1. Technical Field
The invention relates in general to the fields of emergency transport devices and, more particularly, to a device for emergency transport of pediatric patients adapted to engage rails of a conventional stretcher, and accessories therefor.
2. Description of the Related Art
Medical personnel, such as emergency medical technicians, often transport injured children to and between medical facilities. During transport, medical personnel may be required to stabilize injured children using either medical equipment such as EKG's or Intravenous Lines or via hands-on procedures such as cardiopulmonary resuscitation. To avoid further injuring these children, medical personnel must transport them using safe equipment. Consequently, medical personnel need both a safe way to transport children and the flexibility of performing a variety of medical procedures, as needed.
In addition to those needs, medical personnel may also transport individuals ranging in age from a newborn baby to an elderly individual. To accommodate such a diverse group, medical personnel require the ability to effectively secure both adults and children during transport. It is, however, the ability to safely and effectively transport small children that causes the greatest challenge to the medical professional. For example, a seven-pound, eighteen-inch newborn baby differs significantly from a thirty-pound, forty-inch child. As a result, the transport equipment must accommodate children of varying size. Because this equipment may be used when the lives of these individuals are failing, it should operate efficiently. In addition, space limitations in an ambulance, for example, demand easy storage for this equipment. Therefore, medical personnel need equipment that adjusts to children of varying size, operates efficiently, and stores easily.
In response to some of the above-listed needs, medical personnel currently transport children by securing them via various means to a stretcher. One method is accomplished by securing the child directly to the stretcher via use of the stretcher's straps (using the same method they would use to secure an adult). This method uses a typical stretcher that operates efficiently and stores easily. Yet, typical or conventional stretchers do not transport children safely. Usually medical personnel cannot apply enough tension to the straps to safely restrain a child. In addition, the location of the straps may impair medical personnel from performing life-saving procedures. Additionally, since a small child may be still somewhat mobile, they are at risk of incurring additional injuries during the transport. As a consequence, strapping a child directly to a stretcher does not adequately meet the needs of medical personnel.
Similarly, strapping a mother who holds a child to a stretcher does not satisfy the above-mentioned needs. Though this technique uses equipment that operates efficiently and stores easily, it hinders safe transport. If the ambulance stops suddenly and the mother releases the child, the child may “fly forward” in the ambulance causing further injury. If the mother is successful in “holding on” to her child, the child can still be injured, if the mother's weight is thrown forward crushing the child against the seatbelt. In addition, the technique of “holding the child” accommodates children of varying size only to the extent that the mother can hold them. Finally, because the mother's hands cover a portion of the child, she impairs the administration of medical treatment on that area. Thus, strapping a mother with child fails to meet the needs of medical personnel.
Further, strapping a typical car seat that holds a child to a stretcher also fails to meet the needs of medical personnel. Though the car seat can adapt to children of varying size, this method impairs safe transport. Since the seat belts in an automobile differ from the straps on a stretcher, and the shape of a car seat differs from the shape of a stretcher, the car seat does not attach securely to the stretcher. This lack of security threatens safety by creating the potential for the car seat to shift or come loose during transport. In addition, the car seat impairs the administration of medical procedures. For example, a paramedic may need to administer cardiopulmonary resuscitation (CPR). Since a child in the car seat cannot lie flat, the paramedic must remove the child from the car seat and begin compressions with the child in his arms. By removing the child from the seat, medical personnel threaten the safety of the child.
In response to the failures of the above-mentioned techniques for transporting injured children, alternative types of pediatric restraining devices have been developed. For example, one device secures to a stretcher using straps. It includes a bendable support mattress secured in a given angular position by leg supports. Medical personnel secure the injured child to the support mattress after this device is attached to the stretcher. While this device provides some improvement, it impairs administration of CPR. In addition, connecting this device to a stretcher using straps, demands that medical personnel spend additional time securing the device. Although this device includes a restraining feature that confines the child to the device, this feature does not adjust to children of varying size.
Another pediatric device provides a hard frame with rotating side and leg panels. It attaches to a stretcher with straps and stores in a collapsed position. Though the collapsibility feature enables easy storage, this pediatric device is difficult to attach to the stretcher. Medical personnel sacrifice time in securing the device to the stretcher. Multiple moving panels increase the risk, not only of increased “pinch points” for the patient, but also of mistakes made by personnel during “assembly.” Finally, using straps to secure the device creates the potential that the device may move during transport. This potential movement can hinder performance of lifesaving medical procedures.
