The present invention generally relates to the field of ultrasound, and more particularly to a transmitting and receiving device for an ultrasonic system and an ultrasonic system having the transmitting and receiving device.
For the application of an ultrasonic transducer with a transmitter and a receiver integrated, a high-voltage transmitter and a low-noise receiver are generally connected together via a transmit/receive switch (T/R switch). The T/R switch is a high voltage current limiting protection device that protects the low noise receiver from the influence of high voltage pulse signals.
During operation, the high-voltage transmitter can send high-voltage pulse signals, such as ±100 volts, to the ultrasonic transducer. Meanwhile, the T/R switch can protect the low-noise receiver from the influence of the high voltage pulse signals. The transmitted high voltage pulse signals enable the ultrasonic transducer to vibrate, so as to generate sound wave. The sound wave hits an object, resulting in sound wave echo. The sound wave echo returns to the ultrasonic transducer. The ultrasonic transducer can convert the sound wave echo to electrical signals (which could generally be referred to as received signals) typically no more than a few hundred millivolts. The T/R switch can allow the small received signals to pass through and be received by the receiver. Signals from the receiver can be further processed for image reconstruction.
The T/R switch only allows small voltage signals to pass through. Once the voltage drop across the T/R switch exceeds its voltage threshold (for example, typically ±2 volts), the T/R switch will be disconnected so as to prevent the high voltage signals from passing through. However, the protection capability for the T/R switch is limited. The T/R switch will be damaged when the applied high voltage pulse signals cause the voltage drop across the T/R switch to exceed its maximum rated withstand voltage.
Accordingly, it is necessary to provide an improved solution for solving at least one of the technical problems as mentioned above.
One aspect of the present invention is to provide a transmitting and receiving device for an ultrasonic system. The transmitting and receiving device comprises a transmitter, a receiver and at least two switch circuits connected in series. The transmitter is coupled to an ultrasonic transducer and generates high voltage signals to the ultrasonic transducer during a transmitting mode. The receiver is coupled to the ultrasonic transducer via the at least two switch circuits and receives low voltage signals from the ultrasonic transducer during a receiving mode. The at least two switch circuits are configured to share voltage drop of the high voltage signals to isolate the high voltage signals during the transmitting mode and allow the low voltage signals to pass through during the receiving mode.
Another aspect of the present invention is to provide an ultrasonic system. The ultrasonic system comprises an ultrasonic transducer, a transmitting and receiving device and a controller. The transmitting and receiving device comprises a transmitter, a receiver and at least two switch circuits connected in series. The transmitter is coupled to an ultrasonic transducer and configured to generate high voltage signals to the ultrasonic transducer during a transmitting mode. The receiver is coupled to the ultrasonic transducer via the at least two switch circuits and configured to receive low voltage signals from the ultrasonic transducer during a receiving mode. The at least two switch circuits are configured to share voltage drop of the high voltage signals to isolate the high voltage signals during the transmitting mode and allow the low voltage signals to pass through during the receiving mode. The controller is used to control the transmitter and the receiver.
These and other features, aspects and advantages of the present invention can be understood better in light of the following detailed description with reference to the accompanying drawings, in which the same reference signs represent the same components in the whole drawings, in which:
In order to help the person skilled in the art to exactly understand the subject matters claimed by the present invention, detailed description for embodiments of the present invention will be given with reference to the accompanying drawings in the following. In the following detailed description for those embodiments, some known functions or structures will not be described in details by the Description, to avoid disclosure of the present invention to be affected by unnecessary details.
Unless defined otherwise, the technical or scientific terms used in the Claims and the Description should have meanings as commonly understood by one of ordinary skilled in the art to which the present disclosure belongs. The terms “first”, “second” and the like in the Description and the Claims do not mean any sequential order, quantity or importance, but are only used for distinguishing different components. The terms “a”, “an” and the like do not denote a limitation of quantity, but denote the existence of at least one. The terms “comprises”, “comprising”, “includes”, “including”, “haves”, “having” and the like mean that the element or object in front of the “comprises”, “comprising”, “includes”, “including”, “haves” and “having” covers the elements or objects and their equivalents illustrated following the “comprises”, “comprising”, “includes”, “including”, “haves” and “having” but do not exclude other elements or objects. The term “coupled” or “connected” or the like is not limited to being connected physically or mechanically, but may comprise electric connection, no matter directly or indirectly.
The transmitter 2 may be coupled to the ultrasonic transducer 1 and generate ultrasound pulse signals, i.e. high voltage signals, to the ultrasonic transducer 1 during a transmitting mode. Meanwhile, during the transmitting mode, the at least two switch circuits 31, 32 can share voltage drop of the high voltage signals transmitted by the transmitter 2 together, thereby to isolate the high voltage signals transmitted by the transmitter 2. Therefore, the high voltage signals transmitted by the transmitter 2 cannot pass through the switch circuits 31, 32 and get received by the receiver 4. Thus, by using at least two switch circuits 31, 32 connected in series, the switch circuits can withstand a higher voltage so that the transmitter 2 can transmit stronger ultrasound pulse signals.
The transmitted high voltage pulse signals arrive at the ultrasonic transducer 1 and enable the ultrasonic transducer 1 to vibrate so as to generate sound wave. The sound wave hits an object (not shown) to be detected, resulting in sound wave echo. The sound wave echo returns to the ultrasonic transducer 1. The ultrasonic transducer 1 can convert the sound wave echo to electrical signals, which are low voltage signals.
The receiver 4 may be coupled to the ultrasonic transducer 1 via the at least two switch circuits 31, 32 and receive low voltage signals from the ultrasonic transducer 1 during a receiving mode. During the receiving mode, the at least two switch circuits 31, 32 may allow the low voltage signals to pass through so as to be received by the receiver 4.
