Front part for support structure for CPR
10292900 · 2019-05-21
Assignee
Inventors
Cpc classification
A61H31/00
HUMAN NECESSITIES
International classification
Abstract
An embodiment of the support structure includes a back plate, a central part adapted to recite an automatic compression/decompression unit, and a front includes two legs coupled between the central part and the back plate. The support structure is arranged to automatically compress or decompress a patient's chest when the front part is attached to the back plate and when the compression/decompression unit is received in the central part.
Claims
1. A method of assembling a support structure for performing cardiopulmonary resuscitation, the method comprising: positioning a back plate of the support structure behind a back of a patient, wherein a first side of the back plate comprises a shaft that is horizontally-disposed; positioning a front part of the support structure around a chest of the patient, wherein the front part comprises a central part, a first leg extending from the central part, and a second leg extending from the central part, wherein the first leg comprises a latch and a latch release that is offset from the latch along a length of the first leg, and wherein the central part comprises an opening configured to receive a compression member of a removable treatment unit; positioning an end of the first leg over the shaft on the first side of the back plate such that the shaft on the first side of the back plate is received within an opening in the end of the first leg; pressing the end of the first leg against the shaft on the first side of the back plate such that the latch engages the shaft on the first side of the back plate, wherein pressing the end of the first leg against the shaft causes the latch to at least partially surround the shaft on the first side of the back plate and removably secure the first leg to the shaft on the first side of the back plate; and coupling the removable treatment unit to the central part.
2. The method of claim 1, wherein attaching the first leg to the shaft on the first side of the back plate comprises removably attaching the first leg to the shaft on the first side of the back plate.
3. The method of claim 1, wherein attaching the first leg to the shaft on the first side of the back plate comprises snap locking the end of the first leg to the shaft on the first side of the back plate.
4. The method of claim 1, further comprising: positioning an end of the second leg above a second side of the back plate; and attaching the second leg to the second side of the back plate.
5. The method of claim 4, wherein attaching the second leg to the second side of the back plate comprises attaching the second leg to the second side of the back plate using a second latch coupled to an end of the second leg.
6. The method of claim 1, wherein the back plate is a curved back plate having a concave surface, and wherein positioning the back plate behind the back of the patient comprises positioning the back plate behind the back of the patient such that the concave surface faces the back of the patient.
7. The method of claim 1, wherein the removable treatment unit is configured to run and control compression of a chest cavity of the patient, and wherein coupling the removable treatment unit to the central part comprises inserting at least part of an outer housing of the removable treatment unit into the opening in the central part.
8. The method of claim 1, wherein coupling the removable treatment unit to the central part comprises coupling the removable treatment unit to the central part after attaching the first leg to the shaft on the first side of the back plate.
9. The method of claim 8, wherein the removable treatment unit comprises an electronic power-driven treatment unit.
10. The method of claim 8, wherein coupling the removable treatment unit to the central part comprises adjusting a position of a compression pad of the removable treatment unit using an adjustment member that is part of the removable treatment unit.
11. A method of assembling a support structure for performing cardiopulmonary resuscitation, wherein the support structure comprises a back plate for positioning behind a back of a patient and a front part for positioning around a chest of the patient, wherein a first side of the back plate comprises a shaft that is horizontally-disposed, wherein the front part comprises a first leg, a second leg, and a central part, wherein the first leg comprises a latch and a latch release that is offset from the latch along a length of the first leg, and wherein the central part comprises an opening configured to receive a compression member of a removable treatment unit, the method comprising: positioning an end of the first leg over the shaft on the first side of the back plate such that the shaft on the first side of the back plate is received within an opening in the end of the first leg; pressing the end of the first leg against the shaft on the first side of the back plate such that the latch engages the shaft on the first side of the back plate, wherein pressing the end of the first leg against the shaft causes the latch to at least partially surround the shaft on the first side of the back plate and removably secure the first leg to the shaft on the first side of the back plate; and coupling the removable treatment unit to the central part, wherein an outer housing of the removable treatment unit houses a control unit configured to run and control compression of a chest cavity of the patient, wherein the removable treatment unit comprises a compression member that is mechanically coupled to the outer housing, and wherein coupling the removable treatment unit to the central part comprises receiving the compression member through the opening in the central part.
12. The method of claim 11, further comprising attaching the second leg of the front part to a second side of the back plate.