In sum, previous pediatric emergency transport devices do not transport safely, enable performance of medical procedures, operate efficiently, adapt to children of varying size, and store easily. Therefore, they do not satisfy all of the needs of medical personnel. When responding to a call, medical personnel should be equipped adequately to provide the medical attention necessary to stabilize and transport any type of patient, including children. They must gather the equipment needed and provide the required medical treatment, including CPR, in a limited amount of time. Thus, there is a need for a device for the emergency transport of pediatric patients that satisfies all of the above-mentioned needs.
Yet further, when a child is critically injured, (i.e. a head or neck injury, or typically any injury where a child has lost consciousness and there is the potential that a spinal injury may have occurred) emergency medical technicians must immobilize the patient, often securing the neck first with a cervical collar, and then the entire body to a rigid surface (typically a backboard) to prevent movement that could cause further injury to the neck or spinal column. Currently, such backboards are then secured onto a stretcher via straps, and the child is transported in an ambulance (or depending on the severity of injury, airlifted via Life-Flight helicopter) to an emergency care facility. Treatment is provided en-route to the facility by the on-board EMT or paramedic. This procedure, while effective, can still be improved upon.
Additionally, to treat a pediatric patient, medical technicians must use pediatric supplies (i.e. Pulse-Ox equipment, IV catheters, intubation tubes, etc.) on a pediatric patient. Unless the vehicle dispatched is from a child-specific emergency facility, these supplies are often mixed in with adult supplies, and precious life-saving seconds can be wasted, trying to locate them during a trauma call. Additionally, medical technicians today must rely on either the parent or doctor to provide accurate weight information prior to the transport, or the use of a Broselow tape if one is available, to estimate the weight of a child in order to administer medications at the proper dosages. Lack of accurate weight information may lead an emergency technician to under or over-medicate the pediatric patient. Therefore, while an emergency technician who secures a pediatric patient to a backboard may now have the ability to secure a pediatric patient safely for transport, such technician does not have an efficient means of accessing pediatric supplies for treatment en-route or obtaining accurate weight information to properly administer medications.
An additional challenge to transporting a pediatric patient is comfort and sanitation. A child being transported in an emergency situation is often frightened and may often have an injury that causes the release of bodily fluids. Known devices generally consist of a single pad, which, while it may provide some comfort to the child, is typically not designed to be very soft and may not be designed to resist the transfer of bodily fluids. Therefore, there is a need in the art for a device which enables additional cushion to be placed between the child and the device to provide an extra measure of comfort to a child in an already stressful situation, as well as to resist the transfer of any bodily fluids that may be secreted. Preferably, such additional cushion will not interfere with the use of the device's existing harness restraint system and may be easily removed by the emergency technician, without removing the restraints from the child, should life saving measures be required en-route.
Beyond that which has been previously mentioned, certain circumstances still require additional patient care and handling. According to Harvard Medical School Family Health Guide, a newborn's neck has not yet developed the strength to hold up its head, and will likely not do so for the next 4 months. Additionally at this stage, an infant's head is disproportionately larger than the rest of their body, therefore extra support of an infant's head and neck can be critical for safe transport. Consequently, there is a need in the art for a device that includes additional cradling and support to stabilize an infant's head during transport.
Finally, restoring a pediatric patient's temperature when it has been stressed beyond normal limits can mean the difference between life or death. Therefore, there is a need in the art for a patient transport device that enables a medical technician to begin treating a child with a severe temperature imbalance while en-route to a hospital.
The present invention satisfies the above-mentioned needs in a device for the emergency transport of pediatric patients that rapidly secures to the side rails of the various conventional ambulance stretchers. The device effectively aids in the administration of medical procedures on injured children. To accomplish this, the device may include a data center that measures individual information about a child (e.g. weight and heart rate). Using the data center medical personnel can prescribe the appropriate medicine dosage and evaluate the child's stability without additional equipment. The rigidity of the frame also reduces equipment needed for the administration of cardiopulmonary resuscitation (CPR). Instead of using a backboard, medical personnel can administer CPR to a child without removing them from the device. Consequently, the invention reduces the additional equipment needed in administering medical procedures.
A further advantage includes increasing the operating efficiency of medical personnel. The subject device of the present invention includes multiple single-action components that reduce the time expended in using the device. The use of a snap-on/quick-release, single-action clamp mechanism reduces the time needed to secure the device to a stretcher, allowing medical personnel to focus more on the injured child. In addition, the multi-purpose clamp mechanism of the device of the present invention enables the device to attach to objects of varying shapes and widths providing increased utility. Therefore, although multiple stretcher devices are currently in use in the marketplace, medical personnel need carry only one pediatric transport device to ensure coverage of all sizes of children. The device of the present invention increases efficiency by reducing the equipment needed for transport and the time associated with utilizing that equipment.
