This application claims the benefit of priority under 35 U.S.C. §119 of German Patent Application DE 10 2006 056 039.6 filed Nov. 28, 2006, the entire contents of which are incorporated herein by reference.
The present invention pertains to an incubator with different operating states and with a corresponding configuration with different numbers of different, removable limiting walls, wherein at least one vertical head-side limiting wall is present in the minimal configuration.
Contrary to closed incubators, thermotherapy devices that are completely open above the reclining surface for premature and newborn patients offer a substantially better access for care and therapy measures at the patient. Open thermotherapy devices are also called open patient care units. However, temperature stabilization and air conditioning suitable for the patient continues to be a technical challenge in such thermotherapy devices. According to DE 103 20 195 B4 or DE 10 2004 016 080 A1, the microclimate above the reclining surface of an open thermotherapy device is embodied by air flows from discharge channels along the sides of the reclining surface. To minimize the energy consumption, the air flows are returned or recycled especially through an exhaust unit arranged fittingly on the head side above the reclining surface.
Regardless of whether single-layer or two-layer air flows are used on the particular sides of the reclining surface, the discharges are directed at a constant angle to the reclining surface and/or at a constant angle to the head-side exhaust unit. Moreover, the velocity distributions of the air flows along the respective discharge channels remain constant. Due to the constant angles and constant velocities over the course of the sides of the reclining surface, shears develop between the individual air flows, which lead to swirling and consequently to an extensive instability of the microclimate. In addition, the constant velocity in terms of direction and value leads to a predetermined discharge directed towards the exhaust unit.
On the other hand, incubators completely closed by limiting walls offer the great advantage of a stable and readily controllable climate in the interior space, so that the premature or newborn patients enjoy an especially adequate, physiologically desired accommodation and air conditioning.
The object of the present invention is to provide an improved incubator or a thermotherapy device with the particular configuration, corresponding to a different number of limiting walls present, adapted design such that the microclimate is stable for a long time above the reclining surface in all configurations and reduced energy consumption is necessary.
The orientation of the air flows is achieved by changing the discharge angles along the sides around the reclining surface. In addition, adaptation of the velocity values for all sides along the discharge channels ensures a low-shear meeting of the discharges.
An exemplary embodiment will be explained below on the basis of the figures. The various features of novelty which characterize the invention are pointed out with particularity in the claims annexed to and forming a part of this disclosure. For a better understanding of the invention, its operating advantages and specific objects attained by its uses, reference is made to the accompanying drawings and descriptive matter in which the preferred embodiment of the invention is illustrated.
In the drawings:
Referring to the drawings in particular the incubator or the thermotherapy device according to
The reclining surface 1 is limited by a fixed side wall 5 and by limiting walls 2, 3, 4, 6, which can be positioned variably and removed, and which make access to the patient possible to different extents as needed, namely, through two long-side side walls 2, 3, a front-side or foot-side side wall 4 and an upper limiting wall 6, which extends essentially in parallel to the reclining surface 1 and which forms the hood cover when the incubator is closed on all sides. The distance between the limiting wall 6 and the reclining surface 1 is approximately 300 mm. The distance between the two side walls 2, 3 is approximately 480 mm, and the distance between the two head- and foot-side side walls 5, 4 is approximately 600 mm.
The head-side side wall 5 is present in all embodiments and has the exhaust unit 10 arranged in the upper side area below the upper limiting wall 6. This exhaust unit 10 has a flow area of, e.g., 30×300 mm.
The air, drawn off by the exhaust unit 10 with a fan, not shown, and mixed with ambient air, is recirculated and returned into the incubator or the thermotherapy device via the discharge channels 7, 8, 9. The output of the forced air circulation thus changes depending on the setting of the air velocity in the different configurations of the incubator or the thermotherapy device.
The discharge channels 7, 8, 9 have mechanical or electric motor-actuated setting means for setting a velocity distribution in relation to the value of the velocity as well as electric motor-actuated setting means for deflecting or setting the direction of the air being discharged, which are schematically shown in
As an alternative, corresponding settings may also be performed manually by a human operator or medical care staff on the central analysis and control unit.
