In 1911 an open-cockpit, single seat, mid-wing monoplane was built by (James B) Slinn Aeroplane Co for Eugene Brown of Peoria IL.
The only one built had an oversize elevator mounted above the wing almost making this one a biplane. It was a headless monoplane design with tricycle gear and pusher engine.
A pusher built by James B. Slinn in 1911, looking almost like a biplane as the large elevator was mounted above the wing. Slinn was an inventor who developed aeronautical devices between 1899 and 1910. His first design dates from 1899 when he designed a flying machine with wings and horizontal propellers. This ‘autogiro’ type avant la lettre failed to fly. After he moved from New Orleans to Chillicothe, Illinois he designed in 1910 this monoplane, named the Falcon, for Eugene Brown, a Peoria real estate dealer and president of the local aero club. It completed one flight that ended in a big crash and total destruction.
The Hjordis, named after the heroine of a Norse saga, was designed by Sqn Ldr Mungo Buxton of the Royal Air Force. Buxton, in partnership with Philip Wills, placed the order for its construction with Slingsby in 1934, but for some reason it never acquired a Slingsby type number. The drawings supplied by Buxton showed all the main features of the proposed aircraft, but most of the details remained to be worked out. A good deal was evidently done in the workshops and never fully committed to paper. Only one of the type was built.
The Hjordis had a cantilever wing of unusually high aspect ratio, strongly cambered and very thick at the root, mounted on a very tall, narrow pylon above the fuselage. Spanning just over 15.5m (51ft) the wing had a slight anhedral angle. Viewed from the front, the undersurface of the wing was flat from tip to tip. The taper in thickness resulted in the upper side of the wing descending. This unusual feature was never explained by Buxton, but he may have thought it would improve response to the lateral controls. There was a small wheel on the control column instead of the familiar stick to operate the ailerons, as there was insufficient room to move a joystick laterally.
Buxton had in mind the needs of private-owner syndicates who would operate with minimal crew. He aimed to achieve the best possible soaring performance with a relatively modest wing span. A tapered planform was necessary, both to cut tip vortex drag and to ensure adequate depth of spar to accommodate bending loads at the inner end of the cantilever wing. The taper of the Hjordis wing was fairly pronounced, the ratio being about 4:1.
On the Rhonadler, large amounts of negative wing twist or ‘washout’ were used to ensure that the tips did not stall early. Hjordis incorporated similar ideas.
The choice of the thick, strongly cambered Gottingen 652 section for the wing root of Hjordis was influenced by the successes of the famous Fafnir sailplane designed by Alexander Lippisch, The section at the mid semi-span position was one Buxton s own devising, thinner and less strongly cambered than Go 652. From this position the profile changed gradually to RAF.32 at the extreme tips. The layout was cleverly devised so that, geometrically, the base lines from which the various profiles were plotted remained in alignment, Buxton pointed out that the wing could be built on a flat bench. Each rib would touch the flat surface at two points and would automatically be at the required rigging angle, no complicated blocking up or jigging being needed. Because of the gradual variation of camber and thickness there was 6° of aerodynamic washout, although geometrically there appeared to be none. This stratagem was entirely successful, and tip stalling was never a problem with Hjordis. It was found impossible to make the sailplane spin.
The main wing spar was necessarily massive, the flanges laminated in spruce with plywood shear webbing and hefty steel fittings with horizontal pins to attach the wings separately to the fuselage pylon. A lighter rear spar carried the ailerons. The ribs, with narrow spruce booms and substantial plywood webs to stiffen them, were spaced at a pitch of 8in (203mm). This was less than usual, but obviated the need for intermediate sub-ribs ahead of the main spar. The most unusual feature of the wing was that it was covered with plywood back to the auxiliary spar, when the usual practice at this time was to use ply skin only around the leading edge and cover the rest with doped fabric. The advantages of the extended stressed skin were that the aerofoil section was more accurately preserved and the wing was very much stiffer in torsion.
The total weight of the aircraft was considerably increased, and unlike most sailplanes of the period the plywood covered areas were painted, which added a few more pounds. The colour was light grey, or turquoise grey according to some accounts, rather than white.
The fabric covered areas were clear doped and varnished, which was orthodox practice. After assembly, the gap between the wings was closed with a light plywood fairing. The fuselage was a nearly perfect cigar shape with only slight downward droop of the form near the nose. The usual semi-monocoque structure was employed, with four main longerons supported by circular crossframes and a complete plywood skin. The tall pylon was based on two very robust vertical spars connecting the wing fittings directly to the main skid attachments.