This present invention also presents medical personnel with a number of other advantages, including easy storage of the device of the present invention. The device of the present invention collapses enabling it to be stored in an alcove in the ambulance or mounted on the ambulance wall. In addition to easy storage, the device of the present invention includes a uniquely designed restraint that reduces the probability of accidental release. The advantages of this restraint lie in its increasing safety by avoiding accidental release even when confining children of various sizes. Many other advantages and useful techniques for the device of the present invention will become apparent to those skilled in the art.
Generally described, the present invention is a device for the emergency transport of pediatric patients that can be used with a stretcher with a rail to transport a patient. In one embodiment, the device of the present invention includes a frame adapted to receive a patient and a snap-on/quick release clamp mechanism connected to the frame. The device's clamp mechanism is adaptable to connect to stretchers of various widths and sizes. The device of the present invention may also include a hinge assembly connected to the two frame members. The hinge assembly permits relative rotation of the two frame members. More specifically, the hinge assembly may include an actuation device that selectively adjusts the relative rotation of the frame members.
According to one aspect of the invention, the device includes a restraining belt assembly with a single-action release that connects to both frame members. The restraining belt assembly secures the patient to the stretcher when engaged. More specifically, the restraining belt assembly may include two belts each of which can be released easily and couples to the first frame member at one end and attaches to a common connector at the other end. Each belt may include a length adjustment. The first frame member may also include first and second sets of openings. The belts may be coupled to the first set of openings in response to the patient being placed in the device. The restraining belt assembly, hinge assembly and clamp may also include a release to disengage by a single action.
The clamp mechanism may include a quick-release universal grasping device with a groove that couples to the rail with either a circular or rectangular shape. The clamp mechanism may also include a housing member, a cam, and a locking device. The cam extends close to the grasping device and can connect to the housing member through a spring. When the grasping device contacts the cam, it moves within the housing member. The locking device places the cam in a lock position when engaged. The locking device may include a locking ball detent that can connect to a portion of the cam and a release that can connect to the locking ball detent. When the release is pressed, it disconnects the locking ball detent from the cam, which releases the cam from the lock position. The clamp may adapt to accommodate stretchers of varying width.
In an alternative embodiment of the present invention, the device may comprise a two-part clamp mechanism where one part functions as an actuating and retaining member and the other functions as a receiving member. One member remains fixed on the stretcher while the other member remains attached to the transport device, further minimizing the possibility of user error as device attachment will function as “lock and key.”
The hinge frame may couple to a first part of the first frame member and a first part of the second frame member. The actuation device may include a lever that connects to a second part of the first member and a locking pin that selectively engages the hinge frame in a plurality of positions. A cable connects the locking pin to the lever, such that the locking pin disengages the openings when the lever is actuated.
The device of the present invention may also include a data acquisition device that measures the weight of a person. In addition, the device of the present invention may include a handle that connects to a frame member, storage devices that connect to a frame member, and a pad that extends longitudinally over both frame members. The device of the present invention may also include second, third and fourth clamps where the second clamp is positioned proximate to the first clamp. The third and fourth clamps diametrically oppose the first and second clamps, respectively. The device of the present invention may also include a second hinge assembly that permits relative rotation of a second side of the frame members. The second hinge assembly includes a second hinge frame diametrically opposed from the first hinge frame. A second cable connects the second locking pin to the lever, which enables the second locking pin to engage the second hinge frame in a plurality of positions when the lever is actuated.
The device of the present invention may also provide a quick-release universal clamp that couples to objects having either a circular or rectangular shape. The clamp includes a housing member, a grasping device with a groove to receive the object, and a cam surrounding a portion of the grasping device. By contacting the cam when coupled to the object, the grasping device displaces the cam within the housing member. The universal clamp may attach to the device of the present invention.
In a preferred embodiment of the present invention, the transport device is able to accept or receive a commercially available, off-the-shelf pediatric backboard for attachment. Within the scope of the present invention, the device may also be configured to accept an adult backboard. The frame of the device is preferably configured to have a ledge within the interior of the device, on which the backboard may rest. In an alternative implementation, such a backboard is placed on a channel or set of brackets within the device, upon which the backboard will sit. Other alternative implementations may apply. Cantilever clamps or any other locking mechanism, such as a locking pin, or slide-in pin, etc. known to those skilled in the art may be used to secure the backboard tightly in place within or on the pediatric transport device. Preferably, these clamps or other such locking mechanisms, when not in use, are designed to lock into place out of the way of the central padded portion of the transport device.
