[0001] This invention relates to dish aerials, for example, for the reception of satellite
broadcast signals, or other electro-magnetic radiation, although it may also be useful
for transmitting signals.
[0002] One object of the present invention is to provide a design of a dish aerial including
primary and secondary reflecting components enabling it - or a substantial part of
it - to be moulded from a structural plastics material, and without there being the
need for fine adjustment of the reflecting components of the aerial in relation to
each other. Another object of the invention is to provide an aerial design enabling
the signal receiving electronic components to be positioned in a region which can
be protected from the weather.
[0003] According to the present invention, a dish aerial includes a dish having a primary
reflecting surface, a component having a secondary reflecting surface held Located
to receive signals reflected from the primary reflecting surface, and a housing disposed
around the principal axis of the dish for accommodating electronic equipment to receive
signals reflected from the secondary reflecting surface. As much as possible of the
aerial is moulded of plastics material, and that will include the dish and probably
also at least the housing and/or the means for holding the secondary reflecting component
Located.
[0004] The secondary component may be moulded from plastics material, but there are applications
in which it is desirable to have alternative secondary components with different radii
of curvature and then it may be easiest to form them from sheet metaL.
[0005] The component having the secondary reflecting surface may be held Located in relation
to the dish for example by circumferentially spaced struts or Legs, and they are LikeLy
to be moulded integrally with the dish - and wit-h the secondary component if it is
not an interchangeable component.
[0006] The housing disposed around the principal axis of the disc enables the first stage
of the receiving chain to be at or near the focus for received radiation, while yet
being protected in the housing from the weather.
[0007] The housing is convenientLy defined by a moulded cylindrical wall, preferably integral
with the moulded dish and the space within it can be closed off at one end by a mounting
plate for the electronic equipment, and at the other end by a thin sheet of signal-transparent
insulating material.
[0008] The housing wall or tube is preferably positioned at Least partly behind the dish.
[0009] The invention may be considered to reside in any of the features Listed above, together
with any one or more of any of the features set out in the accompanying claims, in
any combination.
[0010] The invention may be carried into practice in various ways, and one embodiment will
now be described by way of example, with reference to the accompanying drawings, in
which:-
FIGURE 1 is a sectional elevation of a dish aerial taken on the Line A-A in FIGURE
2;
FIGURE 2 is a partial rear view of the aerial of FIGURE 1; and
FIGURE 3 is a section to an increased scale on the Line B-B in FIGURE 1.
[0011] The aerial includes a primary dish element 10 moulded from a thermoplastics structural
foam comprising a Low density cellular core enclosed within a solid integral skin.
ThermopLastics structural foams are described in two papers in MateriaLs in Engineering,
VoLume 3, at page 354, and 443 by P.R. Hornsby and many of the materials described
in those papers can be used in dependence upon the application. In a preferred embodiment
the plastics material is polypropylene with glass fibre reinforcing filler.
[0012] The dish element 10 has a parabolic cross section with a central opening Leading
to a space for electronic equipment to be described later. A secondary reflecting
surface is defined by another element 30 pressed from sheet metal with a hyperbolic
reflecting surface and that is held Located in relation to the primary dish element
by a circumferential ring of Legs 11 disposed around the periphery of the secondary
element 30 and the opening in the primary element 10.
[0013] In the preferred embodiment, the Legs 11 are moulded integrally with the primary
dish element 12 and engage in and are fixed in slots 13 in the edge of the secondary
element 30, although it would be possible to mould the primary element and the Legs
separately and fix them together.
[0014] After assembly, the primary and secondary reflecting elements are held in fixed relative
positional relationship by the Legs so that parallel radiation indicated generally
at 14 in FIGURE 1, is reflected first to the secondary element 30, and then to a secondary
focus 15 on the axis 12 within a space 16 defined at the rear of the primary dish
element 10 by an integrally moulded rearwardly extending cylindrical housing 17.
