1. Field of the Invention
The present invention relates generally to an electronic manometer, and more particularly, to a pressure detection device for use in an electronic manometer.
2. Description of the Related Art
The commercially available manometers can be divided into the mercurial type and the electronic type. As for the mercurial manometer, its accuracy is though high, but the ordinary people need training for correct operation of the same. Besides, no use of any object containing mercury is the dominant trend for environment protection in the current world. Therefore, the electronic manometer is more suitable for one hypertensive patient to use at home, thus facilitating monitoring and getting hold of the patient's condition at any time.
However, the conventional electronic manometer is subject to measuring errors resulting from environmental factors. For the hypertensive patient, the electronic manometer with inaccuracy not only fails to monitor the blood pressure but may also delay the patient's condition.
The primary objective of the present invention is to provide a pressure detection device, which can be used in an electronic manometer for detecting whether the measurement of the manometer is accurate or not.
The foregoing objective of the present invention is attained by the pressure detection device composed of a container, a first conduit, and a second conduit. The container defines a liquid storage space therein for receiving a liquid and includes a first through hole, a second through hole, and an extended portion protruding outward from a bottom end of the second through hole and into the liquid storage space. The first conduit has a bottom end for interference fit with the container and communicates with the liquid storage space via the first through hole in such a way that the liquid storage space is communicable with outside via the first conduit. The second conduit has a bottom end for interference with the container and communicates with the liquid storage space via the second through hole in such a way that the liquid in the liquid storage space is forced by differential atmospheric pressure to flow into the second conduit.
In light of the above, the difference between the liquid level of the second conduit and that of the container is converted into a mercury column pressure and then compared with the pressure measured by the electronic manometer, such that it is detected as to whether the measuring result of the electronic manometer is accurate or not.
Referring to
Referring to
The first conduit 30 includes a bottom end connected with the first joint 24 of the container 20 by interference fit for communication with the liquid storage space 21 via the first through hole 22.
The second conduit 40 also includes a bottom end connected with the second joint 25 by interference fit for communication with the liquid storage space 21 via the second through hole 23.
The process and features of operating the present invention are recited below as shown in
First, open the sealing cap 28 and then pour water 12 into the liquid storage space 21 in 80% full and seal the sealing cap 28. Next, connect a top end of the first conduit 30 directly or indirectly to an inflatable tube of the electronic manometer to facilitate drawing the air, which pressure is identical to that of a pressure transducer (not shown), from the electronic manometer and to allow the air to enter the liquid storage space 21 through the first conduit 30. In the meantime, the water 12 in the liquid storage space 21 rises along the extended portion 26 and the second through hole 23 and flows into the second conduit, as the pressure inside the container 20 rises, and then rises along the second conduit 20 for a predetermined height. In this way, as long as the water level of the second conduit 40 is measured to get a height, then a height of the liquid inside the container is deducted from the aforesaid height to get a difference, further the difference is converted into a mercury column pressure, and finally the mercury column pressure is compared with the pressure measured by the electronic manometer, it could be detected as to whether the measuring outcome of the electronic manometer is accurate or not.
To facilitate measuring the liquid level of the second conduit 40, the pressure detection device 10 of the present invention further includes a ruler 50 having a scale 52 facing the second conduit 40, as shown in
To sum up, the pressure detection device of the present invention can effectively detect whether the measuring outcome of the electronic manometer is accurate or not to allow the hypertensive patient with the assistance of the present invention to operate the electronic manometer for monitoring and getting hold of the his or her condition at any time.
Referring to
When the air having the same pressure as that of the pressure transducer is directly or indirectly drawn from the electronic manometer through the first through hole 631 into the liquid storage space 624, the water in the liquid storage space 624 enters the third conduit 66 due to the pressure difference, then flows into the second conduit 65 through the second through hole 632, and finally rises up to a predetermined height along the second conduit 65. Next, measure the level of the water in the second conduit 65 to get a height, deduct a height of the water in the container 61 from the aforesaid height to get a difference, convert the difference into a mercury column pressure, and finally compare the mercury column pressure with the user's blood pressure measured by the electronic manometer to detect whether the measuring result of the electronic manometer is accurate or not.
Referring to
Although the present invention has been described with respect to specific preferred embodiments thereof, it is in no way limited to the specifics of the illustrated structures but changes and modifications may be made within the scope of the appended claims.
Number | Date | Country | Kind |
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99117969 | Jun 2010 | TW | national |