GB2086766A - Container and nozzle for use in electrostatic spraying - Google Patents

Container and nozzle for use in electrostatic spraying Download PDF

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Publication number
GB2086766A
GB2086766A GB8131297A GB8131297A GB2086766A GB 2086766 A GB2086766 A GB 2086766A GB 8131297 A GB8131297 A GB 8131297A GB 8131297 A GB8131297 A GB 8131297A GB 2086766 A GB2086766 A GB 2086766A
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GB
United Kingdom
Prior art keywords
container
nozzle
vessel
tube
holder
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Granted
Application number
GB8131297A
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GB2086766B (en
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Imperial Chemical Industries Ltd
Original Assignee
Imperial Chemical Industries Ltd
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Imperial Chemical Industries Ltd filed Critical Imperial Chemical Industries Ltd
Priority to GB8131297A priority Critical patent/GB2086766B/en
Priority to AR287355A priority patent/AR229475A1/en
Priority to MX189980A priority patent/MX153767A/en
Priority to BR8107284A priority patent/BR8107284A/en
Priority to EG657/81A priority patent/EG17701A/en
Priority to KR1019810004317A priority patent/KR890000528B1/en
Publication of GB2086766A publication Critical patent/GB2086766A/en
Application granted granted Critical
Publication of GB2086766B publication Critical patent/GB2086766B/en
Expired legal-status Critical Current

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Classifications

    • BPERFORMING OPERATIONS; TRANSPORTING
    • B05SPRAYING OR ATOMISING IN GENERAL; APPLYING FLUENT MATERIALS TO SURFACES, IN GENERAL
    • B05BSPRAYING APPARATUS; ATOMISING APPARATUS; NOZZLES
    • B05B5/00Electrostatic spraying apparatus; Spraying apparatus with means for charging the spray electrically; Apparatus for spraying liquids or other fluent materials by other electric means
    • B05B5/16Arrangements for supplying liquids or other fluent material
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B05SPRAYING OR ATOMISING IN GENERAL; APPLYING FLUENT MATERIALS TO SURFACES, IN GENERAL
    • B05BSPRAYING APPARATUS; ATOMISING APPARATUS; NOZZLES
    • B05B5/00Electrostatic spraying apparatus; Spraying apparatus with means for charging the spray electrically; Apparatus for spraying liquids or other fluent materials by other electric means
    • B05B5/025Discharge apparatus, e.g. electrostatic spray guns

Abstract

A container 48 for the electrostatic spraying of liquids (especially pesticides) has an electrically conductive spray nozzle 54, formed of two concentric tubes 55, 56, between which an arrangement of axial ribs and grooves provides a liquid pathway 69 to the nozzle mouth. Air is bled into the container through an extended pathway provided by a helical groove on a screw 76 at the upstream end of the inner tube 56. The nozzle is mounted on the container by threads carrying ratchet teeth. The nozzle may be of nylon filled with carbon black. in use the container is mounted on a holder (90), Fig 3 (not shown), flange 63 on the outer tube 55 contacting a metal screw (104) connected to an HT supply. <IMAGE>

