Test system
09671387 ยท 2017-06-06
Assignee
Inventors
- Bruno Thoes (Quierschied, DE)
- Karl Miltner (Frankenthal, DE)
- Peter Hess (Worms, DE)
- Guenter Ihle (Mauer, DE)
- Martin Koch (Viernheim, DE)
- Joerg Scherer (Aalen, DE)
- Klaus-Dieter Sacherer (Kirchheim, DE)
- Ralf Piegsa (Stuttgart, DE)
Cpc classification
A61B5/14532
HUMAN NECESSITIES
A61B2562/0295
HUMAN NECESSITIES
B01L3/502715
PERFORMING OPERATIONS; TRANSPORTING
A61B5/1455
HUMAN NECESSITIES
G01N35/00009
PHYSICS
International classification
A61B5/145
HUMAN NECESSITIES
G01N21/01
PHYSICS
G01N33/50
PHYSICS
Abstract
The invention concerns a test system for carrying out blood sugar tests with a diagnostic tape cassette which comprises a windable analytical test tape for detecting an analyte and a cassette housing accommodating the test tape, and a test device which has a device housing for inserting and removing the tape cassette and a measuring unit for detecting the analyte on the test tape. According to the invention it is proposed that the tape cassette can be detachably fastened by positioning elements on a platform mounted in the device housing and that the measuring unit is rigidly attached on the platform or can be engaged therewith.
Claims
1. A test system for carrying out blood sugar tests, comprising: a diagnostic tape cassette comprising a windable analytical test tape for detecting an analyte and a cassette housing accommodating the test tape, wherein the cassette housing comprises a plurality of tape cassette positioning elements; and a test device comprising; a device housing configured for inserting and removing the tape cassette, an associated measuring unit for detecting the analyte on the test tape, and a platform permanently integrated or mounted as a device element in a base of a cassette compartment in the device housing, the platform comprising a rotary drive pin of a tape drive and a plurality of platform positioning elements, wherein the tape cassette, when inserted into the cassette compartment of the device housing, is detachably fastened to the platform by means of the plurality of platform positioning elements and the rotary drive pin, wherein the plurality of platform positioning elements comprises one or more raised supports and one or more positioning pins, wherein the one or more raised supports are disposed on a surface of the platform and are configured to provide a tilt-free support for an inserted tape cassette, wherein the one or more positioning pins are disposed on the surface of the platform and are pairable with at least one of the plurality of tape cassette positioning elements and are configured to nullify displacement play, and wherein the displacement play is between 1 mm and 3 mm, and wherein the measuring unit is fixedly attached on the platform or can be engaged therewith.
2. The test system according to claim 1, wherein the platform is defined by a mechanically self-stable support plate that is held in the device housing by connecting means.
3. The test system according to claim 2, wherein the platform comprises an outsert molding part comprising a metal support and plastic parts formed thereon.
4. The test system according to claim 1, wherein the one or more positioning pins have a cylindrical base and taper towards a free end.
5. The test system according to claim 4, wherein the plurality of tape cassette positioning elements comprises at least one oblong hole or round hole for engaging or pairing with at least one positioning pin.
6. The test system according to claim 1, wherein the test device further comprises a housing cover comprising a spring arrangement projecting from an inner side of the housing cover and configured to convey the tape cassette from a loose insertion position into a defined fixed measuring position in the device during insertion of the tape cassette.
7. A test system for carrying out blood sugar tests with a diagnostic tape cassette, comprising: the diagnostic tape cassette comprising: a windable analytical test tape for detecting an analyte, a take-up spool configured for advancing the analytical test tape from a supply spool, and a cassette housing accommodating the test tape; and a test device comprising: a device housing configured for inserting and removing the diagnostic tape cassette, an associated measuring unit for detecting the analyte on the test tape, and a platform permanently integrated or mounted as a device element in a base of a cassette compartment in the device housing, the platform comprising a rotary drive pin of a tape drive, wherein at least part of the rotary drive pin is axially spring loaded by at least one coil spring and is configured to engage the take-up spool or the supply spool of the diagnostic tape cassette, and wherein the measuring unit is fixedly attached on the platform or can be engaged therewith, and wherein when the tape cassette is inserted, it moves from a loose insertion position into a defined fixed measuring position in the device under the action of a spring arrangement comprising at least one compression spring projecting from an inner side of the housing cover that is configured to be compressed in the direction of an insertion axis.
8. The test system according to claim 7, wherein the tape cassette can be inserted into the test device in a uni-axial motion in the direction of the insertion axis.
9. The test system according to claim 7, wherein the spring arrangement can be actuated by closing the housing cover of the test device.
10. The test system according to claim 9, wherein the at least one compression spring projecting from the inner side of the housing cover of the test device is supported on an outer surface of the inserted tape cassette when the housing cover is closed.
