Uploaded November 2019 | Updated September 2026, 2 weeks ago
If you like this video and want to support me, go this page for my donation Paypal or crypto addresses:
youtube.com/c/mobilefish/about
This is part 42 of the LoRa/LoRaWAN tutorial.
In this tutorial I will explain what a monopole antenna is and why a ground plane is needed.
A ½λ dipole antenna has two elements (each element L = ¼λ), but a monopole antenna has only one element (L = ¼λ).
A monopole antenna relies on a good conducting plane for its operation.
This plane is used as a mirror to create a "second imaginary" element.
The ground (earth) is a conductor and RF energy is reflected from the ground.
The monopole antenna performance can be improved by using a plane made of a better conductive material instead of using the earth itself.
This conducting plane is called the ground plane or counterpoise.
The ground plane must have a radius greater than ½ wavelength from the base of the monopole antenna.
For a ¼λ monopole antenna the reflected radiation from the ground is in phase with the direct radiation.
The receiving antenna (RX) gets energy from the direct path AND from the reflected path which is in phase.
A ¼λ monopole antenna will have twice the gain (3 dB) of a ½λ dipole antenna (in free space).
A ½λ dipole antenna has a gain (G) of 1.64 and an impedance (Z) of 73 Ω at its centre, which is the radiation resistance.
A ¼λ monopole antenna has a gain (G) of 2.15 + 3 = 5.15 dBi (or 3 dBd) and a radiation resistance of 0.5 x 73 = 36.5 Ω when positioned over a large conductive ground plane.
½λ dipole antenna 4NEC2 card deck:
mobilefish.com/download/lora/dipole_freespace_868mhz_4nec2.nec.txt
¼λ monopole antenna 4NEC2 card deck:
mobilefish.com/download/lora/monopole_ground_plane_868mhz_4nec2.nec.txt
By default a monopole antenna will perform poorly without the use of a ground plane.
A ground plane can be a network of horizontal wires or a metal plate.
More information about the end node, see:
mobilefish.com/developer/lorawan/lorawan_quickguide_build_lora_node_rfm95_arduino_pro_mini.html
The end node uses the MCCI LoRaWAN LMIC Library:
github.com/mcci-catena/arduino-lmic
The end node uses the following sketch:
mobilefish.com/download/lora/ttn-otaa-pro-mini-sensors.ino.txt
One or more gateways were able to receive my transmitted sensor data, see:
drive.google.com/open?id=18SKbHVEIFHU6YjzYpgZL98vuHcmV4OPQ&usp=sharing
The logged data can be found at:
mobilefish.com/download/lora/monopole_test_results.txt
mobilefish.com/download/lora/monopole_radials_test_results.txt
A ¼λ monopole without ground plane has a bad antenna performance.
A ¼λ monopole with ground plane with a radius GREATER than ½λ has a good antenna performance.
As demonstrated using a metal plate (radius greater than ½λ) or radials as the ground plane produces approximately the same result.
Using radials is often preferred:
- The radials are lighter than a metal plate.
- The radials are cheaper than a metal plate.
- The radials are more resistant to weather conditions (wind, rain).
When using a metal plate or radials as a ground plane, in both cases the impedance is around 75Ω instead of 50Ω.
When radials are used, bend it to a certain angle and the impedance will be 50Ω and the VSWR will remain below 2.
The effect of a ground near any antenna (for example: monopole, dipole, Yagi-Uda, Moxon, etc) can be significant.
The antenna performance can be positive or negative.
The effect can be simulated using an antenna modelling software (see tutorial 38).
Check out all my other LoRa/LoRaWAN tutorial videos:
youtube.com/playlist?list=PLmL13yqb6OxdeOi97EvI8QeO8o-PqeQ0g
Subscribe to my YouTube channel:
youtube.com/channel/UCG5_CT_KjexxjbgNE4lVGkg?sub_confirmation=1
The presentation used in this video tutorial can be found at:
mobilefish.com/developer/lorawan/lorawan_quickguide_tutorial.html
#mobilefish #lora #lorawan
If you like this video and want to support me, go this page for my donation Paypal or crypto addresses:
youtube.com/c/mobilefish/about
This is part 42 of the LoRa/LoRaWAN tutorial.
