SU787626A1 - Method of determining the dynamic level of fluid in borehole - Google Patents
Method of determining the dynamic level of fluid in borehole Download PDFInfo
- Publication number
- SU787626A1 SU787626A1 SU782658390A SU2658390A SU787626A1 SU 787626 A1 SU787626 A1 SU 787626A1 SU 782658390 A SU782658390 A SU 782658390A SU 2658390 A SU2658390 A SU 2658390A SU 787626 A1 SU787626 A1 SU 787626A1
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- SU
- USSR - Soviet Union
- Prior art keywords
- fluid
- determining
- well
- level
- static
- Prior art date
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- Earth Drilling (AREA)
Description
Сущность способа определени динамического уровн заключаетс в следующем .The essence of the method for determining the dynamic level is as follows.
Первоначально перед спуском ЭЦН в скважину замер ют статический уровень HL- I жидкости и ее удельный вес обйчными способами. При заданном технологическом режиме работы скважины (с установившимс динамическим уровнем жидкости) определ ют суточный дебит Q и регистрируют устьевое давление Р .Initially, prior to the descent of the ESP into the well, the static level of the HL-I fluid and its specific gravity were measured using regular methods. At a given technological mode of operation of the well (with an established dynamic fluid level), the daily flow rate Q is determined and the wellhead pressure P is recorded.
Затем полностью продукцию скважины направл ют в затрубное пространство и далее на забой скважины, благодар чему уровень жидкости в скважине постепенно поднимаетс от динамического Нд до статического Н, , так как отбора жидкости з скважины не производитс , а жидкость циркулирует в замкнутой системе.Then the complete production of the well is directed to the annulus and further to the bottom of the well, whereby the level of fluid in the well gradually rises from dynamic N to static H, because no fluid is taken from the well and the fluid circulates in a closed system.
Регулированием манифольдной задвижкой устанавливают дебит скважины, равный первоначальной производительности Q скважины.Adjusting the manifold valve sets the flow rate of the well, equal to the initial productivity Q of the well.
При этом давление на устье скважины постепенно повышаетс от первоначального Р до конечного Р,,. которое показывает устьевое давление скважины при ее производительности Q со статического уровн , так как произ-, . водительность, замеренна дебитометром циркулируемой при этом жидкости равн етс первоначальной т. е. дебиту скважины, а уровень жидкости в скважине соответствует статическому Н,At the same time, the pressure at the wellhead gradually rises from the initial P to the final P ,,. which shows the wellhead pressure at its performance Q from a static level, since production-,. the water flow measured by the flowmeter of the fluid circulated in this case is equal to the initial one, i.e. the well flow rate, and the fluid level in the well corresponds to static H,
стst
Согласно известной формулеAccording to the well-known formula
где Р - давление, которое в предлагаемом способе равноwhere P is the pressure, which in the proposed method is equal to
Р - R -
высота столба жидкости,the height of the liquid column
котора равна И...,,, which is equal to i ... ,,,
P.VIHP.VIH
ст st
удельный вес жидкости.specific gravity of the fluid.
Подставл значени в формулу, получимSubstituting the values into the formula, we get
Р Р - С И АЙН-Нет) У . 1 1 0 RR - C AND AIN-No) Y. 1 1 0
где Нду,ц и Н. - динамический иwhere Ndu, c and N. - dynamic and
статический уровни жидкости.static fluid levels.
Далее динамический уровень жидкости будет равенFurther, the dynamic fluid level will be equal to
н .(м) n (m)
ДИНDin
стst
В результате использовани изобретени сокращаетс число аварийных ситуаций , объем спуско-подъемных операций , уменьшаетс длина колонны лифтовых труб, увеличиваетс добыча нефти и снижаетс ее себестоимость.As a result of the use of the invention, the number of emergency situations is reduced, the volume of tripping operations is reduced, the length of the tubing string is reduced, the oil production is increased and its cost is reduced.
Claims (2)
Priority Applications (1)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
SU782658390A SU787626A1 (en) | 1978-08-21 | 1978-08-21 | Method of determining the dynamic level of fluid in borehole |
Applications Claiming Priority (1)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
SU782658390A SU787626A1 (en) | 1978-08-21 | 1978-08-21 | Method of determining the dynamic level of fluid in borehole |
Publications (1)
Publication Number | Publication Date |
---|---|
SU787626A1 true SU787626A1 (en) | 1980-12-15 |
Family
ID=20782849
Family Applications (1)
Application Number | Title | Priority Date | Filing Date |
---|---|---|---|
SU782658390A SU787626A1 (en) | 1978-08-21 | 1978-08-21 | Method of determining the dynamic level of fluid in borehole |
Country Status (1)
Country | Link |
---|---|
SU (1) | SU787626A1 (en) |
-
1978
- 1978-08-21 SU SU782658390A patent/SU787626A1/en active
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