The present invention also provides for the incorporation of a single-use, disposable cushion of similar dimensions as the interior of the pediatric transport device to be placed between the child and the receiving surface of the device. The cushion provides comfort and acts as a sterile barrier during the transport. Preferably, the cushion includes either a single compressible material or several layers of such material, as will be appreciated by those skilled in the art. In a preferred embodiment, the cushion is made of an absorbent material, which absorbs bodily fluids. In an alternative embodiment, the cushion is made of a non-absorbent material, which impedes the transfer of bodily fluids. In both of the above embodiments, the cushion acts as a barrier to resist the transfer of bodily fluids and germs from the patient to the device. Preferably, the cushion includes a number of pre-made cuts and/or slit locations matching the locations required to pass through the shoulder and leg harness restraints of the device. In one embodiment, the cushion is perforated vertically down the center from top to bottom to allow for rapid removal when life-saving procedures are required or upon completion of an emergency transport.
In addition to a single use disposable cushion, the present invention allows for a multiple use pad of the same dimensions as the interior of the pediatric transport device to function as the receiving surface for the patient. This pad rests between the patient and the frame of the device, provides minimal cushioning and acts as a sanitary barrier against the transfer of bodily fluids.
In an alternative embodiment a relief or indentation will be shaped into the pad at the height of a newborn's head to provide greater head and neck stabilization by cradling the occipital (rear) region, and to minimize uneven distribution of forces to the developing structures of the head.
Another alternative embodiment may include heating and/or cooling thermal elements enclosed within the pad (or along an outer surface of the pad) to enable a medical technician to begin restoring warmth to a child with hypothermia or start cooling a child with a high fever while en-route to a hospital.
While the invention is susceptible to various modifications and alternative forms, specific embodiments have been shown by way of example in the drawings and are described in detail. It should be understood, however, that the description herein of specific embodiments is not intended to limit the invention to the particular forms disclosed. On the contrary, the intention is to cover all modifications, equivalents, and alternatives falling within the spirit and scope of the invention as defined by the appended claims.
Illustrative embodiments of the present invention are described below as they might be employed in a device for emergency transport of pediatric patients. In the interest of conciseness, not all features of an actual implementation are described in this specification. It will of course be appreciated that in the development of any actual embodiment, numerous implementation-specific decisions must be made to achieve the developer's specific goals, such as compliance with system-related, business-related, and law-related constraints. Moreover, it will be appreciated that even if such a development effort might be complex and time-consuming, it would nevertheless be a routine undertaking for one of ordinary skill having the benefit of this disclosure.
The present invention describes a device for emergency transport of pediatric patients that safely and efficiently transports a pediatric patient to a medical facility. The device preferably attaches to a conventional transport device, such as a stretcher. The transport device typically is positioned in the center of the stretcher to maximize stretcher stability although there may be occasions or situations in which it is preferable for the invention to be positioned elsewhere on the stretcher.
The device of the present invention includes a frame that receives the patient. The frame is preferably divided into sections. For example, an upper section of the frame is designed to support the patient from head to waist. Conversely, a lower section is preferably designed to support the patient from waist to feet. These sections preferably are constructed of metal tubing, medical-grade plastic, or some combination of each.
To confine the patient to the transport device, a child restraint in the form of a restraining belt assembly is used. The restraining belt assembly preferably includes two shoulder belts and a leg belt. A waist belt is optionally used to connect into the center of the belt assembly to create a five-point harness in conventional manner. The belts may be formed from nylon, for example. In addition, the two shoulder belts preferably include a horizontal strap that connects them to each other. This strap helps prevent a child from removing an arm from the shoulder belts. Preferably, the shoulder belts connect to the frame using quick-release buckles. The buckles are preferably formed from stainless steel covered with a plastic-like material. In contrast to the shoulder belts, the leg belt preferably attaches directly to the frame. Though the shoulder belts and leg belt connect to the frame, a metal connector joins the other ends of the three belts together. If desired, the metal connector can include a label having a children's cartoon character shown thereupon.
Further, the transport device is designed to accommodate children of various sizes using the restraining belt assembly. The upper section of the frame includes several sets of openings associated with ranges of physical dimensions. After placing a child in the device, medical personnel restrain the child by securing the buckles to the set of openings that best accommodate the child's size. To further accommodate the size of the child, medical personnel may vary the length adjusts included on the shoulder and leg belts from the front of the device, without removing the child from the seat or the seat from the stretcher. The length adjusts themselves may be formed from metal covered in plastic material.