The guide elements of the guide means 11, which the guide elements act as setting means for the air being discharged, are arranged in the lateral discharge channels 7, 8 extending along the longitudinal direction of the reclining surface 1 between the channel walls 12 (
The guide elements 11 are arranged vertically in the middle in the area of the foot-side side wall 4, (
The additional deflection of the air being discharged, characterized by the angle β with the reclining surface 1, likewise measured from the horizontal, is embodied by deflecting elements of a deflecting means 13 in the area of the air flow outlet. These deflecting elements may be designed as shown in the exemplary embodiment (
The corresponding settings of the setting means in the discharge channels 7, 8, 9 and the values of the discharge velocities will be stated below for the different configurations corresponding to
According to
If a long-side side wall 2 or 3, corresponding to
a) The guide elements 11 are set at an angle α between 90° and 75° in the area of the opened side wall 2. The spoilers 13 form the extension of the outer channel wall with β=90° or are deflected in both directions by a maximum of 15°. The value of the discharge velocity is constant at more than 0.1 nm/sec over the course.
b) The guide elements 11 are set vertically, α=90°, in the area of the closed side wall 3. The spoilers 13 form the extension of the outer channel wall with β=90°. The value of the discharge velocity is constantly low at less than 0.1 m/sec over the course.
c) The guide elements 11 are set vertically, α=90°, or they correspond to the angle β of the side walls 2, 3 in the area of the foot-side side wall 4. The angle β of the spoilers 13 corresponds to the smallest angle α of the side walls 2, 3.
The value of the discharge velocity is constantly low at less than 0.1 m/sec over the course. A volume flow range of up to 5 m3/hr. to 40 m3/hr. is obtained for the forced air circulation via the exhaust unit 10 for this configuration.
If both long-side side walls 2 and 3 are opened or removed, lowered or pivoted away according to
a) The guide elements 11 in the lateral discharge channels 7, 8 of the opened long sides are set at an angle α between 75° and 90°. The spoilers 13 form the extension of the outer channel wall with β=90° or are deflected in both directions by up to 15°. The value of the discharge velocity is constant in the range of >0.1 nm/sec over the course.
The settings are identical on the two opened long sides.
b) In the area of the closed foot-side side wall 4, the guide elements 11 are set vertically, α=90°, or the angle α of the guide elements 11 corresponds to angle β of the long sides. Angle β of the spoilers 13 corresponds to the smallest angle α of the long sides.
The discharge velocity is constant over the course with less than 0.1 n/sec. A volume flow range of up to 12 m3/hr. to 70 m3/hr. is obtained for the forced air circulation via the exhaust unit 10 for this configuration.
The following settings are active if both long-side side walls 2 and 3 and the foot-side side wall 4 are opened according to
a) The guide elements 11 in the lateral discharge channels 7, 8 of the two opened long sides are set at an angle α between 50° and 110°. The spoilers 13 of the long sides are set at an angle β between 60° and 110°. The value of the discharge velocity has a continuous distribution over the courses. It increases continuously with the distance of the discharge from the exhaust unit 10 from 0.2 m/sec to above 0.4 m/sec.
b) The angles α of the guide elements 11 correspond to the angle β of the long sides in the area of the opened foot-side side wall 4, i.e., they are between 60° and 90°.
(The angle β of the spoilers 13 on the foot side may correspond to the smallest angle α of the long sides.)
The discharge velocity has a maximum of about 0.5 m/sec over the course of the foot side in the middle. The discharge velocity changes continuously towards the long sides until it has the same value as the long sides at the corners.
The following conditions occur if all walls except the head-side side wall 5 with the exhaust unit 10 are removed according to
a) The guide elements 11 in the lateral discharge channels 7, 8 have a continuous angle setting α of 90° in the vicinity of the exhaust unit 10 and between 15° and 90° in the area of the foot side, i.e., at the maximum distance from the exhaust unit 10.
The angle β of the spoilers 13 of the long sides are set between 15° and 100°.
The discharge velocity has a continuous distribution over the courses of the long sides. It increases continuously from 0.2 m/sec to 1 m/sec with the distance of the site of discharge from the exhaust unit 10.
b) On the foot side, the smallest angle α of the guide elements 11 equals the angle β of the long sides. (The angle β of the spoiler 13 on the foot side corresponds to the smallest angle α of the long sides.)
The discharge velocity has a maximum of up to 1 m/sec in the middle over the course of the foot side. The discharge velocity changes continuously towards the long sides until it has the same value as on the long sides in the two corners.
The embodiments described represent the geometric conditions for the special examples, without the actual position of the patient on the reclining surface 1 being specified by the designations “head side,” “head-side” or “foot side” or “foot-side.”
The designation “foot side” corresponds here, according to the figures, to the designation “front side.”
While a specific embodiment of the invention has been shown and described in detail to illustrate the application of the principles of the invention, it will be understood that the invention may be embodied otherwise without departing from such principles.
Number | Date | Country | Kind |
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10 2006 056 039 | Nov 2006 | DE | national |
Number | Date | Country |
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103 20 195 | Dec 2004 | DE |
102004016080 | Aug 2005 | DE |
69 635 498 | Aug 2006 | DE |
102006044671 | Apr 2008 | DE |
Number | Date | Country | |
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20080125619 A1 | May 2008 | US |