Introduction to BD140
Hello Friends! Hope this finds you well. I welcome you on board. Thank you for clicking this read. In this post today, I’ll walk you through the Introduction to BD140.
BD140 is a medium power bipolar junction transistor that is mainly used for switching and amplification purpose. It belongs to the PNP transistor category and comes in the TO-126 package. It is made up of silicon material with collector current 1.5A which indicates it can support loads under 1.5A. The collector-base and collector-emitter terminal voltages are 80V and emitter-base voltage is 5V which is used to bias the transistor.
In this post, I’ll be detailing the complete introduction to BD140 covering pinout, working, absolute maximum ratings, physical dimensions, alternatives, and applications.
Let’s jump right in.
Introduction to BD140
- BD140 is a PNP bipolar junction transistor that is used to drive loads under 1.5A.
- It comes with three terminals known as emitter, collector, and base. The small current at the base side is used to produce large output current at the emitter and collector terminals.
- The reason it is mainly known as a current-controlled device for controlling the input current in contrast to FETs (field-effect transistors) that are voltage-controlled devices.
- BD140 carries three layers where one is the n-doped layer that stands between the two p-doped layers. The n-layer represents the base pin while the other two layers represent the emitter and collector terminals.
- As this a PNP transistor, here majority carriers are holes. Though both electrons and holes are necessary for the conductivity process inside the transistor, here in case of PNP transistor electrons are minority carriers and holes are majority carriers in contrast to NPN transistors where holes are minority carriers and electrons are majority carriers.
- Both NPN and PNP are termed as bipolar junction transistors and are used for amplification and switching purposes.
- NPN transistors, however, are preferred over PNP transistors for amplification purposes. Why? Because the movement of electrons inside the transistor is faster than the movement of holes in the PNP transistor.
- In rare cases, PNP and its complementary NPN are incorporated into a single electrical circuit.
BD140 Datasheet
Datasheet helps you understand the main and common characteristics of the transistor BD140. Before you install this component into your project, check the datasheet to get a hold of the main features of the transistor.
Click below to download the datasheet of BD140.
BD140 Pinout
The BD140 consists of three pins named:
1: Emitter
2: Collector
3: Base
The following figure shows the pinout of the BD140 transistor.
- These pins are also called terminals which are used for the external connection with the electrical circuit. All these terminals come with different functionality and different doping concentration.
- The emitter terminal is highly doped as compared to collector and base terminals. Moreover, this emitter pin consists of the entire transistor current.
BD140 Working Principle
- Whether it’s NPN or PNP transistor, the base pin is used to control the current. This base terminal controls the number of electrons in NPN transistors, and the number of holes in PNP transistors.
- In the case of this BD140 PNP transistor, when there is no current at the base side, the transistor is turned ON and both collector and emitter pins, in this case, are forward biased.
- And when there is current present at the base side, the transistor is turned OFF, leaving both collector and emitter terminals reverse biased.
Difference between NPN and PNP transistors
- Recall the base terminal is used to bias the transistor in both NPN and PNP transistors. There are, however, differ in terms of current directions and voltage polarities.
- In PNP transistor the flow of current is from emitter to collector terminal while it is opposite in NPN transistor i.e. collector to emitter terminal.
- In PNP transistor the current flows from emitter to collector terminal when a negative voltage supply is given to the base side and current flows from collector to emitter terminal in NPN transistor when positive supply is given to the base pin.
BD140 Power Ratings
The following figure shows the absolute maximum ratings of BD140.
Absolute Maximum Ratings BD140 |
No. |
Rating |
Symbol |
Value |
Unit |
1 |
Collector-Emitter Voltage |
Vce |
80 |
V |
2 |
Collector-Base Voltage |
Vcb |
80 |
V |
3 |
Emitter-Base Voltage |
Veb |
5 |
V |
4 |
Collector Current |
Ic |
1.5 |
A |
5 |
Current Gain |
hfe |
40 to 250 |
|
6 |
Power Dissipation |
Ptot |
12.5 |
W |
7 |
Storage Temperature |
Tstg |
-55 to 150 |
C |
-
- These are known as stress ratings. While working with the component, make sure ratings don’t cross the absolute maximum ratings, else they can severely damage the component and ultimately the entire project.
- The collector-emitter and collector-base voltages are 80V and only 5V are needed for the emitter-base terminals.
- This 5V voltage indicates that only 5V is required to bias the transistor and start the overall transistor action.
- The collector-current carries 1.5A which signals the amount of loads it can support.
- The power dissipation is 12.5W which illustrates the amount of energy it releases during its operation.
BD140 Alternatives
- The BD136 and BD138 are the alternatives to BD140.
- Before you incorporate these alternatives into your project, check the pinout of the alternatives. At times, the pinout of the BD140 differs from the pinout of the alternatives.
- The complementary NPN transistor to BD140 is BD139.
BD140 Applications
BD140 is used in the following applications.
- Used for amplification and switching purposes.
- Used to drive loads under 1.5A.
- Used in H-bridge circuits and motor control circuits.
- Used in Astable and Bistable multivibrators.
BD140 Physical dimensions
- The following figure shows the physical dimensions of transistor BD140.
- By looking at these dimensions, you can audit the total space required for the entire electrical project and you can install this component in the desired place.
That’s all for today. I hope you enjoyed the article. If you have any question, you can reach me in the comment section below, I’d love to help you according to the best of my knowledge. You are most welcome to pop your feedback and suggestions regarding the content I’m sharing, they will help us craft content based on your needs and requirements. Thanks for reading the article.
Introduction to BC558
Hello Everyone! Happy to see you here. I welcome you on board. In this post today, I’ll be discussing the Introduction to BC558.
BC558 is a bipolar junction transistor used for amplification and switching purposes. It belongs to the PNP transistor family and is available in a TO-92 package. It contains collector current 100mA, indicating it can drive load under 100mA.
I've previously detailed the
Introduction to BC640 &
BC327.
I suggest you read this entire post as I will cover a complete introduction to BC558 explaining pinout, working, power ratings, physical dimensions, datasheet, and applications of BC558.
Let’s jump right in. Continue reading.
Introduction to BC558
- BC558 is a PNP bipolar junction transistor mainly used for switching and amplification purpose.
- It is made up of three terminals called collector, base, and emitter. All these terminals are different in terms of size, functions, and doping concentrations.
- The small current change at the base side is used to induce large current change across other terminals. This phenomenon is used for amplification purposes.
- BC558 is composed of three layers where one is an n-doped layer and others are p-doped layers. The n-doped layer is sandwiched between two p-doped layers.
- Both electrons and holes play a crucial rule for the transistor conductivity because here in the case of PNP transistor holes are majority carriers in contrast to NPN transistors where electrons are majority carriers.
- BC558 is also known as a current-controlled device where small current at the base terminal produces a large current change across the remaining terminals.