Medical personnel secure a child to the transport device by connecting the buckles to a set of frame openings. Specifically, the buckles are pushed or pressed toward the openings. Each opening contains therein an anchor that is centered within the opening; such anchor is preferably formed from stainless steel. As the buckle approaches the anchor, it contacts a locking plate within the buckle, also preferably formed from stainless steel. The locking plate rotates slightly and then traps the anchor. This action secures the restraining belt assembly to the frame. Hence, it secures the child to the transport device of the present invention. Securing the buckles to the frame above the child's shoulders reduces the chance of accidental release during transport.
Conversely, the single action of pressing a release button and pulling the buckles away releases a child from the transport device. Specifically, pressing the release button rotates the locking plate. As the buckle is pulled away, the anchor clears the locking plate and removes the restraint. Similarly, the single action of attaching the buckle engages the restraining belt assembly. Hence, the restraining belt assembly is considered to be a single action device.
In addition to the restraining belt assembly, the device of the present invention includes a hinge assembly. Such hinge assembly controls the rotation of the upper frame section relative to the lower frame section. The hinge assembly includes a hinge frame and an actuation device. The hinge frame connects the hinge assembly to the frame sections and may be formed from stainless steel. The actuation device controls the movement of the upper section relative to the lower section and includes a cable, lever, and locking pin that selectively locks within the hinge frame. The cable and the lever are preferably formed from braided steel and stainless steel, respectively. Alternatively, the actuation device includes a pressure clamp and ball-ratchet instead of the locking pin.
To operate the hinge assembly, medical personnel squeeze the lever. This action unlocks the locking pin from the hinge frame. With the lever still squeezed, the upper section is manually rotated to a desired angular position. Releasing the lever selectively secures the locking pin in the hinge frame and retains the upper section in the desired position. The single action of releasing the lever engages the hinge assembly. In addition, the single action of squeezing the lever disengages the hinge assembly. Hence, the hinge assembly is also considered to be a single action device.
In some embodiments, the transport device also includes a clamp mechanism with at least one quick-release clamp that attaches to a rail of an object such as a stretcher. Numerous clamps also may be used. The clamp includes a housing member, grasping device, cam and locking device. The grasping device connects the stretcher by receiving its rail. Alternatively, the grasping device may connect the transport device to a wall of an ambulance or any other object having a rail or post. The locking device secures the rail within the grasping device through interaction with the cam. The locking device includes a locking ball detent, pressure clamp, or similar securing device. The clamp components preferably are constructed of stainless steel.
To operate the clamp, medical personnel push the transport device with the grasping device (e.g., clamp) extended towards the rail or handle of the stretcher. As the grasping device contacts the rail, the grasping device pivots and contacts the cam. In response, the cam moves upward in the housing member and creates a spring force. Once the grasping device surrounds the rail, the spring force moves the cam downward in the housing member. Medical personnel then pull up slightly on the device. As they pull up, the cam floats further downward in the housing member. As the cam approaches the locking device, it engages and secures the cam in a locked position. The securing of the cam results in securing the grasping device in a locked position, which secures the clamp and, hence, the transport device to the stretcher.
To release the clamp, medical personnel press a release included within the locking device. This action disengages the locking device from securing the cam. Then, medical personnel pull the transport device away from the rail of the stretcher. As the rail moves within the grasping device, it contacts the cam. The cam moves upward in the housing member creating a spring force. Once the rail clears the grasping device, the cam moves downward in the housing member as the spring force releases. The cam returns to its original position.
To increase efficiency, the clamp includes a width accommodation feature and universality feature. Medical personnel are able to use the width accommodation feature by displacing the clamp relative to the frame. For example, medical personnel adjust the clamp for narrower stretchers by pushing the clamp further inside the frame. The universality feature enables the clamp to attach to rails of various shapes. Because the grasping device includes a universal groove, medical personnel attach the transport device to stretchers with circular rails in the same manner by which they attach them to stretchers with rectangular rails. Thus no additional equipment or training is needed. Alternatively, the universality feature may include other shapes, such as triangular.