Description

SPECIFICATION Containers for use in electrostatic spraying This invention relates to containers therefor, and in particular to such containers for use in the electrostatic spraying of liquids.
In U.K. Patent 1569707, we have described an apparatus for the electrostatic spraying of liquids. This apparatus is of simple construction, with a low power requirement (it has no moving parts and can readily be run off dry cells); it is thus particularly suited for use as a hand held sprayer in applications where large power sources are not readily available: for example, in spraying crops. Electrostatic spraying of crops also has advantages in promoting even coating of plants, with spray being attached around behind foliage instead of coating only exposed surface; and in reducing spray drift, which is at best wasteful and at worst hazardous to the environment.
The apparatus disclosed in U.K. Patent No.
1 569707 comprises essentially a discharge nozzle; a field-intensifying electrode disposed around the nozzle; a container for supplying liquid to be sprayed to the nozzle; and a high voltage generator for applying a high voltage to the nozzle, the electrode being earthed. In this way a strong electric field may be produced between the nozzle and the electrode, sufficient to atomise liquid passing through the nozzle.
This apparatus is particularly suitable for the application of pesticides at low or ultra-low volume (typically at a spray application rate in the range 0.1 to 10 litres spray liquid per hectare).Low and ultra-low volume spraying have several recognised advantages, as well as being especially suitable where water is not readily available as a spray diluent, but they also have one disadvantage. Of necessity, they must use relatively concentrated pesticidal compositions. Such compositions frequently have a greater or lesser degree of human toxicity, and for this reason it is desirable that they should be handled as little as possible. A particular danger is the decantation of poisonous liquids into beverage bottles.
A pesticide sprayer, to provide the best service, must be reliable and adaptable. Desirably it should be able to spray pesticides of several different kinds. Different pesticides come in different formulations, having different electrical properties, and requiring to be sprayed in differing droplet sizes to give optimum effect. In the apparatus of U.K. Patent 1 569707 useful and convenient control over droplet size and spraying properties can be provided by varying the applied voltage; but the size of the nozzle and its position relative to the surrounding electrode may also require adjustment to suit the formulation being sprayed. It is often difficult to do this reliably in the field.Also, pesticide sprayers (spray-tanks, spray-lines and nozzles) normally require careful cleaning between application of different pesticides; otherwise, for example, traces of herbicide may damage crops being sprayed against fungal attack. The need for such cleaning is increased when formulations are to be sprayed electrostatically, since contamination may affect their electrical properties.
Thorough cleaning may damage nozzles, leading to incorrect spray application.
Containers suitable for use in electrostatic spraying apparatus of the kind described in U.K. Patent 1 569707 that enable a number of the problems outlined above to be mitigated or overcome are disclosed in published U.K. Patent Applications 2030060 and 2061769.
In the above U.K. Patent Applications, we disclose inter alia a container for a liquid to be electrostatically sprayed, suitable for mounting on a holder to form apparatus including carrying a high voltage generator, a power source, a field-intensifying electrode and electrical connections for connecting the field-intensifying electrode to one output terminal of the high voltage generator, the container having an electrically conductive spray nozzle and mounting means for locating the container on the holder, the mounting means being provided with electrical contacts to connect the nozzle to the high voltage generator.
To give the best results in practice, such containers require to deliver liquid at a constant flow rate over as much as possible of their delivery cycle. It is also desirable that the delivery of liquid from such containers should be affected as little as possible by small movements of the container ('bounce sensitivity') or by small variations in the angle at which the container is held ('tilt sensitivity'). It is accordingly an object of the present invention to provide an improved container having a more nearly constant liquid delivery rate that is also less sensitive to temperature variation, as well as improved tilt sensitivity and bounce sensitivity.
Accordingly, the invention comprises a container for mounting on a holder for the electrostatic spraying of liquids said container including a vessel having a neck, and an electrically-conductive nozzle in said neck having a body, a mouth for dispensing liquid from the vessel and an air-bleed for feeding air into the vessel:: said body comprising vertically aligned coaxial outer and inner tubes, the outer tube being shorter and having a height at least twice its diameter and said inner tube having an upper end extending at least into the neck of the vessel; said mouth being formed by the radial gap between adjacent lower ends of the tubes; ribs being provided on the surface of one tube to space it from the second tube and to form channels communicating with the vessel to deliver liquid therefrom to the mouth; said air-bleed comprising a bung supported within the bore of the upper end of said inner tube, the bung and the bore co-operating to provide an extended pathway through which air can enter the vessel.
A holder suitable for receiving a container according to the invention may comprise a body carrying a high voltage generator, a power source therefor, a field-intensifying electrode, electrical connections for connecting the electrode to earth and mounting means complementary to mounting means on the container for locating the container on the holder with the spray orifice adjacent the electrode and the nozzle connected to an output terminal of the high voltage generator.
Throughout this specification, the term 'conducting surface' is intended to include a semiconducting surface.