Buxton had seen various types of accidents to sailplanes with pylon-mounted wings. In some cases, when a tip dragged on the ground during a landing, the wing could twist completely off the fuselage. In a touchdown with a little sideways drift, the fuselage might be torn off and rolled under the wing. Minor errors of judgement could thus become bad accidents. The Hjordis pylon was stressed to withstand a side load of half a tonne applied at the skid, and 50kg (110lb) dragging force applied at the wingtip. The tailplane was of the all-moving type, mounted part way up the triangular fin. Hjordis had a large rudder with only a little aerodynamic balancing.
After the end of the 1935 BGA meeting, the editor of Sailplane and Glider reported that the new sailplane ‘seems to have a simply phenomenal performance’. Wills carried off the de Havilland Cup for height gain and the Manio Cup for a pre-declared out and return cross country flight of 38km (23.5 miles).
The wing itself, though torsionally stiff, was too flexiblein bending near the tips. After landing, a sailplane tilts over until the wingtip on one side touches the ground. The flexibility of the outer spars allowed the underside to be pressed down on to the surface for some distance, so any stones readily punctured the thin skin. Re- skinning with heavier plywood was necessary. Philip Wills wrote: ‘Quite soon it became apparent that designers have paid too much attention to aerodynamic form and far too little to the shape of the human behind and the needs of the human frame’. He was giving an account of the flight he made in July 1936, which, unpleasant though it was for him, broke the British distance record, 167km (103.5 miles) from Dunstable to the coast south of Lowest oft. The sun beating into the cockpit through the minute talc roof soon gave me a splitting headache. Constant circling and hard work rapidly transformed this into a sick headache. Then came a thirst like the Sahara, closely followed by cramp.’ Relief came only when he ‘burst thickly out of Hjordis’ and sensed ‘the fresh, cool smell of the sea.’ Additional vents were cut. The cramps were reduced a little by chopping out half-moon shaped pieces on either side of the canopy. From this time Wills flew Hjordis with his shoulders sticking out into the breeze.
Buxton himself admitted that the controls were not good. The elevator was too sensitive, and without a trim tab at high speeds the load on the stick was too great. The ailerons were also unsatisfactory. They lacked diagonal stiffeners and so deflected several degrees at the ends under load, giving poor control. The fin was too small. More directional stability was needed.
Probably most serious of all, the Hjordis had no spoilers or airbrakes. Philip Wills was beginning at this time, as he put it, to nibble nervously at clouds, and he had fitted some gyro instruments. On his first serious attempt to circle up blind inside a cumulus, at an Easter meeting in Derbyshire, he lost control within a minute or two. The airspeed indicator went twice round the dial and he ‘burst out of the cloud base in a dive rather over the vertical’ with the Hjordis ‘bellowing like a bull in considerable pain’. The sailplane did not break up, probably owing to the good torsional resistance of the plywood skinned wings.
It had originally been intended to fit an airbrake. The idea was to make the rudder in two pieces, split like a clamshell along the hinge line. When right or left rudder was applied in the normal way, the two clamshells would move together to the same side. To brake, both of the pilot’s feet would be pushed forward and the two shell halves would open out in opposite senses to create high drag. This rudder brake was never fitted. Buxton wrote that among so many new developments this seemed just one too much.
Apart from the dangers of cloud flying without airbrakes, it was a pity that the Hjordis was without even elementary spoilers for landing. Wills damaged it many times because there was no reliable way of getting safely down within a reasonable space. Sideslipping, turning the entire fuselage at an angle to the airflow, could help during the early phases of a landing approach, but the wings had to be levelled well before touchdown. Skimming a few feet off the ground, some extra drag could be created by fishtailing; using the rudder to yaw the aircraft from side to side. This also had to stop before landing. On levelling out and straightening up to flare-out, just when high drag was needed, it was reduced because of the proximity of the ground and its restraining effects on the induced down wash. After a cross-country flight Hjordis would float and float and float across a small field until it hit the upwind boundary or until the pilot deliberately ground-looped to prevent hitting it. In one landing Wills turned it over completely. Buxton mentioned another accident which broke one wing in two and severely twisted the pylon. Only his strong vertical members prevented the glider wringing its neck. There were many other occasions when it had to go back to Slingsby for repairs.
Despite the limitations of his aircraft, Wills had many successes. He captured national records for height gain as well as distance. In the 1936 BGA competitions at Camphill in the Peak District he won the cross-country flying prize, reaching Lincoln. It was not customary at this time to total up the scores and declare a National Champion. Separate prizes were awarded for slope soaring duration flights and gains of height as readily as for distance. It was recognised, nonetheless, that Wills and Hjordis were an outstandingly good combination.
The first truly international soaring championships were held in Germany during July 1937. Five British sailplanes were entered. Wills preferred to take Hjordis, with which by now he was thoroughly familiar, rather than one of the new and, as it proved, unreliable King Kites. Wills placed 14th, exactly halfway down the list. He had his usual problems on landing, ending one flight with the sailplane’s nose in a stream but he and the rest of the British group learned a great deal by observing how the more experienced German and Polish pilots flew. Doubts about the thermal soaring capabilities of their large aircraft were entirely dispersed.