11. The test system according to claim 7, wherein the spring arrangement further comprises at least one pressure spring that can be deflected crosswise to the insertion axis to make a clamp connection on an outer surface of the tape cassette.
12. The test system according to claim 11, wherein the at least one pressure spring comprises a leaf spring and is pretensioned by a sloping face on the outer surface of the tape cassette.
13. The test system according to claim 7, wherein the inserted tape cassette is spring-loaded by the spring arrangement at least two spaced apart support points.
14. The test system according to claim 8, wherein the measuring unit engages into a free space of the tape cassette when the tape cassette is inserted into the test device in the direction of the insertion axis.
15. The test system according to claim 1, wherein the measuring unit comprises an optical measuring unit formed by a reflection-photometric measuring head mounted on the platform where the optical path of the measuring head runs crosswise to the direction of tape transport of the tape cassette located in the measuring position.
16. The test system according to claim 1, wherein the tape cassette can be connected to the tape drive of the test device by means of a coupling of the rotary drive pin, and wherein the coupling has form-fit elements that upon insertion of the tape cassette can be brought into a rotationally locked engagement position with one another by a yielding movement.
17. A tape cassette comprising a supply spool and a take-up spool and a tape guide for the defined transport of an analytical test tape between the supply spool and the take-up spool, the tape cassette being designed as a disposable for a test system according to claim 1.
18. A tape cassette comprising a supply spool and a take-up spool and a tape guide for the defined transport of an analytical test tape between the supply spool and the take-up spool, the tape cassette being designed as a disposable for a test system according to claim 7.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The following detailed description of the embodiments of the present invention can be best understood when read in conjunction with the following drawings, where like structure is indicated with like reference numerals and in which:
(2)
(3)
(4)
(5)
(6) In order that the present invention may be more readily understood, reference is made to the following detailed descriptions and examples, which are intended to illustrate the present invention, but not limit the scope thereof.
DETAILED DESCRIPTION OF EMBODIMENTS OF THE PRESENT INVENTION
(7) The following descriptions of the embodiments are merely exemplary in nature and are in no way intended to limit the present invention or its application or uses. Embodiments of the present invention may be set forth in the context of an optical measurement system, but should be understood to be applicable to other measurement systems, such as electrochemical, with appropriate system-specific modifications as will be understood and appreciated by those of ordinary skill in the art in view of the disclosure herein.
(8) The blood sugar test device 10 shown in the drawing enables, in the form of a hand-held device, a tape cassette 12 to be inserted as an analytical consumable in order to carry out a plurality of self-tests using blood samples collected locally by the patients themselves.
(9)
(10) The spring arrangement 26 comprises a cover spring 28 which, in the form of a ring structure projecting from the inner side, is punched out of sheet material and pre-bent. The cover 14 hinged on a hinge 30 can be swung towards an inserted tape cassette 12 such that the cover spring 28 exerts a spring force onto the tape cassette which is directed towards the platform 20. On the platform 20 a rotary drive pin 32 of a tape drive that is axially spring-loaded by coil springs 31 can be engaged with the tape cassette. Test tape material can be transported by the tape drive into the area of a housing opening 34 in order to carry out a glucose test there after blood fluid has been applied. Details of the test procedure are for example known from EP-A 1878379 the disclosure of which is hereby incorporated by reference herein in its entirety.
(11)
(12) As a central element in the test system, the platform 20 can incorporate all functional parts to ensure the essential device functions and thus become a central assembly. Then all functions can be expediently independently tested on this central assembly during the course of device manufacture. All components necessary for the measuring function of the measuring unit 22 can be assembled on the platform 20 so that the measuring function can be checked independently of a mounting in the device housing 16. Furthermore, changes in the design of, for example, the device housing 16 do not necessarily have to be accompanied by a geometric change in the platform 20 and the functional parts assembled thereon.
(13) A plurality of upward-projecting plastic supports 40 are molded onto the platform 20 to support the tape cassette 12 in a tilt-free manner. In the illustrated embodiment, three such supports 40 are provided, which span a positioning plane in a geometrically unequivocal manner. It is locked in this plane by means of two pins 42, 44 which engage in openings of the tape cassette 12. In this embodiment as elucidated in more detail below, two pressure springs 46 in the form of U-shaped leaf springs of the spring arrangement 26 ensure a clamping connection in the intended end position.
(14)
(15) In order to advance the test tape 50, the hub 64 of the take-up spool 54 is connected with the drive pin 32 in a rotationally locked manner. A pressure spring 66 supported on the cover side on the cassette housing 48 acts in this connection against the drive pin spring 31.