- This PNP transistor encompasses amplification factors ranging from 110 to 800. This factor actually predicts the amplification capability of the transistor. Simply put, it defines the capacity of the transistor it can amplify the input signal.
- BC558 is composed of silicon material and comes in a TO-92 package.
- The peak collector current is recorded 200mA that makes it a suitable pick for the amplification purpose.
BC558 Datasheet
While working with the electronic component, it’s wise to look at the datasheet that helps you better understand the main characteristic of the component. Click below to download the datasheet of BC558.
BC558 Pinout
BC558 contains three pins named:
- 1: Collector
- 2: Base
- 3: Emitter
As this is a PNP transistor, here current flows from emitter to collector as opposed to NPN transistors where current flows from the collector to emitter.
- And in both cases, the base terminal is the component that plays a vital role in the overall transistor action.
The following figure shows the pinout of BC558.
- In this case of PNP transistor, the base terminal controls the number of holes in contrast to the NPN transistor where it controls the number of electrons.
- And base terminal is negative in PNP transistors where it's positive in NPN transistors.
BC558 Working Principle
- When there is no current at the base side, both emitter and collector will be closed and the transistor is turned ON, indicating the forward-biased mode of the transistor.
- And when there is current at the base terminal both emitter and collector will remain opened indicating reverse biased mode of the transistor.
- The base terminal controls the conductivity of the transistor while the emitter terminal carries the whole current of the transistor.
- The emitter terminal is highly doped as compared to the other two terminals. The base is negative while both emitter and collector are positive.
BC558 Power Ratings
The following table represents the absolute maximum ratings of the BC558 transistors.
Absolute Maximum Ratings BC558 |
No. |
Rating |
Symbol |
Value |
Unit |
1 |
Collector-Emitter Voltage |
Vce |
80 |
V |
2 |
Collector-Base Voltage |
Vcb |
80 |
V |
3 |
Emitter-Base Voltage |
Veb |
5 |
V |
4 |
Collector Current |
Ic |
100 |
mA |
5 |
Collector Peak Current |
Icm |
200 |
mA |
6 |
Power Dissipation |
Ptot |
500 |
mW |
7 |
Storage Temperature |
Tstg |
150 |
C |
- These are the stress ratings. Before you install this component in your project, make sure these ratings don’t exceed the recommended ratings, else they can severely affect the overall working of the component and in the worst cases, can damage the entire project.
- Plus, if these ratings are applied for an extended time, the device reliability can be severely damaged.
Difference between PNP and NPN transistors
- Both transistors almost operate similarly with few exceptions. The voltage polarities and current directions will be reversed.
- In NPN transistor current flows from collector to emitter and from emitter to collector in case of PNP transistor. And holes are the majority charge carriers in PNP transistors and electrons are major charge carriers in the NPN transistors.
- And in both cases, the base terminal is responsible for the transistor conductivity i.e. it controls the number of electrons in case of NPN transistor and the number of holes in the case of PNP transistors.
- It is important to mention NPN are preferred over PNP transistors for amplification purpose because the mobility of electrons is far better and quicker than the movement of holes in PNP transistors.
- In some cases, however, both are incorporated into a single project to attain amplification.
BC558 Alternatives
The following are a few alternatives to the BC558 transistor.
- TIP127
- BC157
- 2N3906
- BC556
- BD140
- 2SA1943
- S8550
- TIP42
Before you incorporate these alternatives into your projects, pay careful heed to the pinout of these alternative transistors, as it’s possible the pinout of the alternatives may differ from the BC558 pinout.
BC558 Applications
The following are some applications of BC558:
- Used for amplification and switching purposes.
- Used to control motor.
- Employed for impedance buffering.
- Employed to drive loads under 100mA.
- Incorporated in robotics and instrumentation projects.
- Used in H- Bridge circuits and current mirror circuits.
- Used for constructing Astable bistable and Bistable multivibrators.
- Used in comparator and oscillator circuits.
BC558 Physical dimensions
The following figure shows the physical dimensions of the BC558 transistor.
I hope you understand what is BC558 transistor and why it is used for. If you are unsure or have any question in your mind, you can leave your comment in the section below, I’ll help you out with the best of my knowledge. Feel free to keep us updated with your valuable suggestions and feedback, they prove handy and help us create quality work as per your requirements. Thank you for reading this article.
Introduction to BC559
Hi Guys! Hope this finds you well. I welcome you on board. Thank you for clicking this read. In this post today, I’ll be explaining the Introduction to BC559.
BC559 is a bipolar junction transistor used to drive loads under 100mA. It falls under the family of PNP transistors and is mainly known as a current-controlled device. Where small current at one terminal is used to drive large current change at the remaining two terminals.
Read this post all the way through, as I’ll be touching pinout, working, datasheet, physical dimensions, power ratings, and applications of a BC559 transistor.
Let’s get started.
Introduction to BC559
- BC559 is a PNP bipolar junction transistor mainly employed for amplification and switching applications.
- It is composed of silicon material and comes in TO-92 packaging. Based on the nature of applications and electronic projects, these transistors are also manufactured in TO-18 configuration.
- BC559 carries three terminals that are emitter, base, and collector. All these terminals are used for external connection with the circuit.
- There are three layers inside the PNP BC559 transistor where one n-doped layer stands between two p-doped layers. Here N layer represents the base terminal that is negative and the remaining two terminals are positive.
- The base terminal is still considered as the main terminal responsible for transistor action.
- Here base terminal controls the number of holes in contrast to the NPN transistor where the base is positive and controls the number of electrons.
- The emitter terminal emits the holes which are then collected by the collector terminal.
BC559 Datasheet
The datasheet gives you an overview of the main characteristics of the component. You can check the datasheet of this tiny component by clicking the link below.
BC559 Pinout
BC559 is incorporated with three terminals named:
- 1: Collector
- 2: Base
- 3: Emitter
The following figure represents BC559 pinout.
- Each terminal carries different doping concentrations and functionality as compared to the remaining two terminals. The emitter side is highly doped in contrast to the other two terminals.
BC559 Working Principle
- The working principle is simple and straight forward. When there is no current present at the base side, the transistor is turned ON and both emitter and collector are forward biased.
- And when current flows from the base terminal, the transistor is turned OFF and both emitter and collector terminals will be reverse biased.
- Though both electrons and holes contribute to conductivity, holes are major carriers in the case of this PNP transistor as opposed to NPN transistors where electrons are major carriers.
- It is important to note that NPN is preferred over PNP transistors for amplification purposes because the mobility of electrons is far better than the mobility of holes.
BC559 Power Ratings
The table given below contains the absolute maximum ratings of the BC559.
