Precision-adjustable water level measuring device and method
A water level measurement and precision technology, applied in the field of water level measurement devices with adjustable precision, can solve the problems of high price, large environmental impact, and difficult sensor installation, and achieve the effects of convenient maintenance and simple structure
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Embodiment 1
[0067] Such as Figure 6 As shown, the I end of the U-shaped gas-liquid difference measuring tube 50 communicates with the reference water tank 71, and the II end communicates with the measured model 73 through the remote detection head 30; when the liquid level of the pressure measuring tube at the I end is higher than the reference water level h 1 , the liquid level of the pressure measuring tube at the Ⅱ end is higher than the reference water level h 2 , when the water level of the measured model 73 is lower than the reference water level Δh, since the pressure of the liquid level of the pressure measuring tube at the end I is equal to that of the liquid level of the pressure measuring tube at the end II, the following relationship exists between the two:
[0068]
[0069] which is
[0070] Δh=h 1 -h 2
[0071] Where: ρ is the density of the liquid to be measured, in kg / m 3 ;g is the local gravity acceleration, the unit is m / s 2 ; P is the water surface pressure in...
Embodiment 2
[0073] Such as Figure 7 As shown, the I end of the U-shaped gas-liquid difference measuring tube 50 communicates with the reference water tank 71, and the II end communicates with the measured model 73 through the remote detection head 30; when the liquid level of the pressure measuring tube at the I end is higher than the reference water level h 1 , the liquid level of the pressure measuring tube at the Ⅱ end is lower than the reference water level h 2 , when the water level of the measured model 73 is lower than the reference water level Δh, and the liquid level of the piezometric tube at the end II is higher than that of the measured model 73, since the liquid level of the piezometric tube at the end I is equal to the pressure of the liquid surface of the piezometric tube at the end II, the two There is the following relationship among them:
[0074]
[0075] which is
[0076] Δh=h 1 -h 2
[0077] At this time, h 2 is a negative number.
Embodiment 3
[0079] Such as Figure 8 As shown, the I end of the U-shaped gas-liquid difference measuring tube 50 communicates with the reference water tank 71, and the II end communicates with the measured model 73 through the remote detection head 30; when the liquid level of the pressure measuring tube at the I end is higher than the reference water level h 1 , the liquid level of the pressure measuring tube at the Ⅱ end is higher than the reference water level h 2 , when the water level of the measured model 73 is higher than the reference water level Δh, and the liquid level of the piezometric tube at the end II is higher than the water level of the measured model 73, since the liquid level of the piezometric tube at the end I is equal to the liquid surface pressure of the piezometric tube at the end II, therefore, The following relationship exists between the two:
[0080]
[0081] which is
[0082] Δh=h 1 -h 2
[0083] At this time, Δh is a negative number.
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