Sensor
A sensor comprising: a printed circuit board; a photosensor mounted on a first side of the printed circuit board; and a light source mounted on a second, opposite side; wherein the light source is arranged to transmit light through at least a portion of the printed circuit board, which is impermeable to air. Positioning of the light source on the opposite side of the printed circuit board from the photosensor means that the bulk of the printed circuit board lies between the light source and the photosensor, obstructing direct transmission of light from the light source to the photosensor. However, light can be transmitted through the printed circuit board itself without drilling a hole through the printed circuit board. In this way, the light source can be mounted on the opposite side of the printed circuit board from the photosensor while still transmitting light to the photosensor.
1 . A radon gas sensor comprising:
a printed circuit board;
a photosensor mounted on a first side of the printed circuit board;
a light source mounted on a second, opposite side of the printed circuit board; and
an opaque diffusion chamber mounted on the first side of the printed circuit board over the photosensor
wherein the light source is arranged to transmit light through at least a portion of the printed circuit board, said portion being impermeable to air; and
wherein the light source is arranged such that the light transmitted through the printed circuit board is transmitted into the inside of the opaque diffusion chamber.
2 . A sensor as claimed in claim 1 , wherein a blind hole is formed in the second side of the printed circuit board and wherein the light source is arranged to transmit light into the blind hole.
3 . A sensor as claimed in claim 2 , wherein the blind hole has a depth equal to at least a quarter the thickness of the printed circuit board, preferably at least a third the thickness of the printed circuit board, preferably at least half the thickness of the printed circuit board.
4 . A sensor as claimed in claim 2 , wherein the light source is at least partially located within the blind hole.
5 . A sensor as claimed in claim 1 , wherein the printed circuit board comprises a substrate layer of translucent electrically insulating material.
6 . A sensor as claimed in claim 1 , wherein the first side of the printed circuit board comprises a first opaque conductive layer on the surface of the first side opposite the light source and wherein the first opaque conductive layer comprises a hole to allow light from the light source to pass through.
7 . A sensor as claimed in claim 6 , wherein the hole in the first opaque conductive layer is no more than 5 mm wide in any dimension.
8 . A sensor as claimed in claim 1 , wherein the printed circuit board further comprises a second opaque conductive layer located within the printed circuit board and wherein the second opaque conductive layer comprises a hole to allow light from the light source to pass through.
9 . A sensor as claimed in claim 8 , wherein the hole in the second opaque conductive layer is no more than 5 mm wide in any dimension.
10 . A sensor as claimed in claim 8 , wherein the first opaque conductive layer and the second opaque conductive layer are separated by a layer of translucent electrically insulating material.
11 . A sensor as claimed in claim 1 , wherein the light source is a reverse assembly surface mount light source.
12 . A sensor as claimed in claim 1 , wherein the light source is a light emitting diode.
13 . A sensor as claimed in claim 1 , wherein the light source is located within an opaque enclosure mounted on the second side of the printed circuit board.
14 . A sensor as claimed in claim 1 , wherein an inside surface of the opaque chamber is reflective.
15 . A sensor as claimed in claim 1 , herein an inside surface of the opaque chamber is partially covered with a scintillating material.
16 . A sensor as claimed in claim 1 , wherein the inside surface of the opaque chamber has a doubly-curved region and wherein the light source is arranged to transmit light towards the doubly-curved region.
17 . A sensor as claimed in claim 1 , wherein the photosensor comprises a photodiode and/or a semiconductor photomultiplier.
18 . A method of testing a radon gas sensor comprising a photosensor mounted on a first side of a printed circuit board and an opaque diffusion chamber mounted on the first side of the printed circuit board over the photosensor, the method comprising:
transmitting light into the inside of the opaque diffusion chamber from a light source mounted on a second side of the printed circuit board through at least a portion of the printed circuit board, said portion being impermeable to air; and
receiving said light at said photosensor.