Absolute Maximum Ratings BC559 |
No. |
Rating |
Symbol |
Value |
Unit |
1 |
Collector-Emitter Voltage |
Vce |
30 |
V |
2 |
Collector-Base Voltage |
Vcb |
30 |
V |
3 |
Emitter-Base Voltage |
Veb |
5 |
V |
4 |
Collector Current |
Ic |
100 |
mA |
5 |
Power Dissipation |
Pd |
625 |
mW |
6 |
DC Current Gain |
hfe |
120 to 800 |
|
7 |
Storage Temperature |
Tstg |
-55 to 150 |
C |
- Both collector-emitter and collector-base voltage is 30V while emitter-base voltage is 5V indicating the only 5V is required to bias the transistor and start the transistor action.
- The collector current is 100mA means it can support loads under 100mA. Total device dissipation is 625mW and storage junction temperature is -55 to 155 C.
- You need to be very careful while taking these readings into consideration. If ratings exceed the desired ratings, they can terribly affect the device.
- And make sure these ratings you don’t apply for more than the required time, else they hurt the device reliability.
Difference between PNP and NPN Transistors
- Both transistors almost operate in a similar fashion i.e. base is the main terminal responsible for transistor action in both cases and emitter contains the entire current of the transistor.
- And the emitter terminal is highly doped as compared to other terminals in both cases.
- There are, however, some exceptions. The voltage polarities and current directions are reversed in both cases. Current flows from emitter to collector in case of PNP transistors while it moves from collector to emitter in case of NPN transistor.
- The base terminal is negative in PNP transistor while it’s positive in the case of NPN transistor. It acts as a control valve.
- Recall NPN transistors are preferred over PNP transistors for amplification purposes because the mobility of electrons is better than the mobility of holes.
- While base terminal controls the electrons in the case of NPN transistors and it controls the holes in the case of PNP transistors.
- It is important to note that both NPN and PNP transistors are interchangeable given that if a bipolar transistor is composed of two back-to-back diodes with the base terminal being the common terminal.
BC559 Alternatives
Following transistors can be used as alternatives to BC559.
- BC859 (SOT-23)
- BC858 (SOT-23)
- BC859W (SOT-323)
- BC858W (SOT-323)
While you aim to incorporate these alternatives into your project, check the pinout of the alternatives as it’s likely the pinout of the BC559 might differ from the pinout of the alternatives.
- Be on the safe side and do your due diligence before starting the project.
Complementary NPN transistors of BC559 are BC546 & BC548.
BC559 Applications
BC559 is used in the following applications.
- Finds applications in current mirror circuits.
- Used in H- Bridge circuits.
- Used for constructing Astable bistable multivibrators.
- Used to drive loads under 100mA.
- Finds application in comparator and oscillator circuits.
- Employed for switching and amplification purpose.
- Incorporated for impedance buffering.
BC559 Physical dimensions
BC559 comes in weight approx. 0.18g. The following figure represents the BC559 physical dimensions, helping you evaluate the space given for your project.
That was all about Introduction to BC559 transistor. I hope you find this article useful. If you are unsure or have any question, you can approach me in the section below, I’ll help you the best way I can. You are most welcome to pop your valuable feedback and suggestions in the comment section below, they help us produce quality content. Thank you for reading the post.
Introduction to BC560
Hello Friends! Hope this finds you well. I welcome you to another addition to the introduction series. In this post today, I’ll be discussing the Introduction to BC560.
BC560 is a general-purpose transistor mainly used to drive loads under 100mA as it carries collector current 100mA. It falls under the category of PNP transistors and is mainly used for amplification and switching purposes.
I suggest you read this entire post as I’ll detail everything about BC560 transistor covering pinout, working, power ratings, applications, and physical dimensions.
Continue reading.
Introduction to BC560
- BC560 is a PNP transistor mainly used for switching and amplification purpose. It comes with transition frequency 150MHz and junction temperature of 150 C.
- This PNP transistor contains three pins called emitter, base, and collector. These pins are used for external connections with the electronic circuit. The small current at the base side is used to produce large current change across other terminals.
- BC560 carries three layers where one is the n-doped layer that represents the base terminal and the other two are p-doped layers that represent emitter and collector respectively. The n-doped layer stands between two p-doped layers.
- As this is a PNP transistor, here current flows from emitter to collector as opposed to NPN transistor where current flows from collector to emitter.
- Also, here in PNP transistor holes are majority carriers… even though both electrons and holes play a key role in the conductivity of PNP transistors, here holes are majority carriers in contrast to NPN transistors where electrons are majority carriers.
- In both cases, however, the base terminal is the main component responsible for the overall electron action. Which is positive in the case of NPN transistor and is negative in the case of PNP transistor.
- Moreover, all these terminals are different in terms of their functionality and doping concentrations. The emitter side is more doped as compared to the other two terminals.
- Plus, the emitter terminal contains the overall transistor current. The emitter current is a sum of both collector and base current.
BC560 Datasheet
While scanning the datasheet of the component, you can get a hold of the main characteristics of the component. If you want to download the datasheet of the BC560 transistor, click below.
BC560 Pinout
BC560 carries three main terminals known as:
1: Collector
2: Base
3: Emitter
- These terminals are used for external connection with the circuit.
- The following figure shows the pinout of the BC560 transistor.
- It is wise to pay special heed to the pinout of the transistor before employing it in your project.
- Installing the component with the wrong configuration can damage the component and thus the entire project.
BC560 Working Principle
- The working principle of this PNP transistor is almost similar to NPN. In both cases, the base terminal triggers the transistor action.
- When there is no current available at the base terminal, the transistor is turned ON and both collector and emitter terminals are forward biased.
- And when current flows from the base side, the transistor is turned OFF, indicating both emitter and collector pins are reverse biased.
- It is important to note that… even though NPN and PNP transistors are used for amplification purposes, NPN transistors are preferred over PNP transistors since the mobility of electrons is far better and quicker than the mobility of holes.
BC560 Power Ratings
The table below carries the absolute maximum ratings of the BC560.
Absolute Maximum Ratings BC560 |
No. |
Rating |
Symbol |
Value |
Unit |
1 |
Collector-Emitter Voltage |
Vce |
45 |
V |
2 |
Collector-Base Voltage |
Vcb |
50 |
V |
3 |
Emitter-Base Voltage |
Veb |
5 |
V |
4 |
Collector Current |
Ic |
100 |
mA |
5 |
Power Dissipation |
Pd |
625 |
mW |
6 |
Transition Frequency |
ft |
100 |
MHz |
7 |
Storage Temperature |
Tstg |
-55 to 150 |
C |
- The collector-emitter and collector-base voltages are 45V & 50V respectively. While emitter-base voltage is 5V that means the only 5V is required to start the transistor action.
- The transition frequency is 100MHz and junction temperature is 150 C. The collector current is 100mA, projecting it can support loads under 100mA.
- These are the stress ratings which if exceed the required ratings, can hurt the device. And if you apply these ratings more than the required time they can damage the device reliability.