In an alternative embodiment of the present invention, the device may comprise a two-part clamp mechanism where one part functions as an actuating and retaining member and the other part functions as a receiving member. In this embodiment, one member remains fixed on the stretcher while the other member remains attached to the transport device. Like the aforementioned clamping mechanism, the two-part clamp mechanism includes a housing member and grasping device or finger; however, in the present embodiment, the grasping device or finger mates with a bar on the receiving member through the simple action of pressing the unit down onto the receiving member. The finger will contact the retaining rod and swing open; the finger will pass the retaining rod and swing closed. To release the clamp, medical personnel will press a spring-loaded push button on the side of the clamp housing. This action (or force) is transferred to an inner face of the finger causing it to rotate open and disengage the bar of the receiving member thereby enabling medical personnel to lift the transport device off the stretcher. A lever or release handle may be incorporated into the device to actuate one or multiple release buttons simultaneously. Usage of such mechanisms will be familiar to those with ordinary skill in this area and, as such, are not described in detail herein.
In a further exemplary embodiment of the present invention, the clamp housing member includes a set of tapered “feet” along its bottom portion to reduce wear on the device of the present invention and to increase its stability when the device is placed on surfaces other than a conventional stretcher. Additionally, the tapered shape of the feet form a passive mechanical guide to accurately provide clearance along the stretcher railing and the stretcher mattress pad, and to quickly locate and capture the bar of the receiving member.
In another embodiment of the present invention, the interior section of the transport device has been adapted to accommodate placement of a commercially available off-the-shelf pediatric backboard within the frame. In an alternative embodiment, the interior section of the transport device has been adapted to accommodate placement of an adult backboard within the frame. Each side of the device frame preferably includes one or more ledges or brackets that extend towards the interior of the transport device just above the level of the pad. The backboard is able to rest on these ledges covering the central padded portion of the transport device. The ledges may be formed of the same material as the frame.
In an alternative embodiment, the transport device includes the two (2) channels defined within either side of the frame, into which the backboard may slide and rest. The transport device preferably includes cantilever clamps, or another such locking mechanism (such as a slide-in pin, locking pin, or the like), to secure the backboard rigidly in place. Preferably, these clamps or other such locking mechanisms, when not in use, are designed to lock into place within the side of the frame when not in use.
In use, medical personnel preferably first secure the patient on a commercially available backboard. Medical personnel are also able to attach the emergency transport device to a stretcher via the single-action clamps described previously. To lock the backboard into the transport device, medical personnel may simply place the backboard within the central portion of the device, either resting on the ledges or within the channels previously described or via a similar implementation. A cantilever clamp or slide in pin or similar locking mechanism is then used to secure the backboard within the frame. One or more clamps may be used to secure the backboard rigidly in place. Usage of cantilever clamps and other such similar locking mechanisms will be familiar to those with ordinary skill in this area and, as such, are not described in detail herein.
A cushion is also provided for one-time use during transport of a pediatric patient to provide a sterile, but comfortable barrier between the patient and the device. In one embodiment, the cushion is made out of two layers of a paper or similar disposable material with a compressible, disposable absorbent material located in-between. Alternatively, the cushion is made out of a single compressible absorbent material. In another alternative embodiment, the cushion is made of a non-absorbent material, which impedes the transfer of bodily fluids. The cushions may either be packaged individually, or may be bound together as a roll, to be torn-apart into separate units as needed.
The cushion is preferably made to conform to the interior dimensions of the pediatric transport device (e.g., the receiving surface of the frame portion of the device) and preferably includes cut-out sections that directly align with the restraining belt anchors on the transport device to accommodate the insertion of the harness restraint buckles above the shoulders of the child as well as a cut-out section that aligns with the fixed restraining belt location between the legs of the child. The cushion preferably also has a perforation running directly down its center from top to bottom to allow it to be quickly and easily “torn-off' should life-saving measures be required. Use of the cushion requires little to no expertise on the part of the medical technician. It is placed on the device after the device is secured to the stretcher. The child is then placed in the device on top of the cushion and the restraining belt assembly is attached directly to the device through the cushion cut-out sections. After use by a single pediatric patient, the cushion is disposed of with all other bio-related material.
In addition to a single use disposable cushion (or instead of utilizing a single use disposable cushion), a pad is provided of the same dimensions as the interior of the pediatric transport device to function as the receiving surface for the patient. This pad rests between the patient and the frame of the device and preferably includes a number of pre-made cuts and/or slit locations matching the locations required to pass through the shoulder and leg harness restraints of the device. As a preferred embodiment, this pad has minimal padding, therefore should a medical technician need to perform life-saving procedures, they may do so directly on the device without removing the pediatric patient from the restraints. In an alternative embodiment, the pad may provide more padding, which would provide more comfort to the pediatric patient. A cover or surface layer provides a means of keeping the pad sanitary and minimizing the transfer of bodily fluids.