Prior to mounting on the holder, the container nozzle requires to be sealed against the emission of liquid. Conventional sealing means may be employed, for example a screw cap seal over the nozzle.
Preferably means are provided on the holder for maintaining one output terminal of the high voltage generator at or near earth potential. Such means may be a conductor for connection to earth, for example, a trailing earth wire dependant from the holder. Where such means are provided, it is preferred that the earthed terminal of the high voltage generator is arranged for connection to the fieldintensifying electrode rather than to the container nozzle. Charging of the spray is then by direct contact, rather than by induction, and there is a stronger electrostatic field transporting the spray to its (earthed) target.
The field-intensifying electrode may be of bare metal or may be wholly or partially covered with insulating material.
Containers according to the invention may be filled with properly formulated spray liquid by the manufacturer, and after the containers are closed, the spray liquid will remain uncontaminated until it is actually sprayed. There is no need to clean spray-tanks, spray-lines or nozzles to avoid contamination, so different products can be sprayed successively without undue loss of time. Toxic hazards through handling by operators are minimised; errors by field operators in mixing and dilution procedures are eliminated. After use, the containers according to the invention may be returned to the manufacturer for refilling; or may be discarded. Containers may be made from one or more elements of plastics material by, for example, injection moulding or blow moulding, or a combination of the two.The conducting elements of the containers (nozzle, contact and connections) may be provided by metal inserts, or by application of conductive metallic coatings or paints to the container surface or by the use of partly-conducting plastics.
One suitable form of power source is an electrical storage battery. The amount of electrical energy required to atomise liquid is remarkably low. A typical example may be considered: a vessel containing 500 ml of liquid to be sprayed at a rate of 0.5 ml per second, with a droplet size of about 100 microns, and a charge to mass ratio of 5 x 10-3 coulombs per kilgram. The current carried by droplets atomising from the nozzle is thus 2.5 microamperes. The spraying time will be 1000 seconds (just over quarter of an hour) at an input current of, typically, 1 5 milliamperes, an input voltage of about 10 volts and an output voltage of 20 kilovolts.
Thus the required cell rating to spray liquid from one such vessel is only 4 milliampere hours, at about 10 volts. This capacity is considerably less than that of most readily available torch batteries. An example of another form of power source which may be used in the invention is a solar cell. In certain embodiments of the invention, the power source may be carried on the container, rather than the holder. Suitable high voltages for use in the invention range from about 1 to about 30 kilovolts, and most conveniently from about 1 5 to about 25 kilovolts.
A specific embodiment of the invention will now be described with reference to the drawings, in which: Figure 1 is a vertical section through the nozzle and neck of the container.
Figure 2 is a horizontal section on the line A-A in Fig. 1.
Figure 3 is a vertical section through a holder for the container.
Figure 4 is a circuit design for the holder of Fig. 3.
Figure 5 is vertical section through a cap for the nozzle of Fig. 1.
The container (48), shown in Figs. 1 and 2, comprises a bottle (49), formed by processes including blow-moulding from clear polyethylene terephthalate, having a shoulder (50) with an exterior thread (52) and a neck (51) with an exterior thread (53). The neck (51) carries an annular nozzle (54) threaded thereon. This nozzle is injection-moulded from conductive plastics material (nylon containing 20% by 4 weight carbon black) in two pieces (55) and (56) forming respectively the outer and inner wall elements of the nozzle (54). Outer wall (55) comprises a tube (58) having at its upper end an enlarged skirt (59) carrying inner and outer threads (60) and (61). From the upper end of skirt (59), a resiliently deformable flange (63) extends outwardly.
Below inner thread (60) a set of ratchet teeth (64) are formed round the inner circumference of skirt (59). Thread (60) on skirt (59) mates with thread (53) on bottle (59); when the two are screwed together ratchet teeth (64) engage with a mating set of ratchet teeth (65) fixed in the outer lip of neck (51) of the bottle (49). This prevents bottle (49) and nozzle (54), once assembled, from being taken apart again. At the base of skirt (59) a circumferential wier (66) supports a resilient rubber O-ring (67); this acts as a liquid-tight seal between nozzle (54) and the lip of neck (51).
Tube (58) is formed with seven vertical ribs (68), separated by channels (69). Within tube (58) is carried inner wall element (56) of the annular nozzle (54). This is also generally tubular in shape and comprises a bottom portion (70) which is a push-fit into tube (58), fitting snugly within it against ribs (68); a central radial flange (71) which abuts the heads (72) of the ribs (68), and an upper portion (73) with a mouth partially closed by a threaded screw (75) which is a push-fit therein. The mouth has three castellations (76) which expose part of the thread of the screw (75); the inner bore of mouth is smooth, not threaded. The lower end of bottom portion (70) is formed with a circumferential indentation forming an annular orifice (78) between inner and outer walls (55) and (56).
The channels (69) lead into this orifice (78).
Fig. 5 shows a cap (80) formed of highimpact nylon which may be screwed on to nozzle (54) to retain liquid during carriage and storage. It comprises a skirt (81) externally milled with internal thread (82) for mating with the external thread (61) on the nozzle (54). Skirt (81) has a dependent wall (86) fixed with an inner circumferential projection (83) which in use forms a liquid-tight seal against the outer wall of tube (58). From the base (84) of cap (80) a long nose (85) projects upwardly; in use this has no sealing function, but fills most of the space between screw (75) and projection (83) so that the minimum of liquid is lost when cap (80) is removed.