Difference between PNP and NPN Transistors
- Both NPN and PNP transistors operate almost in a similar fashion. The base pin is the main terminal that plays a key role in triggering the transistor action in both cases.
- The emitter side is highly doped and contains the entire current of the transistor.
- Voltage polarities and current directions create a difference between both NPN and PNP transistors.
- Current flows from collector to emitter in case of NPN transistor while it flows from emitter to collector in case of PNP transistors. The base is negative in PNP transistor while it’s positive in the case of NPN transistor.
- Recall, mobility of electrons is better than the mobility of holes, the reason NPN are preferred over PNP for amplification purposes.
- The base terminal acts as a control value in both cases where it controls the holes in PNP transistor and it controls the electrons in case of NPN transistor.
- Note that, both PNP and NPN transistors are interchangeable only if a bipolar junction transistor is made up of two back-to-back diodes with the base terminal as the common terminal.
BC560 Alternatives
The following are the SMD alternatives of BC560:
- BC860W (SOT-323)
- BC857W (SOT-323)
- BC857 (SOT-23)
- BC860 (SOT-23)
The complementary NPN to the BC560 transistor is BC550.
BC560 Applications
BC560 can be employed in the following applications.
- Used in current mirror circuits.
- Used for switching and amplification purpose.
- Employed for constructing Astable bistable multivibrators.
- Employed for impedance buffering.
- Incorporated to drive loads under 100mA.
- Finds applications in H- Bridge circuits.
- Used in comparator and oscillator circuits.
BC560 Physical dimensions
The following figure represents the physical dimensions of the transistor BC560. While getting a hold of these dimensions you can evaluate the space required for your entire electrical project.
That’s all for today. I hope you’ve got a clear insight into the Introduction to BC560 transistor. If you have any question, you can pop your query in the section below, I’ll help you the best way I can. You are most welcome to share your valuable feedback and suggestions in the comment section below, they help us produce quality content. Thank you for reading the article.
Introduction to BC517
Hi folks! Hope you’re well today. I welcome you on board. In this post today, I’ll detail the complete Introduction to BC517.
BC517 is an NPN bipolar junction transistor made up of silicon material and comes in a TO-92 package. It carries collector-current 1A, projecting it can drive loads under 1A. Total power dissipation is 625mW, indicating it releases power around 625mW while working. Collector-emitter and collector-base voltages are 30 and 40 respectively. The emitter-base voltage is 10V which means it requires only 10V to trigger the electron action inside the transistor.
Read this post all the way through as I’ll be documenting pinout, working, power ratings, alternatives, applications, and physical dimensions of transistor BC517.
Let’s get started.
Introduction to BC517
- BC517 is a bipolar junction transistor that belongs to the NPN transistor family. It comes in the TO-92 package and is composed of silicon material.
- It contains three pins known as collector, base, and emitter. The small input current at the base side is used to produce large current at the remaining two terminals. This phenomenon is used for amplification purposes.
- BC517 comes with three layers where two are n-doped layers and one is a p-doped layer that stands between the two n-doped layers. The p-doped layer represents the base terminal which is positive while the other two terminals are negative.
- One important feature that makes this transistor unique is its high amplification factor. It carries the current gain or amplification factor around 30,000.
- The amplification factor is the capacity of any transistor it can amplify the input current. Simply put, the factor by which the current at the base terminal is amplified at the other two terminals.
BC517 Datasheet
- Before working with any component, it is wise to get a hold of the datasheet of that component that highlights the main characteristic of the device, helping you better understand the component.
- Click below to download the datasheet of the transistor BC517.
BC517 Pinout
The BC517 comes with three pins called:
1: Collector
2: Base
3: Emitter
The following figure shows the pinout of BC517.
- These are also called transistor terminals that are mainly used for external connection with the electrical circuit. All these pins are different in terms of functionality and doping concentration.
- Both base and collector terminals are less doped compared to the emitter terminal. Plus, the emitter terminal carries the 100% transistor current. It is a sum of both base and collector current.
BC517 Pin Configuration
BC517 transistor comes in the following three main configurations:
1: Common emitter configuration
2: Common collector configuration
3: Common base configuration
- Common emitter configuration carries the suitable voltage and current ratings required for amplification purposes. The reasons this configuration is preferred for amplification over the remaining two configurations.
- The amplification factor or current gain is an important factor of the transistor that mainly projects the capacity of any transistor it can amplify the current. It is denoted by ß.
- In BC517, the amplification factor is 30,000 which is far high than other transistors in the market. It is a ratio between output energy and input energy i.e. ratio between collector current and the base current.
- The current gain is another important factor used to describe the nature of the transistor. It is denoted by a and is known as alpha. It is a ratio between collector current and emitter current. The alpha value is always less than 1, commonly stands from 0.5 to 1.
BC517 Working Principle
- The base side is the key terminal responsible for the overall transistor action. The base terminal gets biased when a voltage is applied to this terminal.
- The base terminal acts like an electron valve that controls the number of electrons passing through the base pin. The base terminal operates similarly in the PNP transistor but here it controls the number of holes passing through it.
- During the amplification process, the small current at the base side is amplified and produced across the other terminals.
- And when BC517 acts like a switch, it converts the small current available at one side of the transistor into a larger current across the other terminals of the transistor.
- As this is an NPN transistor, here the base terminal is positive with respect to the emitter side and the emitter voltage is less positive than the collector voltage.
Moreover, the collector terminal is laced with the resistor to limit the flow of current.
BC517 Power Ratings
The following table shows the absolute maximum ratings of transistor BC517.
Absolute Maximum Ratings BC517 |
No. |
Rating |
Symbol |
Value |
Unit |
1 |
Collector-Emitter Voltage |
Vce |
30 |
V |
2 |
Collector-Base Voltage |
Vcb |
40 |
V |
3 |
Emitter-Base Voltage |
Veb |
10 |
V |
4 |
Collector Current |
Ic |
1 |
A |
5 |
Current Gain |
hfe |
30,000 |
|
6 |
Power Dissipation |
Pd |
625 |
mW |
7 |
Storage Temperature |
Tstg |
-55 to 150 |
C |
- Collector-emitter and collector-base voltages are 30 & 40 respectively. While the emitter-base voltage is 10V i.e. it needs 10V to start the electron action in the transistor.
- The power dissipation is 625mW and junction temperature varies from -55C to 150C. The collector-current is 1A which means it can drive loads under 1A.
- Be careful while considering these ratings as ratings above these absolute maximum ratings can adversely affect the performance of the component. Also, don’t apply these ratings for more than the required time, else it might affect the device reliability.
BC517 Alternatives
The PNP complementary to BC517 is BC516.
BC517 Applications
It is used in the following applications.
- Used for amplification and switching purposes.
- Used in sensor circuits.
- Employed as an audio preamplifier and amplifier stages.