In a further exemplary embodiment, a relief (or indentation) may be shaped into the pad proximate a position of a newborn's head to provide additional head support. At this stage of development, a newborn's neck is typically insufficiently developed to support the weight on its own head and some additional head support, beyond that which may be used for a toddler or older child, is recommended. Average stature and head size (i.e., fronto-occipital circumference) are given as functions of age on CDC/NHANES growth charts and may be used to determine a desired size, shape, and location of the relief (or indentation) molded into a given pad. The relief may be a continuous and preformed feature of the pad and may require no additional work on the part of the medical technician to determine the correct placement of the infant to ensure neck and head stability during transport.
The pad may also include heating and/or cooling elements enclosed within the pad itself to enable a medical technician to begin restoring warmth to a child with hypothermia or start cooling a child with a high fever while en-route to a hospital. In one embodiment, the pad comprises a remote controller unit to be connected via wires or tubes to the thermal elements enclosed within the pad (or along a surface of the pad). Heating or cooling is provided by direct electric conversion (such as resistive heating or thermoelectric cooling) or by means of a fluid loop (circulated, phase change, or both). In an alternative preferred embodiment, heating and/or cooling of the enclosed thermal elements is provided via inductive coupling instead of wires or tubes. In both of the above embodiments, restoration of proper body temperature for a pediatric patient begins at a much earlier stage of care than has typically been available.
For the medical technician, operation of either unit requires securing the child in the transport device and then simply selecting between several pre-determined temperature settings. It is important to note these additional capabilities will not inhibit the pad's ability to fold compactly and store within the transport device; nor will they limit the technician's use of an additional cushion to provide comfort to the pediatric patient or interfere with other medical appliances.
2. Description of the Drawings
Referring now to the drawings, in which like numerals indicate like elements throughout several figures,
To remove a child from the device 100, medical personnel press a release button 250. This creates a spring force by compressing the spring 245 and rotates the locking plate 240. While holding the release button 250, they may pull the buckle 206 away from the anchor 235. Because the locking plate 240 has rotated, the anchor 235 can clear the buckle 206. Thus, pulling away releases the anchor 235 from the buckle 206 and removes the restraint from the child. Since the restraint is detached, medical personnel may remove the child causing the belt 205, 210, 215 to fall aside.
Medical personnel can either secure or release the restraining belt assembly 200 with a single action namely pressing the buckle 206 into engagement with respective actions. The single action of connecting the buckle secures a child and engages the restraining belt assembly 200. The single action of pressing the release button 250 releases a child and disengages the restraining belt assembly 200. Because each buckle of the restraining belt assembly 200 engages or disengages with a single action, medical personnel save time. Hence, they may use the device 100 for emergency transport of pediatric patients with greater efficiency.
Practical implementation of this present invention may demand that it include a second hinge assembly also shown in
In addition to controlling the rotation of the section 110, select angular displacements may serve particular purposes.
After locking the clamp 400, medical personnel may release the rail 425 using the single action of pressing the release 440. Medical personnel press the release 440, that releases the cam 415 as the locking ball 435 rolls toward the now displaced locking ball spring 436. As the device 100 is pulled away from the rail 425, the rotation of the fingers 411, 412 forces the cam 415 to compress the spring 430. Once the rail 425 clears the fingers 411, 412, the force from spring 430 moves the cam 415 back down to its original position.
The locking feature of the clamp 400 may securely attach this present invention 100 to a stretcher 105. Alternatively, the clamp 400 may aid in storing the present invention 100. When used for storage, the device 100 for emergency transport of pediatric patients may secure to a rail on the wall of an ambulance, for example using the clamp 400. In addition, the clamp 400 may also efficiently secure a device to objects of various shapes independent of the device 100.
To release clamp mechanism 470 from retaining rod 495, medical personnel will press a spring-loaded push button 472 on a side of clamp mechanism 470. An internal end of spring-loaded push button 472 will push against an internal side of finger 475 (see,
As illustrated in
Also illustrated in
Although a pediatric patient immobilized on a backboard 800 may be secured directly to a stretcher in conventional manner, securing the pediatric patient within the device 100 allows the technician full access to pediatric medical supplies located within the device's storage compartments 500, 505, as well as full access to the device's data acquisition device 600 to obtain accurate information about the child's vital signs en-route. Upon arriving at the destination, the medical technician may choose to unlock the backboard 800 from the device 100 and transfer the child to a stretcher at the facility, so that they may return to active service. To unlock the backboard 800, the medical technician simply pulls up on the outer portion of the clamp 806, which releases the inner portion of the clamp 808 and as a result disengages the locking mechanism securing the backboard 800. The backboard will still be lying on the ledges 700 of the device 100. The technician then lifts the patient still immobilized on the backboard 800 and transfers them as a unit to the waiting stretcher.
