Speculum tip element and method for optimizing light efficiency/emission of a speculum tip element
11399709 · 2022-08-02
Assignee
Inventors
Cpc classification
A61B1/07
HUMAN NECESSITIES
International classification
Abstract
An otoscopic tip element having an axisymmetric hollow body having a substantially conical shape and made from a moldable plastic material includes a distal opening, a proximal opening, an interior surface, and an exterior surface. To maximize light transmissivity, a distal portion of the interior surface is provided with a smooth or polished surface finish and a proximal portion of the interior surface and the outer surface is provided with a textured surface finish such that light from a light source of an otoscope can be axially directed through the hollow body for emission through the distal opening, as well circumferentially through the exterior surface. The surface finish and color/tint of the speculum tip element can be adjusted or tuned to promote axial, circumferential and total light output relative to an intended medical target.
Claims
1. A method for maximizing the light transmissivity of a speculum tip element, the speculum tip element having an axisymmetric hollow body including a substantially conical shape including a distal opening and a proximal opening, the method comprising: molding the speculum tip element from a plastic material that is one of optically translucent or transparent to enable both axial and circumferential transmissivity of visible light through the distal opening and the body, respectively, the speculum tip element having an exterior surface and an interior surface; providing the exterior surface of the speculum tip element and a proximal portion of the interior surface with a textured surface finish, in which the textured surface finish of the exterior surface is between VDI 29 and VDI 36; and providing a distal portion of the interior surface of the speculum tip element with a smooth polished surface finish.
2. The method according to claim 1, wherein the plastic material is optically transparent.
3. The method according to claim 1, further comprising: roughening at least the smooth polished surface finish of the distal portion of the interior surface in order to increase circumferential illumination of the speculum tip element.
4. The method according to claim 3, wherein roughening the interior surface includes adding linear or radial scratches to at least the smooth polished surface finish of the distal portion of the interior surface.
5. The method according to claim 1, in which the textured surface finish of the exterior surface is between VDI 30 and VDI 32.
6. The method according to claim 5, in which a percentage of total illumination output of the speculum tip element is greater than 80 percent of an illumination output of an attached light source.
7. The method according to claim 1, in which a percentage of peripheral illumination of the speculum tip element is greater than 10 percent of a total illumination output of the speculum tip element.
8. An speculum tip element comprising: an axisymmetric hollow body having a substantially conical shape; a distal opening; an opposing proximal opening; an interior surface having a distal portion and a proximal portion; and an exterior surface, the hollow body being made from a moldable plastic and having a roughened exterior surface, a roughened proximal portion of the interior surface and a smooth and polished distal portion of the interior surface and in which the plastic is at least optically translucent in order to permit light from a coupled light source to be emitted through the distal opening, as well as be emitted circumferentially from the exterior surface and in which the exterior surface has a textured surface finish between VDI 29 and VDI 36.
9. The speculum tip element according to claim 8, in which the speculum tip element is fabricated from an optically transparent plastic.
10. The speculum tip element according to claim 8, in which the hollow body is made from a colored or tinted plastic material.
11. The speculum tip element according to claim 8, in which an amount of peripheral illumination output relative to a total illumination output of the speculum tip element is more than 10 percent.
12. The speculum tip element according to claim 8, in which an amount of total illumination output of the speculum tip element is greater than 80 percent, as compared to that of the light source.
13. A speculum tip element comprising: an axisymmetric hollow body made from a moldable plastic material; a distal tip opening; a proximal tip opening; an interior surface; and an exterior surface, the hollow body being defined by a truncated frusto-conical shape in which the distal tip opening has a diameter that is smaller than a diameter of the proximal tip opening, a distal portion of the interior surface having a smooth surface finish and a proximal portion of the interior surface and the exterior surface having a roughened textured surface finish such that light from a light source of an otoscope can be axially directed through the axisymmetric hollow body for emission through the distal tip opening, as well circumferentially through the exterior surface and wherein the textured surface finish of the exterior surface is between VDI 29 and VDI 36.
14. The speculum tip element according to claim 13, in which the axisymmetric hollow body is made from one of an optically transparent or optically translucent plastic material.
15. The speculum tip element according to claim 6, in which an amount of peripheral illumination output relative to a total illumination output of the speculum tip element is more than 10 percent.