- Can drive loads under 1A.
- Used in battery chargers.
- Used in H-bridge and Astable and Bistable multivibrators.
- Used to control motor.
BC517 Physical dimensions
The following diagram shows the physical dimensions of transistor BC517. It will help you identify the space required for your electrical project.
That’s all for today. I hope you find this article useful. If you have any queries, you can pop your question in the section below and I’ll try my best to help you the best way I can. Moreover, share your feedback and suggestions in the section below, they help us produce quality work. Thanks for reading this post.
Introduction to BC557
Hi Guys! Hope you’re well. I welcome you on board. Thank you for viewing this read. In this post today, I’ll walk you through the Introduction to BC557.
BC557 is a bipolar junction transistor with DC current gain 300. It falls under the category of PNP transistors where one N-doped layer stands between the two P-doped layers. The continuous collector current is 100mA means it can drive load under 100mA. BC557 comes in the TO-92 package and is mainly used for switching and amplification purpose.
Before I bore you to tears, let’s dive in and read the complete introduction to BC557 covering datasheet, pinout, working principle, power ratings, physical dimensions, and applications.
Continue reading.
Introduction to BC557
- BC557 is a bipolar junction transistor that falls under the family of PNP transistors.
- As this is a PNP transistor, there will be no current at the base terminal when the transistor is turned ON and in that case, both emitter and collector will be forward biased.
- And when voltage is applied at the base terminal, the transistor is turned OFF and both emitter and collector will be reverse biased.
- It carries three terminals called collector, base, and emitter that are commonly used for external connection with the electronic circuit.
- All these terminals are different in terms of their size and doping concentration. The emitter is highly doped against both collector and emitter terminals.
- BC557 contains there layers i.e. two p-doped layers and one n-doped layer. The n-doped layer lies between the two p-doped layers. Here the base terminal is negative while emitter and collector will be positive.
- The maximum collector current is 100mA indicating we cannot drive loads through the transistor that utilizes more than 100mA current.
- It is mainly used for amplification purposes. Amplification is the process by which transistor boosts the small input voltage into a large output voltage i.e. small audio signal will be amplified into a large audio signal.
BC557 Datasheet
If you want to download the BC557 datasheet, click the link given below. This will help you understand the main characteristics of the BC557 transistor.
BC557 Pinout
BC557 contains three terminals that are known as:
- 1: Collector
- 2: Base
- 3: Emitter
The following figure shows the pinout of BC557.
As this is a PNP transistor, here current flows from emitter to collector and base controls the amount of current. And you may know already, in PNP transistor current flows in through the collector terminal and it drains out through emitter terminal.
BC557 Working Principle
- In PNP transistor holes are majority carriers as opposed to NPN transistors where electrons are majority carriers. Although holes are majority carriers, the base terminal still plays a key role in the overall action of the transistor.
- Now holes are emitted from the emitter instead of electrons in the NPN case, and they are collectors by collector terminal.
- BC557 is called the current controlled device where small current present at the base side is used to control the large current at the remaining terminals.
- Recall, when the transistor is turned OFF there is a current at the base side and when the transistor is turned ON there is no current present at the base terminal.
BC557 Power Ratings
The following table represents the absolute maximum ratings of BC557.
Absolute Maximum Ratings BC557 |
No. |
Rating |
Symbol |
Value |
Unit |
1 |
Collector-Emitter Voltage |
Vce |
45 |
V |
2 |
Collector-Base Voltage |
Vcb |
50 |
V |
3 |
Emitter-Base Voltage |
Veb |
5 |
V |
4 |
Collector Current |
Ic |
100 |
mA |
5 |
Power Dissipation |
Ptot |
500 |
mW |
6 |
Peak Collector Current |
Icm |
200 |
mA |
7 |
Junction Temperature |
Tstg |
150 |
C |
- The transistor’s amplification capacity is determined by the amplification factor that is a ratio between collector current and emitter current. It exhibits the actual value of the current or input audio signal that the transistor can amplify.
- Make sure, these ratings remain under control and don’t exceed the recommended values.
- If values surpass the standard values, they can affect the overall performance of the component, and thus damage the project you’re working on.
- Also, if these ratings are applied with maximum time, they can ultimately affect device reliability.
Difference between PNP and NPN Transistors
- Though both transistors are used for amplification and switching purposes, there are few exceptions.
- In PNP transistor, the current flows from the emitter side to the collector side and in case of NPN transistor current flows from collector to emitter, however, in both cases, the base is the main terminal that controls the amount of current.
- In PNP transistors, base controls the number of holes and in NPN it controls the number of electrons. As conductivity is carried out by electrons in NPN transistors, they prove handier for amplification purposes compared to PNP transistors because the mobility of electrons is far better and quicker than the movement of holes in PNP transistors.
- In PNP transistor the base side is negative compared to both emitter and collector while in case of NPN transistor base side is positive compared to remaining terminals.
- The emitter terminal is both cases is highly doped and carries the 100% current of the transistor.
- Both NPN and PNP transistors are different in terms of the applied source voltage.
In PNP transistor source voltage is applied across the emitter terminal and in case of NPN transistor it is applied at the collector side.
BC557 Alternatives
BC557 equivalent alternatives are:
- BC558
- BD140
- TIP42
- BC157
- S8550
- 2N3906
- 2SA1943
- TIP127
It’s wise to check the pinout of the alternatives before installing them into your electrical project as it’s likely the pinout of the alternatives may differ from the pinout of the BC557. Better do your due diligence beforehand.
BC557 Applications
BC557 is used in the following application:
- Used for switching and amplification purpose
- Used to drive load under 100mA
- Employed in robotics and instrumentation projects
- Used in motors for controlling current
BC557 Physical dimensions
The following figure shows the physical dimensions of BC557 to help you evaluate the desired space of your electronic project.
That’s all about Introduction to BC557. I hope you like this post. If you have anything to add, you can share your insight in the section below. And if you need my technical help regarding the usage of this component in your project, I’m available to help you the best way I can. Thank you for reading this post.
Introduction to BC337
Hi Friends! Hope you’re well today. I welcome you on board. In this post today, I’ll walk you through the Introduction to BC337.
BC337 is a general-purpose transistor mainly used for lower power audio amplification and switching purposes. It belongs to the NPN transistor family and comes with a maximum gain of 630. The continuous collector current is 800mA indicating it can drive loads under 800mA.
I’ll be discussing the complete introduction to BC337 in this post covering pinout, working, power ratings, alternatives, applications, and physical dimensions of BC337.
Stay tuned.
Introduction to BC337
- BC337 is an NPN transistor mainly used for lower power audio amplification and switching purposes.
- It contains three terminals known as emitter, base, and collector. The small current chance at the base side is used to produce large current change at the remaining terminals. This phenomenon is used for amplification purposes.