In this tutorial I will explain what a monopole antenna is and why a ground plane is needed.
A ½λ dipole antenna has two elements (each element L = ¼λ), but a monopole antenna has only one element (L = ¼λ).
A monopole antenna relies on a good conducting plane for its operation.
This plane is used as a mirror to create a "second imaginary" element.
The ground (earth) is a conductor and RF energy is reflected from the ground.
The monopole antenna performance can be improved by using a plane made of a better conductive material instead of using the earth itself.
This conducting plane is called the ground plane or counterpoise.
The ground plane must have a radius greater than ½ wavelength from the base of the monopole antenna.
For a ¼λ monopole antenna the reflected radiation from the ground is in phase with the direct radiation.
The receiving antenna (RX) gets energy from the direct path AND from the reflected path which is in phase.
A ¼λ monopole antenna will have twice the gain (3 dB) of a ½λ dipole antenna (in free space).
A ½λ dipole antenna has a gain (G) of 1.64 and an impedance (Z) of 73 Ω at its centre, which is the radiation resistance.
A ¼λ monopole antenna has a gain (G) of 2.15 + 3 = 5.15 dBi (or 3 dBd) and a radiation resistance of 0.5 x 73 = 36.5 Ω when positioned over a large conductive ground plane.
½λ dipole antenna 4NEC2 card deck:
mobilefish.com/download/lora/dipole_freespace_868mhz_4nec2.nec.txt
¼λ monopole antenna 4NEC2 card deck:
mobilefish.com/download/lora/monopole_ground_plane_868mhz_4nec2.nec.txt
By default a monopole antenna will perform poorly without the use of a ground plane.
A ground plane can be a network of horizontal wires or a metal plate.
More information about the end node, see:
mobilefish.com/developer/lorawan/lorawan_quickguide_build_lora_node_rfm95_arduino_pro_mini.html
The end node uses the MCCI LoRaWAN LMIC Library:
github.com/mcci-catena/arduino-lmic
The end node uses the following sketch:
mobilefish.com/download/lora/ttn-otaa-pro-mini-sensors.ino.txt
One or more gateways were able to receive my transmitted sensor data, see:
drive.google.com/open?id=18SKbHVEIFHU6YjzYpgZL98vuHcmV4OPQ&usp=sharing
The logged data can be found at:
mobilefish.com/download/lora/monopole_test_results.txt
mobilefish.com/download/lora/monopole_radials_test_results.txt
A ¼λ monopole without ground plane has a bad antenna performance.
A ¼λ monopole with ground plane with a radius GREATER than ½λ has a good antenna performance.
As demonstrated using a metal plate (radius greater than ½λ) or radials as the ground plane produces approximately the same result.
Using radials is often preferred:
- The radials are lighter than a metal plate.
- The radials are cheaper than a metal plate.
- The radials are more resistant to weather conditions (wind, rain).
When using a metal plate or radials as a ground plane, in both cases the impedance is around 75Ω instead of 50Ω.
When radials are used, bend it to a certain angle and the impedance will be 50Ω and the VSWR will remain below 2.
The effect of a ground near any antenna (for example: monopole, dipole, Yagi-Uda, Moxon, etc) can be significant.
The antenna performance can be positive or negative.
The effect can be simulated using an antenna modelling software (see tutorial 38).
