System and method for measuring sludge moisture content by ultrasound
11788988 · 2023-10-17
Assignee
Inventors
- Fei WANG (Hangzhou, CN)
- Jinhui FAN (Hangzhou, CN)
- Wenyuan Wang (Hangzhou, CN)
- Haibin Cui (Hangzhou, CN)
Cpc classification
International classification
G01N29/34
PHYSICS
G01N29/40
PHYSICS
Abstract
A system and method for measuring a sludge moisture content by ultrasound are provided, which relate to the technical field of sludge detection. The system includes: a measuring container, configured to load sludge; a pulse signal generator, configured to generate a pulse signal; a self-transmitting self-receiving (STSR) transducer, disposed on an outer wall of the measuring container, and configured to transmit a first ultrasonic signal into the measuring container under an excitation of the pulse signal and receive a second ultrasonic signal reflected from an inner wall of the measuring container; and an upper computer, configured to build a first mathematical model among a reflection coefficient, sludge acoustic impedance, and wall acoustic impedance of the measuring container, and build a second mathematical model between the sludge acoustic impedance and the sludge moisture content.
Claims
1. A system for measuring a sludge moisture content by ultrasound, comprising: a measuring container, configured to load sludge; a pulse signal generator, configured to generate a pulse signal; a self-transmitting and self-receiving (STSR) transducer, disposed on an outer wall of the measuring container, and configured to transmit a first ultrasonic signal into the measuring container loaded with the sludge under an excitation of the pulse signal and receive a second ultrasonic signal reflected from an inner wall of the measuring container; and a computer, configured to build a first formula representing a relationship among a reflection coefficient, sludge acoustic impedance, and wall acoustic impedance of the measuring container, and build a second formula representing a relationship between the sludge acoustic impedance and the sludge moisture content; calculate an amplitude ratio between the second ultrasonic signal and the first ultrasonic signal; take the amplitude ratio as the reflection coefficient to substitute into the first formula to obtain the sludge acoustic impedance; substitute the sludge acoustic impedance into the second formula to obtain the sludge moisture content; wherein the sludge is dried based on the sludge moisture content until a moisture content value of 80% is achieved; wherein the first formula is as follows:
Z.sub.w=Z.sub.arc(1+R)/(1−R); where R represents the reflection coefficient, Z.sub.w represents the sludge acoustic impedance, and Z.sub.arc represents the wall acoustic impedance of the measuring container; wherein the second formula is as follows:
i=(Z.sub.w−Z.sub.2)/(Z.sub.1−Z.sub.2); where Z.sub.w represents the sludge acoustic impedance, Z.sub.1 represents water acoustic impedance, Z.sub.2 represents dry sludge acoustic impedance, and i represents the sludge moisture content.
2. The system for measuring the sludge moisture content by ultrasound according to claim 1, wherein the measuring container is made of polymethyl methacrylate.
3. A method for measuring a sludge moisture content by ultrasound, comprising: S0: building a first formula representing a relationship among a reflection coefficient, sludge acoustic impedance, and wall acoustic impedance of a measuring container; and building a second formula representing a relationship between the sludge acoustic impedance and the sludge moisture content; S1: putting sludge to be measured into the measuring container; S2: transmitting a first ultrasonic signal from an outer wall of the measuring container into the measuring container; and receiving a second ultrasonic signal reflected from an inner wall of the measuring container; and S3: calculating an amplitude ratio between the second ultrasonic signal and the first ultrasonic signal; taking the amplitude ratio as the reflection coefficient to substitute into the first formula to obtain the sludge acoustic impedance; substituting the deduced sludge acoustic impedance into the second formula to obtain the sludge moisture content; drying the sludge until the moisture content value is less than 80% when the sludge moisture content is not less than 80%; and discharging the sludge when the sludge moisture content is less than 80%; wherein the first formula is as follows:
Z.sub.w=Z.sub.arc(1+R)/(1−R); where R represents the reflection coefficient, Z.sub.w represents the sludge acoustic impedance, and Z.sub.arc represents the wall acoustic impedance of the measuring container; wherein the second formula is as follows:
i=(Z.sub.w−Z.sub.2)/(Z.sub.1−Z.sub.2); where Z.sub.w represents the sludge acoustic impedance, Z.sub.1 represents water acoustic impedance, Z.sub.2 represents dry sludge acoustic impedance, and i represents the sludge moisture content.
4. The method for measuring the sludge moisture content by ultrasound according to claim 3, wherein the measuring container is made of polymethyl methacrylate.