16. The speculum tip element according to claim 6, in which an amount of total illumination output of the speculum tip element is greater than 80 percent, as compared to that of the light source.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
(14) The following relates to various embodiments of speculum tip elements for use in a medical diagnostic instrument, and more specifically an otoscope. A specific axisymmetric speculum tip element design and features are used throughout the following discussion. However, it will be understood that the described embodiments are examples and a myriad of modifications and variations are therefore possible. As described herein, certain characteristics of a plastic molded speculum tip element can be tuned or optimized at the time of manufacture in order to enhance light transmissivity, whether axially through the distal opening of the speculum tip element and/or circumferentially about the exterior (i.e., through the outer surface or peripherally) of a hollow speculum tip element body. Throughout the course of discussion, various terms such as “outer”, “inner”, “within”, “interior”, “exterior”, “distal”, “proximal” and the like are used in order to provide a suitable frame of reference in regard to the accompanying drawings. However, these terms are not intended to be over limiting of the scope of the invention, except where so specifically indicated. In addition, the accompanying drawings are intended to show the salient features of the invention. These drawings, however, are not intended to necessarily provide scaling or dimensional accuracy.
(15) For purposes of the following description, the terms “clear” or “transparent” as used herein, commonly refer to a material that permits complete passage or transmission of light. The term “translucent” as used herein refers to a material that permits the passage or transmission of a portion of light. The terms “black” or “opaque” as used herein refers to a material that does not permit the passage of any light. The terms “roughened” or “textured” as used herein refers to a material surface finish that creates either an opaque or translucent condition. The term “smooth” or “polished”, as used throughout, refers to a material surface finish that can create or maintain a transparent condition in the case of clear materials.
(16) In terms of background, reference is first made to
(17) The herein described speculum tip element 40 further includes features to enable releasable attachment to the distal end and more specifically the distal insertion portion of the otoscopic instrument head (not shown), depending on the otoscope design. A plurality of engagement features 52 are circumferentially and evenly spaced about the exterior surface of the speculum tip element 40. According to this specific version, three (3) such features, equally spaced from one another circumferentially by about 120 degrees, as provided, though the actual number of engagement features provided could be suitably varied. Each of the external engagement features 52 extends radially from the open proximal end opening 48 of the tip element 40 and commonly includes a circumferential securing portion 55 and a depending axial portion 54 forming a substantially L-shape, the circumferential securing portion 55 having a plurality of teeth 56 that are located on an engagement surface thereof. Additionally, the circumferential securing portion 55 is substantially wedge-shaped, the securing portion 55 having a maximum thickness at the interface with the depending axial portion 54 and a tapered minimum thickness at an opposing end, thereby forming the ramped engagement surface. The depending axial portions 54 facilitate stacking of a plurality of tip elements 40, as well as provide a grip surface when attaching the tip elements to the otoscope. An additional number of spaced axial ribs 66 disposed between each of the depending axial portions aid in providing a gripping surface when attaching the tip elements 40.
(18) With further reference to
(19) In terms of overall manufacture, the herein described otoscopic speculum tip element 40 is created using a molding process in which a black colored agent or additive is added to the polypropylene material. As shown in
(20) Various groups of axisymmetric speculum tip elements having the above structural design shown in
(21) Each speculum tip element was attached using the external engagement features 52,
(22) With further reference to
(23) As noted, multiple groups of specifically fabricated speculum tip elements 40A were tested. As previously noted and for purposes of this testing, each of the groups of speculum tip elements were commonly and structurally defined with the design attributes shown in
(24) A first set of speculum tip elements 200 (herein designated as Test Group A) comprise traditional speculum tip elements, such as described previously with reference to
(25) Each of the second set of speculum tip elements 300 (herein designated as Test Group B) was also defined with all of the design attributes of the speculum tip elements 200 of Test Group A shown in
(26) A third set of speculum tip elements 400 (herein designated as Test Group C) was also defined with all of the same structural design attributes as Test Groups A and B. The speculum tip elements 400 of this Test Group were also made from the same polypropylene material (Profax 6523) as Test Groups A and B, but in which the plastic material was clarified enabling the speculum tip elements 400 to be optically clear. In addition, both the entire interior and exterior surfaces 60, 65,
(27) A fourth set of speculum tip elements 500 (herein designated as Test Group D) was defined with all of the same design attributes of the speculum tip elements 200, 300, 400 of the prior Test Groups A, B and C. However, the speculum tip elements of this Test Group were molded using the same clarified polypropylene material, (Profax 6523 homopolymer), that is further defined by an interior surface 60,
(28) Finally, a fifth set of speculum tip elements 600 (herein designated as Test Group E) was defined with all of the same design attributes of the speculum tip elements of the prior Test Groups A-D. The speculum tip elements 600 of this Test Group were intended to be identical to the speculum tip elements of Test Group D, including the same interior and exterior surface finishes/textures with the only difference between Test Groups D and E being the choice of plastic material. More specifically, the speculum tip elements 600 of this Test Group E were molded from another clarified polyethylene material (Pinnacle 1112).