Figs. 3 and 4 show a holder (90) for container (48) consisting of a plastics support (89) and a carrying handle (91). The support (89) is of tough rigid non-conducting plastics material (e.g. glass-filled nylon or, better, talcfilled polypropylene) and comprises two short co-axial hollow cylinders (92) and (93) connected by a sloping shoulder (94). The upper cylinder (92) has an internal thread 95 which will receive and mate with the external thread (52) of bottle (49).
Lower cylinder (93) is wide enough to admit nozzle t54) carrying cap (80), with a small clearance. The bottom of cylinder (93) is formed with an outwardly-directed radial flange (96). Just above flange (96), at the base of cylinder (93) is a bare metal annulus (97). At one side of support (89) is a large lug (98), formed with a socket (99) for receiving the end of carrying handle (91), a rod of insulating plastics material (such as fiberglass). Within handle (91) are carried two electrical leads (100) and (101), the former being connected to one output terminal of 25 KV high voltage generator (102) carried in the handle (91), and the latter being connected to earth. Lead (100) is accommodated in blind bore (103) adjacent the interior surface of shoulder (94), and makes contact with roundheaded self-tapping metal screw (104).Lead (101) passes through bore (105) and is connected to metal annulus (97). As shown in the circuit diagram of figure 10, generator (102) is powered by four 1.5 volt flashlight batteries (106) through a spring-loaded push button switch (107). Generator (102), batteries (106) and switch (107) are all mounted on handle (91). The earth connection (108) is provided through a trailing bare wire carried in a plastic twine base.
In use, bottle (49) is first filled with a suitable liquid for spraying (e.g. a 10% by weight formulation of a fungicide in a hydrocarbon solvent, the formulation having a resistivity of 1 X 108 ohm cm and a viscosity of 5 centistokes, both measured at 20"C). Nozzle (54) is then screwed on to thread (53), and ratchet teeth (64) and (65) engage, fixing nozzle (54) permanently in position. Cap (80) is then screwed on to thread (61). The container (48) so formed is now transported to the site at which it is desired to use it. Here it is screwed into holder (89), using threads (52) and (95). Flange (63) contacts the head of screw (1 04). Handle (92) is now used to hold container (48) nozzle downwards over the target it is desired to spray, and cap (80) is removed.Liquid begins to drip out of annulus (78), while air is sucked into the container up the central bore of insert (56). To enter the container, air has to pass along the long helical groove formed between the thread of nut (75) and the smooth inner surface of the mouth of tube (56). The generator (102) is activated by depressing the switch (107), thereby communicating a potential of 25 KV to the nozzle (54) via lead (100), screw (104) and flange (63). A powerful electric field is generated between the charged nozzle orifice (78) and the earthed conductor (97). This draws out the liquid leaving the orifice (78) into ligaments, which break up into highly charged particles of uniform size, which are attracted to and evenly coat the target.
The form of nozzle shown in Figs. 1-5 produces a steady flow-rate after a short period (of the order of 45 seconds) in which equilibrium is reached. The equilibrium flowrate for a liquid of given viscosity is dependent on the width, breadth and number of the channels (69) and the length and cross-section of the air-bleed channel. In the embodiment shown, the seven channels (69) are 0.3 mm deep and 1.6 mm wide, the annular orifice being 0.3 mm in width with an external diameter of 1 3 mm; the path of the helical air-bleed is about 9-10 cm long, with a crosssection of about 0.4 sq. mm. and the resulting flow-rate is about 0.07 ml/second.For greater or lesser flow-rates, it is simplest to change the number of channels (69) rather than depth or thickness, e.g. to 4 or 1 6 channels to approximately halve or double the flow-rate, respectively. As well as giving a steady flow-rate, this nozzle is not sensitive to tilting and continues to operate satisfactorily when held at an angle of, e.g., 30% to the vertical.
Various modifications to the foregoing apparatus will be apparent to those skilled in the art. The container illustrated is intended to be disposable. However, reusable containers may also be made. Instead of the helical air-bleed channel, a longer plug with, e.g. a vertical groove, may be used to provide an air-bleed.
The device described includes a conductor for connection to earth in the form of a trailing bare metal wire. This has the disadvantage that it may become caught up or tangled. The device works best with an earth connection; but it need not be of low resistance. The conductor for connection to earth may be, for example a metallised strip along the handle of the holder. When the operator grasps the handle, an electrical pathway to earth is formed through the operator's body.
Though this pathway has high resistance, we have found that it is generally adequate. Experiments have shown that, with an arrangement of this kind, the voltage on the container electrode may be up to about one or two hundred volts above that of earth, even when the operator is wearing rubber boots in relatively dry conditions. Such a voltage on the electrode is little different from that of earth, relative to the potential on the nozzle of several thousand volts. The current flowing through the operator is so small that there is no danger to him whatever, nor can he even feel anything.
The apparatus of the invention has been described with particular reference to its use in pesticide spraying, in particular of compositions comprising pesticides in organic liquid carriers, for which it has special advantages.
However, it may also be used for spraying of coatings or paints, for example by the home decorator. Holders for the container are conveniently adapted for holding in the hand; but they may also be carried on vehicles such as tractors or aircraft, when they may support more than one container. In this case, the power source may be a battery or generator carried in the vehicle.