(16) An oblong hole 68 and a round hole 70 for plugging onto the pins 42, 44 of the platform 20 are provided as further positioning elements in the cassette housing 48. When the tape cassette is placed thereon the pins with their tapered tip firstly ensure a large degree of play whereas in the area of the cylindrical base of the pin only a reduced air gap still remains free. Two sloping faces 72 for the pressure springs 46 are formed on the cassette housing to eliminate this remaining clearance.
(17) As shown in
(18) The supports 40, 42 define the positioning plane and thus reduce three of the six possible degrees of freedom for movement potential of the tape cassette 12. The combination of pin 44 and round hole 70 reduces two further degrees of freedom. The remaining rotational degree of freedom is prevented by the pin 42 in conjunction with the oblong hole 68.
(19) In order to avoid an initial jamming during insertion, the positioning element pairs 44, 70 and 42, 68 allow a displacement play of about 1 mm in the cassette longitudinal direction. This displacement play is determined by the difference in diameters between the round hole 70 and pin 44 while the oblong hole 68 has a somewhat larger hole length. In order to ensure a reproducible end position, the pressure springs 46 which run up against the bevels 72 ensure a clamping tangential engagement of the pin 44 at its base. In this connection the drive pin 32 has sufficient additional transverse play and the frontal drivers make a rotationally fixed form fit with the hub 64 under the force of the springs 31, 66.
(20) In the inserted end position or measuring position, the optical path of the measuring head 22 runs at right angles to the direction of tape transport of the tape cassette and a reproducible detection of the test field is ensured by the very precise positioning.
(21) As already mentioned, the take-up spool 54 forms a form-fitting coupling with the drive pin 32 when the cassette 12 is inserted. Generally it is advantageous when the driving side (input) and the driven side (output) of the coupling each have elements which, on the one hand, enable the two sides to be centered relative to one another (coaxial alignment) and, on the other hand, translate a rotational movement of the input side into a rotational movement of the output side. In this connection a rotationally locked connection can be ensured by form-fit elements which are able to generate a form-fit with their respective counterpart. In this process an element of the input side engages into a gap between two elements of the output side. When the cassette is inserted, the form-fit elements may not stand tooth to gap but rather tooth to tooth. This orientation of the elements of the input and output side of the form-fit coupling would hold up or block the insertion process in such a manner that the cassette would not reach the desired end position in the device. Consequently the user could not put the device into operation without an additional remedy. In order to avoid this, one of the form-fit elements is designed to yield. In the illustrated embodiment the yielding element is a part of the device 10 in the form of a driver 32. The selected yielding movement is axial. The yielding element is axially spring loaded by means of the drive spring 31 configured, for example, as a cylindrical spring.
(22) Other embodiments for this function are conceivable irrespective of the selected embodiment example. The yielding element could also be part of the cassette (e.g. as a part within the hub 64). The yielding movement could take place radially or be rotatively by forced twisting of the form-fit elements during the insertion process so that the form-fit elements twist from the position tooth to tooth into the position tooth to gap. The yielding element can be a separate component (with an associated spring) as in the present case but it can also be a part of the input or also output side such that by design and/or choice of material a yielding during insertion as well as the transmission of torque during operation can take place.
(23) In order to remove a used tape cassette 12, the user only has to open the housing cover 14 in order to thus trigger an automatic lifting of the cassette by the pre-tensioned springs 31, 66 and 46. The interaction of the springs ensures that the cassette is lifted in parallel at two spaced-apart support points thus avoiding wedging in the cylindrical area of the positioning pins 42, 44. Subsequently it is possible to allow the cassette 12 to fall out of the cassette compartment 18 when the cover 14 points downwards solely under the force of gravity without additional application of force.
(24) The features disclosed in the above description, the claims and the drawings may be important both individually and in any combination with one another for implementing the invention in its various embodiments.
(25) It is noted that terms like preferably, commonly, and typically are not utilized herein to limit the scope of the claimed invention or to imply that certain features are critical, essential, or even important to the structure or function of the claimed invention. Rather, these terms are merely intended to highlight alternative or additional features that may or may not be utilized in a particular embodiment of the present invention.
(26) For the purposes of describing and defining the present invention it is noted that the term substantially is utilized herein to represent the inherent degree of uncertainty that may be attributed to any quantitative comparison, value, measurement, or other representation. The term substantially is also utilized herein to represent the degree by which a quantitative representation may vary from a stated reference without resulting in a change in the basic function of the subject matter at issue.
(27) Having described the present invention in detail and by reference to specific embodiments thereof, it will be apparent that modification and variations are possible without departing from the scope of the present invention defined in the appended claims. More specifically, although some aspects of the present invention are identified herein as preferred or particularly advantageous, it is contemplated that the present invention is not necessarily limited to these preferred aspects of the present invention.