- BC337 comes with three layers i.e. one p-doped layer and two n-doped layers. The p-doped layer is sandwiched between two n-doped layers. The base terminal is positive and the remaining two terminals are negative.
- As this is an NPN transistor the main charge carriers would be electrons. Although both electrons and holes take part in conductivity, electrons are major carries in this case as opposed to PNP transistors where holes are major carriers.
- It is important to note that NPN transistors are preferred over PNP transistors because the mobility of electrons is far better and quicker than the mobility of holes. In some cases, a combination of both NPN and PNP transistors is used in an electrical project.
- In this NPN transistor current flows from collector to emitter in contrast to PNP transistor where current flows from emitter to collector. In both cases, however, the base terminal is the main component responsible for the overall transistor action.
- When voltage is applied at the base terminal it gets biased and the emitter terminal starts emitting the electrons which are then controlled by the base terminals and thus collected by the collector terminal.
BC337 Datasheet
Before employing any component into your project, it’s always wise to scan the datasheet that helps you better understand the characteristics of the component. Click below to download the datasheet of BC337.
BC337 Pinout
The following figure shows the BC337 pinout diagram.
BC337 comes with three terminals called:
1: Collector
2: Base
3: Emitter
- All these terminals are mainly used for external connection with the electronic circuit. All these terminals are different in terms of their functionality and doping concentration.
- The emitter terminal is highly doped as compared to the remaining two terminals. And the emitter terminal encompasses the entire current of the transistor. The emitter current is a sum of collector current and base current.
BC337 Pin Configuration
BC337 is mainly used in three configurations as follow:
1: Common emitter configuration
2: Common collector configuration
3: Common base configuration
- Common emitter configuration carries the suitable voltage and current ratings needed for amplification purposes. This configuration is used for amplification purposes.
- The amplification factor demonstrates the nature of amplification. It is a ratio between collector current and base current and is denoted by ß.
- The current gain is another important factor that is a ratio between collector current and emitter current. It is denoted by a and is known as alpha. The alpha value lies from 0.95 to 0.99 but mostly its value is taken as unity.
BC337 Working Principle
- The base terminal plays a key role in starting the overall transistor action. When the voltage is applied at the base side, it gets biased and starts the electron action in the transistor. The base side actually acts like a control value that controls the electrons emitting from the emitter terminal which are then collected by the collector side.
- The small current at the base terminal is used to control large current at the remaining two terminals. This process is used in amplification purposes.
- BC337 also acts as a switch. When it acts as a switch, it converts the small current present at the one terminal side into a much larger current across the remaining transistor terminals.
- The base pin is positive with respect to both emitter and collector terminals. While the voltage at the collector side is always positive with respect to the emitter pin.
- The resistor is employed at the collector side to control the flow of current.
BC337 Power Ratings
The following table represents the absolute maximum ratings of the component BC337.
Absolute Maximum Ratings BC337 |
No. |
Rating |
Symbol |
Value |
Unit |
1 |
Collector-Emitter Voltage |
Vce |
45 |
V |
2 |
Collector-Base Voltage |
Vcb |
50 |
V |
3 |
Emitter-Base Voltage |
Veb |
5 |
V |
4 |
Collector Current |
Ic |
800 |
mA |
5 |
Current Gain |
hfe |
100 to 630 |
|
6 |
Transition Frequency |
ft |
100 |
MHz |
7 |
Storage Temperature |
Tstg |
-55 to 150 |
C |
- The collector-emitter voltage is 45V and the collector-base voltage is 50V. While the emitter-base voltage is 5V. The transition frequency is 100MHz.
- These are the stress ratings. Make sure these ratings don’t surpass the absolute maximum ratings, else they can damage the component and thus the entire project.
- Also, if these ratings are applied more than the required time, they can damage the device reliability.
BC337 Alternatives
The following transistors can be used as a replacement to BC337.
The SMD alternatives of the BC337 are
- 2SC3912 (SOT-23)
- 2SC3914 (SOT-23)
- BCX19 (SOT-23).
- 2SC3913 (SOT-23)
- BC817 (SOT-23)
- 2SC3915 (SOT-23)
It is wise to evaluate the pinout of the alternatives used for the project because it’s likely the pinout of the BC337 may differ from the pinout of the alternatives. Do your due diligence to avoid any hassle later.
- The PNP complementary to BC337 is BC327.
BC337 Applications
The following are some applications of the transistor BC337.
- Used for switching and amplification purpose.
- Employed in electronic motors to control current.
- Used in the push button.
- Employed in robotics and instrumentation.
- Used in Darlington pair circuits.
- Employed in Astable and Bistable multivibrators.
BC337 Physical dimensions
The following figure shows the physical dimensions of the component BC337. It will help you audit the space required for the component before incorporating it into your project.
This is it. I hope you’ve got a clear insight into the component BC337. If you have any question regarding BC337, you can pop your question in the comment below, I’d love to help you the best way I can. You are most welcome to share your valuable suggestions and feedback in the section below, they assist us to create quality content. Thank you for reading this post.
Analog Vibration Sensor Library for Proteus
Hi Guys! Glad to see you here. I welcome you on board. In this post today, I’ll be discussing Analog Vibration Sensor Library for Proteus. I have already shared the digital
Vibration Sensor Library for Proteus, you should check that as well.
I’ve been adding brand new libraries for proteus covering sensors and Arduino boards. I’ve recently discussed
Analog PIR Sensor Library for Proteus and
Analog Flex Sensor Library for Proteus. You may be stuck into thinking I’ve previously shared those libraries but they were libraries covering digital PIR and digital Flex sensors, here we discussed
analog libraries for both PIR and Flex sensors.
Before I pen down how to download and simulate Analog Vibration Sensor Library for Proteus, let’s discuss what is vibration sensor first.
A vibration sensor is mainly used to monitor the vibration of industrial machines. It is also called a piezoelectric that plays a crucial role in the proper working of industrial machinery. If vibration values increase from the industry standards, they can severely affect the overall working of the machine and in the worst case can put the machine at a grinding halt.
To avoid this, we use vibration sensors that give the warning signal if vibration exceeds the desired values. These sensors are attached to the alarm system that produces audible sound indicating the machine is in danger, thus results in the deactivation of the entire machine.
Vibration sensors are based on the piezoelectric effect to observe the small changes in pressure, acceleration, force, and temperature. These changes are converted into an electrical signal. Air fragrance can also be monitored by vibration sensors. They monitor the air fragrance and detect its capacitance and quality.
I hope you’ve got a clear idea about the vibration sensor now we’ll download and run the Analog Vibration Library for Proteus. I’ve added both a simple simulation of the vibration sensor and a simulation with the Arduino Board.
Let’s get started.
Analog Vibration Sensor Library for Proteus
- Click the link given below to download the Analog Vibration Sensor Library for Proteus.