[0015] The reflecting surfaces of the primary and secondary elements 10 and 30 , if the
Latter is moulded i'ntegraLLy, are metallised or bear metal foil, and this may be
on the front surface or the rear surface of the wall defining the element. The advantage
of having the metallised Layer on the first surface encountered by the radiation is
that the radiation is not refracted and does not have any Loss due to having to traverse
the thickness of the element twice at each reflecting surface. The advantage of having
the metallised surface at the rear is that the metallised surface is not exposed to
the atmosphere but is protected by the material of the element. The particular application
will probably determine which system is used. Of course, if the secondary element
is a metal pressing the convex face can be polished to define the reflecting surface.
[0016] It wiLL be appreciated that some of the incoming signal will be Lost from the secondary
element 30 because of the presence of the Legs 11, but this Loss is LikeLy to be quite
small and not enough to outweigh the great advantage of being able to mount the two
elements in a symmetrical arrangement about the principal axis 12 without having a
separate supporting mechanism which has to be subsequently assembled with the dish.
[0017] The space 16 houses a wave guide horn 18 and an amplifier and down converter 19,
mounted on a plate 21 held in position by bolts (not shown) in rod-Like protruberances
22 surrounding the sleeve 17. An external coaxial cable 23 takes the signal from the
converter 19 to remote signal processing equipment, and may be used to bring power
to the amplifier and down converter. The wave guide horn 18 is mounted at the focus
15 of radiation from the secondary element 30.
[0018] Once the converter 19 and wave guide horn 18 have been positioned in the space 16,
the rear of the space is closed off by the plate 21, and the front can also be closed
off by a plate at 24, or even a sheet of plastics material so that the space 16 is
protected from dirt and moisture from the atmosphere.
[0019] At the rear the primary dish element 10 is provided with reinforcing ribs indicated
generally at 25, and also three mounting Lugs 26. Only two lugs are shown in FIGURE
2, which is an incomplete view although it is symmetrical about an axis parallel with
and slightly to the Left of the line AA.
[0020] It will be appreciated that different types of electronic equipment may be mounted
in the housing at the start of the receiver chain. The position in the housing of
the wave guide horn for receiving the reflected signal and feeding the chain will
depend on the type of the equipment used and may require an appropriate secondary
reflecting element to produce a focus at the wave guide horn, and to produce a cone
of energy conforming to the waveguide horn acceptance angle.
[0021] In one preferred embodiment, the diameter of the primary dish 10 is about one metre,
and the average wall thickness of the moulded components is about 6mm.
1. A dish aerial including a dish having a primary reflecting surface, a component
having a secondary reflecting surface held Located to receive signals reflected from
the primary reflecting surface by holding means and a housing disposed around the
principal axis of the dish for accommodating electronic equipment to receive signals
reflected from the secondary reflecting surface, the dish and at Least the housing
and/or means for holding the secondary component Located in relation to the dish being
moulded of plastics material in a single moulding.
2. An aerial as claimed in Claim 1 in which the holding means comprise a number of
circumfer,entiaLLy spaced struts.
3. An aerial as claimed in either of the preceding claims including means for closing
the housing to protect the interior from the environment.
4. An aerial as claimed in Claim 3 in which the closing means is between the secondary
reflecting surface and the interior of the housing, and is transparent to radio signals
from the secondary reflecting surface to the interior of the housing.
5. An aerial as claimed in any of the preceding claims in which the housing comprises
a tube positioned behind, or at least partly behind, the dish.
6. An aerial as claimed in any of the preceding claims including mounting means for
the dish integrally moulded at the rear of the dish.
7. An aerial as claimed in any of the preceding claims in which the secondary reflecting
surface is on a component which is removably attached to the holding means.
8. An aerial as claimed in any of the preceding claims in which the plastics material
is in the form of a thermo-plastics structural foam comprising a Low density cellular
core enclosed within a solid integral skin, and possibly containing a reinforcing
fiLLer.
9. An aerial as claimed in any of the preceding claims in which either or each reflecting
surface is defined by a metallic Layer on a moulded plastics surface.
10. An aerial as claimed in any of the preceding claims including a radio frequency
signal amplifier and down'converter positioned within the housing with a wave guide
horn or the equivalent for feeding it positioned at the secondary focus.