13. The method of claim 11, wherein the removable treatment unit comprises an electronic power-driven treatment unit.
14. A method of assembling a support structure for performing cardiopulmonary resuscitation, wherein the support structure comprises a back plate for positioning behind a back of a patient and a front part for positioning around a chest of the patient, wherein a first side of the back plate comprises a shaft that is horizontally-disposed, wherein the front part comprises a first leg, a second leg, and a central part, wherein the first leg comprises a first latch and a latch release that is offset from the first latch along a length of the first leg, wherein the second leg comprises a second latch, and wherein the central part comprises an opening configured to receive a compression member of a removable treatment unit, the method comprising: positioning an end of the first leg over the shaft on the first side of the back plate such that the shaft on the first side of the back plate is received within an opening in the end of the first leg; pressing the end of the first leg against the shaft on the first side of the back plate such that the first latch engages the shaft on the first side of the back plate, wherein pressing the end of the first leg against the shaft causes the first latch to at least partially surround the shaft on the first side of the back plate and removably secure the first leg to the shaft on the first side of the back plate; and attaching the second leg of the front part to a second side of the back plate using the second self-latching latch.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The present invention will now be described with reference to the accompanying figures in which:
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DETAILED DESCRIPTION
(21) The present invention will now be described in more detail with reference to the accompanying figures.
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(23) An embodiment of a back plate 100 is schematically shown in
(24) In an embodiment of the invention, the legs 210, 220 of the front part 200 are pivotably or turnably attached to the central part 205 of the front part 200 by means of a hinge 230, 240 or the like, confer
(25) In one embodiment of the invention, a first end 212, 222 of the legs 210, 220 are pivotably arranged at the hinges 230, 240 in such a way that the legs 210, 220 resiliently pivot or turn due to a resilient member 232, 242 of the hinges 230, 240. In an embodiment of the invention, the resilient member 232, 242 is comprised in the inside of the hinge 230, 240 and comprises a torsion spring, cf.
(26) In an embodiment of the invention, the front part 200 of the support structure 10 is arranged in such a way that the second end 214 of the leg 210 abut against the second end 224 of the leg 220 when the legs 210, 220 are in their minimum positions, i.e. when the support structure 10 is in its folded position. Due to this arrangement of the folded position, the durability of the support structure 10 is increased since the ability of the legs 210, 220 to stand up to an external force is increased. Further, this folded arrangement also protects a possible comprised treatment unit 300.
(27) In one embodiment of the invention, the maximum positions of the second ends 214, 224 of the legs 210, 220 are controlled by means of a stop means provided at the hinge 230, 240, e.g. by means of heels arranged at the first ends 212, 224 of the legs 210, 220 and at the axis of the hinge 230, 240, which heels will stop the legs 210, 220 from turning further apart.
(28) In an embodiment of the invention, the hinge 230, 240 is arranged as a through shaft passing through the first end 212, 222 of the leg 210, 220. The through shaft as well as the first ends 212, 222 is provided with heels arranged to stop the turning of the legs 210, 220.
(29) In
(30) An embodiment of a first end 212, 222 of a leg 210, 220 is also shown in
(31) In
(32) In another embodiment of the invention, the hinge 230, 240 is configured of two shafts, wherein a first shaft having a heel is arranged at the first end 212, 222 of the leg 210, 220 and second shaft having a heel is arranged at the central part 205 of the front part 200. Further, when the leg 210, 220 is mounted on the central part 205 of the front part 200, the first and second shaft will be mounted to each other to form the hinge 230, 240 in such a way that the heels will control the maximum position of the leg 210, 220.
(33) In
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(35) In this embodiment, the first shaft 216, 226 is pivotably attached to the first shaft supporting structure 217, 227, which is rigidly attached to the first end 212, 222 of the leg 210, 220. Further, the first shaft 216, 226 is rigidly attached to the central part 205 of the front part 200 by means of a pin 219, 229 or the like. However, the first shaft 216, 226 can also be rigidly attached to the central part 205 by means of a groove or a recess (not shown) in the first shaft 216, 226 and a rib or a protrusion (not shown) in the surface of the central part 205 facing the shaft 216, 227. The second shaft 234, 244 is rigidly attached to the second shaft supporting structure 238, 248, which is pivotably attached to the first end 212, 222 of the leg 210, 220. Further, the second shaft 234, 244 is pivotably attached to the central part 205 of the front part 200. Furthermore, the first 218, 228 and second 236, 246 heels are arranged in such a way that they abut against each other when the leg 210, 220 has turned to its maximum position. Heels can also be arranged to abut against each other when the leg 210, 220 has turned to its minimum position. That is, the heels are arranged in such a way that they delimit the turning of the legs 210, 220.