- As you download this file, it returns further two files named Proteus Library and Proteus Simulations.
Analog Vibration Sensor Library for Proteus
Click the Proteus Library folder that contains four files as follow:
- VibrationSensorAnalogTEP.HEX
- VibrationSensorTEP.HEX
- VibrationSensorTEP.IDX
- VibrationSensorTEP
Now copy all files given above and place them into the library folder of your Proteus software.
- In case you don’t have proteus software in your system, you can read this post covering how to download and install proteus software.
- After adding the above files, start the proteus software and if it’s already running, close the software and restart again.
- Now click the ‘P’ button to search for the ‘analog vibration sensor’ libraries that you’ve recently placed.
- As you search it, it will return the figure as given below:
- Select the sensor and click OK. Now you’ll see your cursor has now started blinking with the sensor that shows you can place your analog vibration sensor anywhere in the workspace available on the proteus software.
- As you place your sensor, it will show the figure below:
Now we'll look into the analog vibration sensor pinout.
Vibration Sensor Pinout
The vibration analog sensor contains 4 pins as follows.
- OUT = First is an OUT pin that is connected with a voltmeter that represents the output voltage against the variable resistor attached to the TestPin.
- GND = Second is a ground pin that is attached to ground voltage.
- Vcc = Third is the voltage supply pin that gets 5V to power the vibration sensor.
- TestPin = Forth is the TestPin. This pin is only available in the proteus simulation. You don’t find it on the analog vibration sensor in real. When this pin is LOW, it shows no vibration and when this pin is HIGH it represents the vibration on the machine.
Adding HEX File
Now we’ll add the HEX file to run our vibration sensor simulation. Right-click the sensor and reach the ‘edit properties’ option and double-click the sensor it will pop up the same edit properties panel.
Browse the Sensor’s HEX file option and look for the HEX file.
You can find the HEX file in the library folder. Same HEX file that we have recently placed in the library folder.
Select this HEX file and click OK. Now we’ll attach a simple circuit with the vibration sensor to run our simulation.
LC Circuit
- We need to design a simple circuit to run this sensor in the proteus workspace. We’ve designed and attached the LC circuit with the OUT pin of the vibration sensor.
- And TestPin is connected with a variable resistor. Both variable resistance and voltage we get on the voltmeter attached with the OUT pin are inversely proportional to each other.
- When variable resistance is set to the maximum value the voltage on the voltmeter will be zero and when variable resistance is set to the minimum value (zero) it shows the maximum voltage i.e. 4.98V on the voltmeter.
When you run the simulation it will return the result below:
- You can see the voltage appearing on the left vibration sensor placed on the proteus workspace is 2.56V because TestPin attached with the variable resistor is set to almost half of the resistance value.
- I told you earlier I’ll show you both simple simulation and the vibration sensor simulation with the Arduino Board. If you are interested in the Arduino Library for Proteus, check this post where I have added six Arduino Boards Libraries for Proteus.
Now connect the voltage on the OUT pin with the analog pin i.e. A0 of the Arduino Board:
When variable resistance is maximum the voltage on the voltmeter will be zero and its equivalent analog value across LCD attached with the Arduino Board will be 0019 and when the resistance on the variable resistor is minimum the voltage will be 4.98V and its equivalent analog value on the LCD will be 1019.
This is it. I hope, you’ve got a clear insight into how to download Analog Vibration Sensor Library for Proteus. If you have any questions, you can ask me in the comment section below. I’d love to help you with the best of my expertise. Feel free to pop your suggestions about the libraries you think should be included in the proteus library database, I’ll design and add them to the database. Thank you for reading this article.
Introduction to TIP3055
Hello friends, I hope you all are doing great. In today's tutorial, we are gonna have a look at detailed
Introduction to TIP3055. TIP3055 is a silicon epitaxial-ignoble
NPN transistor, which is assembled in TO-218 malleable parcels. It is the best device for power swapping circuits, parallel and series controllers (regulators), output phases and high power amplifiers. Its corresponding PNP transistor is TIP2955.
It is a universal device used in many industrial projects where audio amplification is required. Its structures are attractive much the identical excluding for the maximum power indulgence that is a slightly lesser. In today’s post, we will have a look at its fortification, smashup, prominence, proposals, etc. I will also share some links where I have correlated it with other microcontrollers. You can also get more material about it in comments, I will guide you more about it. So, let’s get started with a basic
Introduction to TIP3055.
Introduction to TIP3055
- TIP3055 is a silicon epitaxial-ignoble NPN transistor, which is assembled in TO-218 malleable parcels. It is the best device for power swapping circuits, parallel and series controllers (regulators), output phases and high power amplifiers.
- It is prevailing in TO-247 pouring and it frequently used varied amplifiers initiatives.
- This module uses moderate power during its working, it uses 70 voltage across emitter and collector. It consumes fifteen amperes of current at the collector.
- It is the finest option for advanced steadfastness audile amplifier output point.
- This component has termination voltage Vceo (IB =0) 60 volts.
- It has a unique extensive liability and particular excellence formation.
- Its Stowage temperature is -65 to 150 C and maximum working intersection temperature is 150 C.
Pinout of TIP3055
- These are the main pinout TIP3055 which are well-defined beneath.
-
Pin# |
Type |
Parameters |
Pin#1 |
Emitter |
The emitter is for an external drive of current. |
Pin#2 |
Base |
The base administers the biasing of the transistor. It vagaries the state of the transistor. |
Pin#3 |
Collector |
The collector is for the current inside drive. It is related to the load. |
Lest see a diagram of the pinout.
Entire Maximum Ratings of TIP3055
Now we discuss the rating parameters of TIP3055.
Symbols |
Value |
Parameters |
VCBO |
100 V |
The voltage across collector and emitter (IE = 0). |
VCER |
70 V |
The voltage across emitter and collector (RBE = 100 ?). |
VCEO |
60 V |
The voltage across emitter and collector at (IB = 0). |
VEBO |
7 V |
The voltage across the collector and base (IC = 0). |
IC |
15 A |
The current value at the collector. |
IB |
7 A |
The value of current at the base terminal. |
Ptot |
90W |
Dissipation power at Tc =25°C. |
Tstg |
-65 to 150 C |
Storing temperature. |
TJ |
150 C |
Maximum Working intersection temperature. |
Now we discuss the electrical characteristics of TIP3055.
Electrical characteristics
These are some important electrical characteristics.