(29) For each of the speculum tip elements of Test Groups A, B, D and E, the surface finish of the proximal portion 63,
(30) Speculum tip elements 200, 300, 400 and 600 of the above enumerated Test Groups (A-C and E) are shown in
(31) TABLE-US-00001 TABLE I Lumens % of tip Lumens % % Total (tip Light (total- Light Side Group end) output fiber end) output Lumens Test Group A 2.62 17.10 2.51 16.40 −0.11 (200) Test Group B 5.76 37.90 9.12 59.90 3.36 (300) Test Group C 11.27 76.40 12.08 79.50 0.74 (400) Test Group D 10.55 69.20 12.91 84.40 2.33 (500) Test Group E 11.84 76.90 13.75 89.30 1.91 (600) No tip - 15.4 100 bare fibers
(32) For purposes of the test, the illumination output at the fiber (distal) end of the medical diagnostic device (otoscope 120,
(33) The clear transparent speculum tip elements 400 (Test Group C) having polished interior and exterior surfaces efficiently transmitted light to the distal tip end (11.27 lumens vs 15.4 lumens-76.4%), but with literally no peripheral illumination output (0.74 lumens).
(34) Each of the clear translucent speculum tip elements 500, 600 (Test Groups D and E) having a polished distal portion of the interior surface and a textured exterior surface transmitted the highest percentages of total light (84.4% and 89.30%, respectively). Surprisingly, however, these speculum tip elements 500, 600 also provided increased side or peripheral illumination outputs (2.33 lumens and 1.91 lumens, respectively), as compared to the clear transparent speculum tip elements 400 (Test Group C), having both polished interior and exterior surfaces. Still further, the speculum tip elements 600 of Test Group E also surprisingly exhibited a higher percentage of illumination being transmitted to the distal opening than any of the remaining Test Groups, including Test Group C. As noted, the specific test data for the sample tip elements 200, 300, 400, 500, and 600 of each Test Group is provided in
(35) As previously noted, the relative light transmissive qualities are pictorially illustrated between each of the Test Groups A-E of the various speculum tip elements 200, 300, 400, 500, and 600 in
(36) Additional tests were conducted to determine the effects of various surface finishes relative to the interior surfaces of various speculum tip elements with the summary of results being provided in Table II. Control speculum tip elements were tested in combination with the following Test Specimens, each taken from the prior Test Group E and provided with different and specific interior surface features. More specifically, the following Test Specimens were tested:
(37) Test Specimen 1 included a speculum tip element 600 of prior test Group E with no interior surface feature changes being made to the polished distal portion 62,
(38) Test Specimen 2 included a speculum tip element 600 from the prior Test Group E, but in which a series of linear scratches were made to the polished distal portion 62,
(39) Test Specimen 3 also included a speculum tip element 600 from the prior Test Group E, but in which the speculum tip element 600 further included a plurality of radial scratches that were applied to the polished distal portion 62,
(40) Finally, Test Specimen 4 included a speculum tip element 600 from the prior Test Group E, but in which the speculum tip element 600 was further defined by having the polished distal portion 62,
(41) Each of the above Test Specimens 1-4 were tested in the same test fixture 100,
(42) TABLE-US-00002 TABLE II Lumens % of tip Lumens % % Total (tip Light (total- Light Side Spec Tip end) output fiber end) output Lumens Test 11.84 76.4 13.75 88.7 1.91 Specimen 1 Test 9.92 64.0 12.48 80.5 2.56 Specimen 2 Test 8.02 51.7 11.34 73.2 3.32 Specimen 3 Test 3.05 19.7 4.4 28.4 1.35 Specimen 4 No tip - 15.5 bare fibers
(43) As can be understood from the foregoing test data, all of the Test Specimens 2-4 produced significant light losses at the distal tip opening, as well as the entire (total) speculum tip element itself, as compared to the control Test Specimen 1. Higher outputs of side or peripheral illumination output were measured for Test Specimens 2 and 3, as compared to Test Specimen 1. Test Specimen 4 produced significant reductions in tip and peripheral illumination output, along with the greatest percentage of total illumination output being lost.