Claims (5)

1. A container for mounting on a holder for the electrostatic spraying of liquids said container including a vessel having a neck and an electrically-conductive nozzle in said neck having a body, a mouth for dispensing liquid from the vessel and an air-bleed for feeding air into the vessel: said body comprising vertically aligned coaxial outer and inner tubes, the outer tube being shorter and having a height at least twice its diameter and said inner tube having an upper end extending at least into the neck of the vessel; said mouth being formed by the radial gap between adjacent lower ends of the tubes; ribs being provided on the surface of one tube to space it from the second tube and to form channels communicating with the vessel to deliver liquid therefrom to the mouth;; said air-bleed comprising a bung supported within the bore of the upper end of said inner tube, the bung and the bore co-operating to provide an extended pathway through which air can enter the vessel.
2. A container as claimed in claim 1, wherein the neck of the container is externally threaded to mate with a threaded annulus on the holder.
3. A container as claimed in either of claims 1 or 2 wherein the outer tube is formed with a projecting resilient radial flange at its upper end, to provide an electrical connection to a high voltage contact stud on the holder.
4. A container as claimed in any of claims 1 to 3 provided with a sealing cap having a central member upwardly extending from the cap base to at least partially fill the interior of the inner tube.
5. A container as claimed in any of claims 1 to 4 in which the extended pathway is formed by the groove of a helical thread.
GB8131297A 1980-11-11 1981-10-16 Container and nozzle for use in electrostatic spraying Expired GB2086766B (en)

Priority Applications (6)

Application Number Priority Date Filing Date Title
GB8131297A GB2086766B (en) 1980-11-11 1981-10-16 Container and nozzle for use in electrostatic spraying
AR287355A AR229475A1 (en) 1980-11-11 1981-11-05 CONTAINER TO MOUNT ON A CARRIER FOR ELECTROSTATIC LIQUID SPRAYING
MX189980A MX153767A (en) 1980-11-11 1981-11-05 IMPROVEMENTS TO ELECTROSTATIC LIQUID SPRAYER, SUCH AS PESTICIDES, IN PLANTATIONS
BR8107284A BR8107284A (en) 1980-11-11 1981-11-10 CONTAINER FOR MOUNTING ON A SUPPORT FOR ELECTROSTATIC SPRAYING OF LIQUIDS
EG657/81A EG17701A (en) 1980-11-11 1981-11-10 Container for use in electrostatic spraying
KR1019810004317A KR890000528B1 (en) 1980-11-11 1981-11-11 Containers and holders therefor for use in electrostatic spraying

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
GB8036174 1980-11-11
GB8131297A GB2086766B (en) 1980-11-11 1981-10-16 Container and nozzle for use in electrostatic spraying

Publications (2)

Publication Number Publication Date
GB2086766A true GB2086766A (en) 1982-05-19
GB2086766B GB2086766B (en) 1984-08-30

Family

ID=26277476

Family Applications (1)

Application Number Title Priority Date Filing Date
GB8131297A Expired GB2086766B (en) 1980-11-11 1981-10-16 Container and nozzle for use in electrostatic spraying

Country Status (6)

Country Link
KR (1) KR890000528B1 (en)
AR (1) AR229475A1 (en)
BR (1) BR8107284A (en)
EG (1) EG17701A (en)
GB (1) GB2086766B (en)
MX (1) MX153767A (en)

Also Published As

Publication number Publication date
BR8107284A (en) 1982-08-03
AR229475A1 (en) 1983-08-31
GB2086766B (en) 1984-08-30
KR890000528B1 (en) 1989-03-20
KR830007147A (en) 1983-10-14
EG17701A (en) 1990-10-30
MX153767A (en) 1987-01-08

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Legal Events

Date Code Title Description
732E Amendments to the register in respect of changes of name or changes affecting rights (sect. 32/1977)
PE20 Patent expired after termination of 20 years

Effective date: 20011015