Symbols |
Test Conditions |
Parameters |
ICEX |
VCE = 100 V
TC = 150 C |
The value of collector cut-off current (VBE = -1.5 V). |
ICEO |
VCE = 30 V |
The value of collector cut-off current (IB = 0). |
IEBO |
VEB = 7 V |
The value of emitter cut-off current (IC = 0). |
VCEO |
IC = 200 mA |
Collector-emitter supporting voltage (IB = 0). |
VCER |
IC = 200 mA |
Collector-emitter supporting voltage (RBE = 100 ?) |
VCE |
IC = 4 A
IB = 400mA
IC = 10 A
IB = 3.3 A
|
Collector-emitter permeation voltage.
|
VBE |
Ic=4A VCE = 4 V |
It is the voltage across base and emitter. |
hFE |
IC = 4 A
IC = 10 A
VCE = 4 V 20
VCE = 4 V 5
|
It is DC current gain. |
Working of TIP3055
- Now we discuss the working of TIP3055 by a circuit. The corresponding circuit components and its connection are explained below let's discuss them with the details.
- This is the circuit of amplification of power in which I used TIP3055 and TIP2955 transistors as amplifiers which provides power up to 140RMS.
- This circuit is manufactured miniature and very modest, the bulwark portion is prepared by using IC ua741 or LM741 as op-amp.
- The ultimate transistor I have stated using TIP3055 and TIP2955 transistors, or you can elevate by adding some transistors or also swap with higher output power, for example using 2SC5200 and 2SA1943.
- We can power this circuit by balanced 45V voltage, power circuit arrangement and also PCB Layout are shown in the given diagram.
Circuit Component Description
- The components which I used in this circuit is explained below with their rating values.
- R1=100K, R2=1k, R3=1K, R4=15K, R5=15K, R6=1K, R7=47R, R8=47R, R9=47R, R10=470R, R11=470R, R12=47R, R13=0, 22 - 0, 5R/5W, R14=0, 22 - 0, 5R/5W R15=56K, C1=220N, C2=100u/25V, C3=220u/25V, C4=220u/25V, C5=33p, C6=22p, RV1=TRIMMER 500R RV2=POTENTIOMETER 50K U1=LM741 / UA741 Q1=TIP41 Q2=TIP42 Q3=TIP2955/2N2955 Q4=TIP3055/2N3055
Circuit Troubleshooting
- If this amplifer circuit is not working properly then you should check input voltage.
- Output speaker has DC voltage whining, please regulate the trimmer RV1 till the DC Voltage comes out.
Applications of TIP3055
- These are some important applications of TIP3055.
- It is universal persistence transistor it can be used in different industrial projects.
- It is used as an Acoustic Amplifier.
So, it was all about TIP3055, If you have any question about it ask in comments. Take care until the next tutorial.
Introduction to HC-12
Hello friends, I hope you all are doing great. In today’s tutorial, we will have a look at a detailed Introduction to HC-12. It is a wireless data transmitter and receiver module, that uses 433 megahertz frequency and can communicate to one thousand meter distance. It can communicate with more than one microcontroller. This module operates from 3.2 volts to 5.5 volts.
This Bluetooth module is installed in industries to control different processes and machines. It is also used in the circuitry of different security systems. This module uses silicons LABs Si4463 for (radio-frequency) RF data transmission. In today's post, we will look at its working, features, pinout and applications in detail. So let's get started with Introduction to HC-12.
Introduction to HC-12
- HC-12 is an RF module, used for wireless data transmission.
- Its operating frequency range is from 433.4 to 473 megahertz, large no of channels can be tuned on this frequency range.
- The maximum sending information power of this module is one hundred megawatts or twenty-decibel milliwatts.
- The data receiving strength is -117 decibel milliwatts with a baud rate of five thousand bytes per second in the air.
- This device uses stamp hole packaging for patch soldering, having a dimension of 27.8-millimeter x 14.4-millimeter x 4 millimeters, consisting of an antenna cap that makes it easier to install in different circuitry.
- This module also consists of a printed circuit board (PCB) antenna socket and an external antenna can be connected by coaxial wire.
- This data transmission module also consists of the microcontroller, used to generate the data protocol.
HC-12 Pinout
- Now we discuss the pinouts of HC-05.
Pin# |
Type |
Parameters |
Pin#1 |
Vcc |
At this pin input supply is provided to this module, the range of direct current source is 3.2 volts to 5.5 volts, and the load connected with it should be two hundred milliamperes. One thing you should keep in mind that when this module sending data tries to connect 1N4007 diode in series voltage source if its value is larger than 4.5 volts for reduction of heating. |
Pin#2 |
GND |
This pinout is connected with the ground. |
Pin#3 |
RXD |
It is UART (Universal Asynchronous Receiver/Transmitter) input data and TTL (Transistor-Transistor Logic) pinout. The resistance of one kilo is linked in series within the module. |
Pin#4 |
TXD |
it is UART (Universal Asynchronous Receiver/Transmitter) output data and TTL (Transistor-Transistor Logic) pinout. With this pinout, one-kilo ohm resistance is connected in series. |
Pin#5 |
SET |
This pinout is for the setting of different parameters at active low level. One kilo ohm resistance is also connected with it in series. |
Pin#6 |
ANT |
This pinout is for 433 megahertz antenna. |
Pin#7 |
GND |
it is the ground pinout. |
Pin#8 |
GND |
This pinout is also connected with the ground. |
Pin#9 |
NC |
It is not used for any connection. |
ANT1 |
ANT |
It is IPEX20279-001E-03 antenna socket. |
ANT2 |
ANT |
433MHz spring antenna solder eyelet. |
- The pinout from one to six consists of 2 bonding pads, with exterior half- holes bondings pads are manufactured for soldering.
- When the interior bonding pad antenna (ANT2) of pinout six is employed for linking, then the antenna connected with spring can be soldered with the hand.
- Let’s see a diagram of the pinout.
Features of HC-12
- This module can send and receive data to almost one thousand kilometers with a baud rate of five thousand bps.
- Its operating frequency range is from 433.4 to 473 megaHertz, to the hundreds of communication channels.
- Its data transmission power is almost a hundred megawatts or twenty decibels.
- It operates at 3 different modes according to the circuitry in which it is employed.
- A microcontroller is configured on this module so there is no need for a special programming device.
- It transmits a large number of bytes bits to the receiving module.
- It used a serial port for data transmission.
- Its operating voltage range is from 3.2 volts to 5.5 volts.
- It used the UART and TTL protocols for interfacing with other devices.
- It operates at minus forty degrees Celsius to plus eighty-five degrees Celsius.
Where to use HC-12
- These devices are used in pairs only and simple transmission of data is done by this device. That means its transmitter is used only for sending of data and its receiver for receiving data.
- With sending information to one thousand meter distance it is also used for short-range almost three meters of data transmission.
HC-12 Applications
- These are some important applications of HC-12 that are described here in detail.
- Different wireless sensors consist of this module.
- For the control of robotic instruments, it is used in these modules.
- In industries, different machines are controlled from a larger distance.
- POS (point of sale) systems also used this module.
- It is also used in the keyless automobile entry system.
That is a complete article on HC-12 I have mentioned each and everything related to HC-12 in this post if you have any questions ask in the comments. Thanks for reading.