(44) A similar test was performed on a speculum tip element 400 made from the prior Test Group C (using Profax 6523 homopolymer polypropylene) in which a control speculum tip element 400 (Test Specimen 5) was compared to a similar speculum tip element (Test Specimen 6), the latter having its polished interior surface roughened.
(45) TABLE-US-00003 TABLE III Lumens % of tip Lumens % % Total (tip Light (total- Light Side Spec Tip end) output fiber end) output Lumens Test 11.25 73.2 12.08 78.6 0.74 Specimen 5 Test 7.45 48.5 10.01 65.1 2.56 Specimen 6 No tip - 15.37 bare fibers
(46) As noted from the foregoing Tables II and III, roughening of the polished interior surface 60, of a clear speculum tip element resulted in an appreciable increase in peripheral illumination output, but significant decreases were created in both axial (tip) illumination, as well as total illumination output. Interestingly and while the impact of scratches and other surface effects creates an increase in the side (peripheral) lumen output, sandblasting of the polished interior surface 60 created decreases in all aspects (distal, total and peripheral) of illumination output.
(47) The effects of exterior surface finish upon light transmissivity were then further evaluated using the same test fixture 100,
(48) TABLE-US-00004 TABLE IV Lumens % of tip Lumens % % Total (tip Light (total- Light Side Group end) output fiber end) output Lumens Test Group I 12.28 79.4 13.97 90.3 1.69 (VDI 30) Test Group I 12.00 77.1 13.79 88.5 1.78 (VDI 32) Test Group I 12.08 78.1 13.84 89.5 1.77 (VDI 33) Test Group II 12.77 82.4 14.31 92.3 1.54 (VDI 30) Test Group II 12.59 81.3 14.15 91.3 1.56 (VDI 32) Test Group II 12.50 80.8 14.14 91.3 1.63 (VDI 33) Test Group III 12.23 79.4 13.90 90.3 1.68 (VDI 30) Test Group III 12.16 76.6 13.75 86.6 1.59 (VDI 32) Test Group III 12.08 76.5 13.78 87.2 1.70 (VDI 33)
(49) Individual data results for each of the above Test Groups I-III is provided in the attached
(50) Different variations of either color/tint of the moldable material and surface finishes or lack of finishes on the surfaces of the speculum tip elements have been determined to create substantial effects to the transmissibility of light.
(51) For purposes of this invention, it has been generally determined that providing a surface finish in the fabrication of otoscopic speculum tip elements increases overall light transmissivity, particularly using a molded plastic material that includes a clarifier to create an optically clear product. Preferably, the exterior surface of these speculum tip elements is defined with a surface finish of approximately VDI 30-VDI 33, although a range of between VDI 29-VDI 36 has been determined to provide acceptable results.
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(53) It will be understood from the preceding description that other variations and modifications of the inventive tip element design and method enable uses for literally an unlimited myriad of applications, depending on light transmissive characteristics deemed most important for purposes or uses of the specific application and in accordance with the following claims.
PARTS LIST FOR FIGS. 1(a)-10(c)
(54) 40 speculum tip element 40A speculum tip element 42 hollow body, speculum tip element 44 distal tip opening, speculum tip element 48 proximal tip opening, speculum tip element 52 engagement features, external 54 depending axial portion 55 circumferential securing portion 56 teeth, plurality 60 interior surface, speculum tip element 62 distal portion, interior surface 63 proximal portion, interior surface 64 interior protrusion 65 exterior surface, speculum tip element 66 ribs, axial 70 annular sealing ring 100 test fixture 104 spherical integration chamber 108 external port, spherical integration chamber 120 otoscope 124 instrument head 126 distal insertion portion 128 handle portion 200 speculum tip element 300 speculum tip element 400 speculum tip element 500 speculum tip element 600 speculum tip element
(55) It will be readily apparent to a person of sufficient skill that there are other variations and modifications within the intended scope of this invention, and as set forth by the following claims. In addition, the surface finishes described herein refer to VDI 3400 based on EDM. Similar effects can be provided using Moldtech (MT) or other techniques.