5. A system for measuring a sludge moisture content by ultrasound, comprising: a measuring container, configured to load sludge; a pulse signal generator, configured to generate a pulse signal; a STSR transducer, disposed on an outer wall of the measuring container, and configured to transmit a first ultrasonic signal into the measuring container loaded with the sludge under an excitation of the pulse signal and receive a second ultrasonic signal reflected from an inner wall of the measuring container; and a computer, configured to build a first formula representing a relationship among a reflection coefficient, sludge acoustic impedance, and wall acoustic impedance of the measuring container, and build a second formula representing a relationship between the sludge acoustic impedance and the sludge moisture content; calculate an amplitude ratio between the second ultrasonic signal and the first ultrasonic signal; take the amplitude ratio as the reflection coefficient to substitute into the first formula to obtain the sludge acoustic impedance; substitute the sludge acoustic impedance into the second formula to obtain the sludge moisture content; and output the sludge moisture content to a sewage treatment plant to make the sewage treatment plant based on the sludge moisture content dewater the sludge until a moisture content of the sludge is less than 80%; wherein the first formula is as follows:
Z.sub.w=Z.sub.arc(1+R)/(1−R); where R represents the reflection coefficient, Z.sub.w represents the sludge acoustic impedance, and Z.sub.arc represents the wall acoustic impedance of the measuring container; wherein the second formula is as follows:
i=(Z.sub.w−Z.sub.2)/(Z.sub.1−Z.sub.2); where Z.sub.w represents the sludge acoustic impedance, Z.sub.1 represents water acoustic impedance, Z.sub.2 represents dry sludge acoustic impedance, and i represents the sludge moisture content.
Description
BRIEF DESCRIPTION OF DRAWINGS
(1)
(2)
(3)
(4)
DESCRIPTION OF REFERENCE NUMERALS
(5) 1—measuring container; 2—self-transmitting and self-receiving (STSR) transducer; 3—pulse signal generator; 4—signal acquisition card; 5—upper computer.
DETAILED DESCRIPTION OF EMBODIMENTS
(6) The following is a clear and complete description of the technical solution in the embodiments of the disclosure. Apparently, the described embodiments are only part of the embodiments of the disclosure, not all of them. Based on the embodiments of the disclosure, all other embodiments obtained by those ordinary skilled in the art without creative work should fall within the scope of protection of the disclosure.
Embodiment 1
(7) Please refer to
(8) The measuring container 1 is configured to load sludge whose moisture content is to be measured. In order to ensure that wall acoustic impedance of the measuring container 1 is different from acoustic impedance of the sludge (also referred to as sludge acoustic impedance), the measuring container 1 is made of polymethyl methacrylate.
(9) The pulse signal generator 3 is configured to generate a pulse signal with adjustable intensity, cycle and duty ratio, and to control the STSR transducer 2 to transmit ultrasonic signals of certain intensity in to the measuring container 1 filled with the sludge.
(10) The STSR transducer 2 is disposed on an outer wall of the measuring container 1, and configured to transmit a first ultrasonic signal into the measuring container 1 under an excitation of the pulse signal and receive a second ultrasonic signal reflected from an inner wall of the measuring container 1.
(11) During a process of the first ultrasonic signal entering the sludge through the wall of the measuring container 1 made of polymethyl methacrylate, due to the different acoustic impedance of the polymethyl methacrylate and the sludge, reflection and transmission will occur on the wall of the measuring container 1 made of polymethyl methacrylate, that is, part of the first ultrasonic signal will be reflected and received by the STSR transducer 2, while the other part of the first ultrasonic signal will continue to propagate forward into the sludge. In the process, a probability of the reflection (that is, the reflection coefficient) is determined by relative values of the acoustic impedance of the polymethyl methacrylate and the acoustic impedance of the sludge (acoustic impedance is a product of medium density and acoustic velocity), the reflection coefficient R is defined as a ratio of a difference between the sludge acoustic impedance and the polymethyl methacrylate to a sum of the sludge acoustic impedance and the polymethyl methacrylate:
R=(Z.sub.w−Z.sub.arc)/(Z.sub.w+Z.sub.arc) (1) where R represents the reflection coefficient, Z.sub.w represents the sludge acoustic impedance, and Z.sub.arc represents the wall acoustic impedance of the measuring container 1; a reason why the measuring container 1 is made of polymethyl methacrylate is that the acoustic impedance of the polymethyl methacrylate is close to water acoustic impedance, so as to ensure that the ultrasonic signals can not only enter the sludge from the polymethyl methacrylate, but also return to the polymethyl methacrylate from the sludge and be detected by a probe.
(12) The upper computer 5 is configured to build a first mathematical model (that is, the above formula (1)) among the reflection coefficient, the sludge acoustic impedance, and the wall acoustic impedance of the measuring container 1; and build a second mathematical model between the sludge acoustic impedance and the sludge moisture content.
(13) Sludge is the product of sewage treatment. It is an extremely complex heterogeneous body composed of organic debris, bacterial body, inorganic particles, colloid, etc. Its main characteristics include high moisture content (up to 99%), high organic content, easy to decompose and stink, fine particles, and small specific gravity. The sludge is a colloidal liquid which is a substance between liquid and solid. For different kinds of sludge, the content of organic matter is different, but in general, for different kinds of sludge with the same moisture content, the acoustic velocity and density can be regarded as the same, that is, the acoustic impedance of the different kinds of sludge is the same, so that this method can be applied to different kinds of sludge.