By using the at least two switch circuits 31, 32 connected in series, the voltage drop of the high voltage signals are divided to the at least two switch circuits 31, 32. Therefore, comparing to a typical single T/R switch, the at least two switch circuits 31, 32 connected in series of the present invention will be able to withstand a higher voltage drop, thereby providing a high voltage protection capability for the receiver 4.
As an example, the switch circuit may include a transmit/receive (T/R) switch. For example, the switch circuit 31 may include T/R switch T1, and the switch circuit 32 may include T/R switch T2. The two T/R switches T1 and T2 are substantially the same.
The T/R switches T1 and T2 may be used in the ultrasonic system 100, for protecting the low noise receiver 4 from the influence of high voltage pulse signals. The T/R switch T1, T2 are a normally off switch with a typical switch resistance of approximately 15Ω, capable of delivering weak signals. Once the voltage drop across the T/R switches T1, T2 exceeds their nominal voltage, the T/R switches T1, T2 are turned off so as to prevent strong signals, i. e. high voltage signals, from passing through.
Considering that when the at least two T/R switches T1, T2 are used in series, the voltage drop of the high voltage signal may not be equally divided to the at least two circuit T/R switches T1, T2 due to the difference between the devices themselves and/or circuits. Thus, in another embodiment of the present invention, the transmitting and receiving device 200 may further comprise at least two resistors R1, R2, each of the transmit/receive switches is connected in parallel with one resistor. For example, the T/R switch T1 is connected in parallel with the resistor R1, and the T/R switch T2 is connected in parallel with the resistor R2.
The resistors R1, R2 may balance the difference between the T/R switch T1, T2, and protect the T/R switch T1, T2. Therefore, the voltage drop of the high voltage signals may be divided equally to the T/R switch T1, T2 so that the damage caused by the voltage drop across the T/R switch exceeding its maximum rated voltage can be avoided. Therefore, the at least two T/R switch T1, T2 connected in series of the present invention can provide a high voltage protection capability.
Furthermore, considering that the response speed of the resistors R1, R2 is relatively slow, in another embodiment of the present invention, besides the at least two resistors R1, R2, the transmitting and receiving device 200 may further include at least two transient voltage suppression devices, and each transmit/receive switch is connected in parallel with one resistor and one transient voltage suppression device. The transient voltage suppression devices may for example include transient voltage suppression diodes D1, D2. For example, the T/R switch T1 is connected in parallel with the resistor R1 and the transient voltage suppression diode D1 respectively, and the T/R switch T2 is connected in parallel with the resistor R2 and the transient voltage suppression diode D2 respectively. In the transmitting and receiving device 200 as shown in
In another modified embodiment of the present invention, the transmitting and receiving device 200 may further merely include at least two transient voltage suppression devices without resistors. In this case, each transmit/receive switch is connected in parallel with one transient voltage suppression device. For example, the T/R switch T1 is connected in parallel with the transient voltage suppression diode D1, and the T/R switch T2 is connected in parallel with the transient voltage suppression diode D2.
The transient voltage suppression diodes D1, D2 are high efficiency circuit protection devices with extremely fast response times (sub-nanosecond) and very high surge absorptive capacity. When two ends of the transient voltage suppression diodes D1, D2 experience instantaneous high energy impact, the transient voltage suppression diodes D1, D2 can change the impedance value between the two ends from a high impedance to a low impedance at an extremely high rate to absorb instantaneous high current, so as to clamp the voltage across the two ends to a predetermined value, thereby protecting circuit elements from the impact of the transient high voltage spike pulses.
After the at least two switch circuits 31, 32 of the present invention are connected in parallel to the transient voltage suppression diodes D1, D2, the at least two switch circuits 31, 32 of the present invention can have shorter response time and better protection for the T/R switches T1 and T2. The at least two switch circuits 31, 32 connected in series of the present invention can provide the receiver 4 with higher and more efficient voltage protection capability. The transient voltage suppression diodes D1, D2 are chosen in a reasonable way, so that the protection voltage of the transient voltage suppression diodes D1, D2 does not exceed the maximum withstand voltage of the T/R switches T1 and T2. Therefore, the T/R switches T1 and T2 can be protected.
Continuing referring to
Referring to
Under the receiving mode, when small ultrasonic backlash voltage signals are being received, since the voltage drop of the low voltage signals is lower than a voltage threshold of the T/R switches T1 and T2, the T/R switches T1 and T2 will be closed, that is in an ON state. In this case, the receiver 4 will be able to receive the low voltage signals.
The transmitting and receiving device 200 of the present invention can simplify the design of the ultrasonic system 100, and improve the reliability of the ultrasonic system 100. The transmitting and receiving device 200 of the present invention can provide higher and more efficient voltage protection capability for the receiver 4.
The present invention also provides an ultrasonic system 100. As shown in
The ultrasonic system 100 of the present invention is simple in design and has high reliability.
However, unlike the transmitting and receiving device 200 shown in
As another modified embodiment of the present invention, in the at least two T/R switches T1, T2 of the transmitting and receiving device 400, the transient voltage suppression device connected to the T/R switch at the highest voltage terminal may be omitted. For example, in the transmitting and receiving device 400 shown in
In the transmitting and receiving device 400 as shown in
Although the present invention has been set forth in details in combination with specific embodiments, the person skilled in the art shall be understood that many modifications and variations may be made to the present invention. Therefore, it should be recognized that the intention of the claims is to cover all these modifications and variations within the real concept and range of the present invention.
Number | Date | Country | Kind |
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201610781968.1 | Aug 2016 | CN | national |
Filing Document | Filing Date | Country | Kind |
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PCT/US2017/045211 | 8/3/2017 | WO | 00 |