The cushion 1200 is preferably made to conform to the exact dimensions of the pad 360 located in the center of the device 100 for emergency transport of pediatric patients. There are preferably a number of first cut-out sections 1205 conforming to the number and dimension and alignment of the orifices 225 located on the pad where the harness restraint buckles 211 are inserted above the shoulders of the pediatric patient. Preferably, there is also a second central cut-out section 1225 located on the lower half of the cushion that conforms to the dimension and alignment of the location where the lower portion of the restraining harness 215 engages with the device 100. Second cut-out section 1225 is preferably T-shaped to allow for quick and easy placement and alignment of the cushion 1200 on the device 100 by the medical technician. The cushion 1200 optionally also has a perforation 1210 running directly down its center from top to bottom to allow it to be quickly and easily “torn-off” should life-saving measures be required.
Use of the cushion 1200 requires little to no expertise on the part of the medical technician. The medical technician either takes an individually packaged cushion or tears a cushion off of a roll comprising multiple cushions. The cushion is placed on the device 100 after it is secured to the stretcher, by grasping the bottom portion of the cushion 1200 and sliding the second cut-out section 1225 around the fixed portion of the restraining harness 215 that passes through the child's legs. The child is then placed in the device 100 on top of the cushion 1200 and the restraining belt assembly is secured over the shoulders of the child by passing the harness restraint buckles 211 through first cut-out sections 1205 of the cushion and locking them directly to the device 100. Any bodily fluids secreted by the child during the transport may be captured by the cushion 1200. Should life-saving measures be required en-route, the medical technician grasps both left and right sides of the cushion 1200 and pulls. The cushion 1200 is designed to tear easily along the perforation 1210, leaving the child directly on the pad 360 where CPR and other life-saving procedures may be performed. Upon transfer of the child to a care facility, the cushion 1200 is disposed of with all other bio-related material.
In
In one embodiment shown in
Each of the devices 100 of the present invention, along with its disposable cushion 1200, provides a more effective, more sanitary, more comfortable and safer device to transport and treat children than conventional devices currently available. It operates efficiently using multiple single-action components. The device 100 also adapts to stretchers of various rail types. The design of the device facilitates the administration of various types of medical procedures, including CPR, with a child in the device. It adapts to children of various size using the restraining belt assembly 200. It facilitates the more effective treatment of a critically injured child immobilized on a backboard, as it ensures rapid access to pediatric supplies and accurate weight measurement. As a whole, medical personnel using any of the embodiments of the device 100 for emergency transport of pediatric patients and its disposable cushion 1200 are able to operate more efficiently and focus primarily on treatment instead of transport.
It will be appreciated by those of ordinary skill in the art having the benefit of this disclosure that numerous variations from the foregoing illustration will be possible without departing from the inventive concept described therein. Accordingly, it is the claims set forth below, and not merely the foregoing illustration, which are intended to define the exclusive rights of the invention.
This application is a continuation-in-part of U.S. patent application Ser. No. 11/117,279 entitled “Improved Pediatric Emergency Transport Device” filed on Apr. 28, 2005, now U.S. Pat. No. 7,281,285, which (1) is a continuation-in-part of U.S. patent application Ser. No. 10/238,754 entitled “Device for Emergency Transport of Pediatric Patients” filed on Sep. 10, 2002, now U.S. Pat. No. 6,898,811, and (2) claims the benefit of priority to (i) U.S. provisional patent application No. 60/566,000 entitled “Emergency Pediatric Transport with Backboard” filed on Apr. 28, 2004 and (ii) U.S. provisional patent application No. 60/662,653 entitled “Emergency Pediatric Transport with Liner” filed on Mar. 17, 2005. Each of the above patents and patent applications is incorporated in its entirety by reference as if set forth in full herein.
Number | Date | Country | |
---|---|---|---|
Parent | 11974832 | Oct 2007 | US |
Child | 13327175 | US |
Number | Date | Country | |
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Parent | 11117279 | Apr 2005 | US |
Child | 11974832 | US | |
Parent | 10238754 | Sep 2002 | US |
Child | 11117279 | US |