(14) The second mathematical model is:
Z.sub.w=Z.sub.1*i+Z.sub.2*(1−i) (2) where Z.sub.w represents the sludge acoustic impedance, Z.sub.1 represents the water acoustic impedance, Z.sub.2 represents dry sludge acoustic impedance, and i represents the sludge moisture content.
(15) An amplitude ratio between the second ultrasonic signal and the first ultrasonic signal is calculated to obtain the reflection coefficient. The reflection coefficient is substituted into the first mathematical model to inversely deduce the sludge acoustic impedance; and the deduced sludge acoustic impedance is substituted into the second mathematical model to obtain the sludge moisture content.
(16) The following TABLE 1 shows density, acoustic velocity and acoustic impedance parameters of the polymethyl methacrylate, water and dry sludge involved in the embodiment.
(17) TABLE-US-00001 TABLE 1 a parameter table including density, acoustic velocity and acoustic impedance of the polymethyl methacrylate, water and dry sludge. Acoustic Acoustic Density velocity impedance — (kg/m.sup.3) (m/s) (10.sup.3 kg/m.sup.2.s) Polymethyl 1200 1700 2040 methacrylate Water 1000 1496.6 1496.6 Dry sludge 2600 1800 4680
(18) According to formula (2), the sludge acoustic impedance Z.sub.w(i) with different moisture contents can be calculated:
Z.sub.w(i)=Z.sub.1×i+Z.sub.2×(1−i)=1496.6i+4680(1−i).
(19) The sludge acoustic impedance with different moisture contents is substituted into the formula (1) to obtain the reflection coefficient R(i):
R(i)=(Z.sub.w(i)−Z.sub.arc)/(Z.sub.w(i)+Z.sub.arc).
(20) The following TABLE 2 shows the reflectivity at an interface between the polymethyl methacrylate and the sludge acoustic impedance with different moisture contents.
(21) TABLE-US-00002 TABLE 2 eflectivity at the interface between the polymethyl methacrylate and the sludge acoustic impedance with different moisture contents. Sludge Sludge acoustic moisture impedance Reflection content (%) (10.sup.3 kg/m.sup.2.s) coefficient 0 4680 0.392857 10 4361.66 0.362665 20 4043.32 0.329314 30 3724.98 0.292279 40 3406.64 0.250914 50 3088.30 0.204415 60 2769.96 0.151760 70 2451.62 0.091642 80 2133.28 0.022352 90 1814.94 −0.05838 100 1496.60 −0.15365
(22) As shown in
(23) However, it can be seen from
Embodiment 2
(24) A method for measuring a sludge moisture content by ultrasound is provided in this embodiment, including the steps S0 to S3. S0: building a first mathematical model among a reflection coefficient, sludge acoustic impedance, and wall acoustic impedance of a measuring container 1; and building a second mathematical model between the sludge acoustic impedance and the sludge moisture content. Specifically, the first mathematical model is:
R=(Z.sub.w−Z.sub.arc)/(Z.sub.w+Z.sub.arc); where R represents the reflection coefficient, Z.sub.w represents the sludge acoustic impedance, and Z.sub.arc represents the wall acoustic impedance of the measuring container 1.
(25) Furthermore, the second mathematical model is:
Z.sub.w=Z.sub.1*i+Z.sub.2*(1−i); where Z.sub.w represents the sludge acoustic impedance, Z.sub.1 represents water acoustic impedance, Z.sub.2 represents dry sludge acoustic impedance, and i represents the sludge moisture content. S1: putting sludge to be measured into the measuring container 1. S2: transmitting a first ultrasonic signal from an outer wall of the measuring container 1 into the measuring container 1; and receiving a second ultrasonic signal reflected from an inner wall of the measuring container 1. S3: calculating an amplitude ratio between the second ultrasonic signal and the first ultrasonic signal to obtain the reflection coefficient; substituting the reflection coefficient into the first mathematical model to obtain the sludge acoustic impedance; substituting the deduced sludge acoustic impedance into the second mathematical model to obtain the sludge moisture content.
(26) The specific principle of the embodiment 2 is the same as that described in the embodiment 1 and will not be repeated herein.
(27) For those skilled in the art, it is apparent that the disclosure is not limited to the details of the above exemplary embodiments, and can be realized in other specific forms without departing from the spirit or basic features of the disclosure. Therefore, from any point of view, the embodiments should be regarded as exemplary and non-restrictive. The scope of the disclosure is limited by the appended claims rather than the above description. Therefore, it is intended to include all changes falling within the meaning and scope of the elements equivalent to the claims in the disclosure.