Check out all my other LoRa/LoRaWAN tutorial videos:
youtube.com/playlist?list=PLmL13yqb6OxdeOi97EvI8QeO8o-PqeQ0g
Subscribe to my YouTube channel:
youtube.com/channel/UCG5_CT_KjexxjbgNE4lVGkg?sub_confirmation=1
The presentation used in this video tutorial can be found at:
mobilefish.com/developer/lorawan/lorawan_quickguide_tutorial.html
#mobilefish #lora #lorawan









![LoRa/LoRaWAN tutorial 8: Link Budget and Link Margin
If you like this video and want to support me, go this page for my donation Paypal or crypto addresses:
https://www.youtube.com/c/mobilefish/about
This is part 8 of the LoRa/LoRaWAN tutorial.
In this video series different topics will be explained which will help you to understand LoRa/LoRaWAN.
It is recommended to watch each video sequentially as I may refer to certain LoRa/LoRaWAN topics explained earlier.
In this video I will explain what link budgets, maximum link budgets and link margins are.
If an input signal (=message) is imposed onto a carrier signal this process is called modulation.
The modulated signal is broadcasted to the receiver.
Demodulation is the opposite, where the original signal (= message) is recovered from the modulated carrier wave.
A link budget is the sum of all of the gains and losses from the transmitter, through the medium (aka free space), to the receiver in a telecommunication system.
It is a way of quantifying the link performance.
Transmitter
The radio transmitter value must be specified in dbm, otherwise you do not know its absolute value.
Gains
Antenna (Unit: dbi)
Losses
Cables, connectors, signal propagating thru the medium (Unit: db)
When a signal propagates thru the medium, the signal loses strength.
This is called the path loss or path attenuation.
A simple link budget equation looks like this:
Received Power = Transmitted Power + Gains − Losses
For example: Received Power = 20 - 5 + 10 - 115 + 12 - 2 = -80 dBm
The receiver sensitivity is the lowest power level at which receiver can receive or demodulate the signal.
For example: Receiver sensitivity = -90 dBm
The link margin is the difference between the received power and receiver sensitivity.
Link margin = Received power - Receiver sensitivity
Link margin in dBm
Received power in dBm
Receiver sensitivity in dBm
For example:
Received power = -80dBm
Receiver sensitivity = -90
dBmLink margin = -80 - (-90) = 10 dBm = 10 mW
Question:
There are two receivers:
Receiver A with receiver sensitivity = -120 dBm
Receiver B with receiver sensitivity = -130 dBm
Which receiver is better?
Answer:
Receiver B is better because it can demodulate a RF signal at a lower power level.
If the link margin is too big, or too small, corrective actions can be applied to ensure the system will operate satisfactorily.
The link margin must be positive (Received Power must be greater than the Receiver sensitivity) and should be at least a few dB for the receiver to successfully demodulate the signal.
LoRa receivers are very sensitive and are offering a sensitivity down to -148 dBm [2], due to the use of Chirp Spread Spectrum.
More information:
https://www.semtech.com/products/wireless-rf/lora-transceivers/SX1276
The maximum link budget can be used as a baseline value to compare one radio to the next.
Maximum link budget = Maximum transmitter power - Lowest receiver sensitivity
Maximum link budget in dBm
Maximum transmitter power in dBm
Lowest receiver sensitivity in dBm
For example:
Max transmitter power = 20 dBm [2]
Lowest receiver sensitivity = -148 dBm [2]
Max link budget = Max transmitter power - Lowest receiver sensitivity
Max link budget = 20 - (-148) = 168 dBm [2]
Check out all my other LoRa/LoRaWAN tutorial videos:
https://www.youtube.com/playlist?list=PLmL13yqb6OxdeOi97EvI8QeO8o-PqeQ0g
Subscribe to my YouTube channel:
https://www.youtube.com/channel/UCG5_CT_KjexxjbgNE4lVGkg?sub_confirmation=1
The presentation used in this video tutorial can be found at:
https://www.mobilefish.com/developer/lorawan/lorawan_quickguide_tutorial.html
#mobilefish #lora #lorawan LoRa/LoRaWAN tutorial 8: Link Budget and Link Margin](https://i.ytimg.com/vi/jMFa3AiDbcI/mqdefault.jpg)
