningsaeter et al. | Feb 2000 | A |
6056691 | Urbano et al. | May 2000 | A |
6078831 | Belef et al. | Jun 2000 | A |
6120455 | Teo | Sep 2000 | A |
6123670 | Mo | Sep 2000 | A |
6139499 | Wilk | Oct 2000 | A |
6165127 | Crowley | Dec 2000 | A |
6171250 | White et al. | Jan 2001 | B1 |
6190320 | Lelong | Feb 2001 | B1 |
6248076 | White et al. | Jun 2001 | B1 |
6261234 | Lin | Jul 2001 | B1 |
6261246 | Pantages | Jul 2001 | B1 |
6267727 | Teo | Jul 2001 | B1 |
6283921 | Nix et al. | Sep 2001 | B1 |
6287261 | Suorsa et al. | Sep 2001 | B1 |
6309379 | Willard et al. | Oct 2001 | B1 |
6360027 | Hossack et al. | Mar 2002 | B1 |
6364840 | Crowley | Apr 2002 | B1 |
6419639 | Walther et al. | Jul 2002 | B2 |
6428477 | Mason | Aug 2002 | B1 |
6442289 | Olsson et al. | Aug 2002 | B1 |
6450964 | Webler | Sep 2002 | B1 |
6491636 | Chenal et al. | Dec 2002 | B2 |
6511426 | Hossack et al. | Jan 2003 | B1 |
6516215 | Roundhill | Feb 2003 | B1 |
6520912 | Brooks et al. | Feb 2003 | B1 |
6520915 | Lin et al. | Feb 2003 | B1 |
6524251 | Rabiner et al. | Feb 2003 | B2 |
6529760 | Pantages et al. | Mar 2003 | B2 |
6537217 | Bjaerum et al. | Mar 2003 | B1 |
6540681 | Cheng et al. | Apr 2003 | B1 |
20010020126 | Swanson et al. | Sep 2001 | A1 |
20010039058 | Iheme et al. | Nov 2001 | A1 |
20010041336 | Anderson et al. | Nov 2001 | A1 |
20030233115 | Eversull et al. | Dec 2003 | A1 |
Number | Date | Country |
---|---|---|
0 580 304 | Jan 1994 | EP |
0 580 304 | Jan 1994 | EP |
02277445 | Nov 1990 | JP |
07111996 | May 1995 | JP |
09117452 | May 1997 | JP |
10071149 | Mar 1998 | JP |
10248850 | Sep 1998 | JP |
Number | Date | Country | |
---|---|---|---|
20040236205 A1 | Nov 2004 | US |