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(37) Further, the hinge 230, 240 is configured in such a way that the maximum position of the legs 210, 220, i.e. the maximum distance between the second ends 214, 224 of the legs 210, 220, corresponds or approximately corresponds to the distance between the shaft-like members 130, 140 of the back plate 100, cf.
(38) As schematically shown in
(39) When fastening or securing the legs 210, 220 of the front plate 200 to the back plate 100, the shaft-like member 130, 140 will exert a force on a heel 286 of a claw-like member 280 of the second end 214, 224 of the leg 210, 220, as illustrated in
(40) In another embodiment of the invention, the pin 288 is arranged to fall down into a hole or recess 281 of the claw-like member 280 when the hook 284 totally or partly surrounds the shaft-like member 130, 140, cf.
(41) Further, the support structure 10 comprises a disengagement member 290, 292, as schematically illustrated in
(42) As illustrated in the
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(44) In an embodiment of the invention, the arm fastening means 250 is arranged at the front part 200 and more specifically an arm fastening means 250 is arranged at each leg 210, 220. In one embodiment of the invention, the arm fastening means 250 is arranged at the legs 210, 220 at a distance approximately corresponding to the length of a forearm from the second end 214, 224. Further, to enable quick and simple fastening and unfastening of the patient's arms, the arm fastening means 250 is configured as straps 250 manufactured of Velcro tape. But another suitable fastening means 250 can of course also be used.
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(46) The compression/decompression unit 300 is further arranged to provide a compression of the chest or sternum of the patient. In an embodiment of the invention, the treatment unit 300 is arranged to provide compression having a depth in the range of 20-90 millimeters, preferably in the range of 35-52 millimeters.
(47) Furthermore, an embodiment of the invention comprises a compression pad 330 which is attachable to the chest, for example a compression pad 330 in the shape of a vacuum cup or a pad having an adhesive layer, the compression/decompression unit 300 can then also be arranged to provide decompression. That is the treatment unit 300 is able to expand the patient's chest to improve induced ventilation and blood circulation. In such an embodiment, the treatment unit 300 is configured to provide decompression having a height in the range of 0-50 millimeters, preferably in the range of 10-25 millimeters.
(48) An embodiment of the treatment unit 300 is further arranged to provide compression and/or decompression having a frequency of approximately 100 compressions and/or decompressions per minute.
(49) Due to the increased stability and the improved the fixation of the patient provided by the support structure 10 according to the invention, increased treatment accuracy is accomplished.
(50) The compression force is in an embodiment of the invention in the range of 350-700 Newton, preferably approximately 500-600 Newton. The decompression force is in the range of 100-450 Newton depending on the kind of pad 330 used. That is, the need decompression force depends on for example if a vacuum cup or a pad having an adhesive layer is used but it also depends on the type of vacuum cup or adhesive layer. In an embodiment of the invention the decompression force is approximately 410 Newton but in another embodiment a decompression force in the range of 100-150 Newton is used.
(51) The support structure 10 according to the invention is preferably manufactured of a lightweight material whereby a low weight of the support structure 10 is achieved. However, the material should be rigid enough to provide a support structure 10 that is durable, hard-wearing and stable. In some embodiments of the invention it is also desirable that the material of the support structure 10 is electrically insulating. To decrease the weight further, the support structure 10 can be provided with a selectable number of cavities or recesses.
(52) In an embodiment of the support structure 10 according to the invention, the front part 200 are manufactured of a material comprising glass fibre and epoxy and has a core of porous PVC (polyvinyl chloride). The back plate 100 is in this embodiment manufactured of material comprising PUR (polyurethane) and has a core of porous PVC. In an embodiment of the invention comprising a treatment unit 300, the housing of the treatment unit is manufactured of PUR.
(53) An embodiment of the support structure 10 comprising a compression and/or decompression unit 300 has a weight less than 6.5 kilogram. In an embodiment, the diametrical dimension in folded position is approximately 320640230 millimeters (widthheightdepth) and in unfolded position approximately 500538228 millimeters (widthheightdepth).
(54) The present invention has been described by means of exemplifying embodiments. However, as understood by the person skilled in the art modifications can be made without departing from the scope of the present invention.