Advertisements appearing in Sailplane and Glider early in 1938 stated: For sale, HJORDIS, the outstanding British high efficiency sailplane. It holds the British distance and goal flight record, placed first in the 1937 British competitions; holds most of the British Gliding trophies and awards. It has done over 850 miles of cross-country flying (on purpose), has been dived to 125mph in cloud (by accident), is extremely strong (by gum); won the distance trophy (by Wakefield); is in first class condition (by Slingsby); and is for sale by Philip Wills.
It was bought eventually by Messrs Brink & Horrell in Johannesburg. Very little was heard about its exploits after it left Britain, but it was flown in South Africa for some years. A rare photograph shows that, to begin with at least, it retained its British civil registration letters, G-GAAA, and the 1937 Wasserkuppe competition number 15 remained on the nose. Officially it was registered as ZS-23. It was used late in 1939 by E. Dommisse for a record height climb to 3,600m (12,000ft) above ground, which, since the take-off was from Quaggaport 1,740m (5,800ft) above sea level, represented an altitude of 5,340m (17,800ft) without oxygen breathing apparatus. The last 1,200m (4,000ft) of the ascent were in cloud without blind flying instruments, Dommisse relying on his airspeed indicator and a simple cross-level bubble.
What finally became of Hjordis is not known.
Slingsby Hjordis Wingspan: 15.54 m (51 ft 0 in) Wing area: 11.52 m2 (124.0 sq ft) Aspect ratio: 21 Airfoil: Göttingen 652 at root, RAF 32 at tip Length: 6.58 m (21 ft 7 in) Empty weight: 144 kg (317 lb) Gross weight: 218 kg (481 lb) Rate of sink: 0.61 m/s (120 ft/min) minimum Lift-to-drag: 24 Wing loading: 18.9 kg/m2 (3.9 lb/sq ft) Crew: 1
The Fournier company in France, manufacturer of a range of sporting aircraft, was in receivership and its RF6B, an aerobatic two-seat club trainer with fabric covered steel-tube fuselage and wood-and fabric wing designed in the early 1970s, looked promising. Slingsby bought the last of the RF6B line, numbering 10 or so aircraft in various stages of completion, along with all manufacturing rights, and called it the T67A.
Those aircraft were leased out to various aero clubs in the United Kingdom and the clubs were asked for their full and frank comments. At the same time, the T67A was being re-engineered for production in fibreglass at Kirbymoorside, Yorkshire, but retaining the shape and all the RF6B’s good points, and incorporating suggestions filtering back from the aero clubs. The end result was the Slingsby Firefly, a range of aerobatic trainers of differing engine power in the one airframe.
The Slingsby T67 Firefly was the world’s first aerobatic GRP aircraft to receive full public transport certification, meeting both the British BCAR and American Aviation Administration FAR part 23 requirements.
First flown in May 1981, the base model is the T67B, with the 116 hp Lycoming engine. The T67C has the 160 hp Lycoming carburettor engine, still with fixed-pitch propeller, while the T67D is fuel-injected, 160 hp, and with constant-speed propeller, as well as having wing mounted 159 litre fuel tanks in place of the fuselage mounted 113 litre tank found in the B and C models. Next is the T67M (for military), still with the same engine as the D but with a few extra items of equipment that air forces can’t do without, and top of the line is the T67M200, with 200 hp fuel-injected Lycoming because the military doesn’t think of any aircraft in terms of less than 200 hp.
The most potent and best-balanced of them all is generally reckoned to be the 160 hp fuel-injected version, with full inverted everything, which will exceed all military specifications except horsepower. The M models come with inverted fuel and oil systems as standard equipment, while the lesser versions are all equipped with sump trays that retain a semblance of oil presssure under negative G, but of course run out of power upside down. First flight of the T67M200 was made on 16 May 1985 and production examples are powered by a 200 hp (149 kW) Textron Lycoming AEIO-360-A1E engine. Customers for this version to 1990 include the Turkish Aviation Institute, King Air in Holland and the Royal Hong Kong Auxiliary Air Force. Production of the earlier T67B, C and D exceeded 90 aircraft.
From 1992 one-hundred and thirteen T-67 Firefly were operated in USAF service as T-3A Firefly (92-0625 to 0662, 93-0555 to 0596, and 94-0001 to 0033), wearing civil registrations, at Randolph Field TX.
T67M Firefly Engine: 1 x Lycoming AEIO-320, 119 kW Span: 10.6 m Length: 7.3 m Wing area: 12.6 sq.m Empty wt: 650 kg MTOW: 907 kg Max speed: 256 kph Initial ROC: 360 m / min Ceiling: 4570 m T/O run: 190 m Ldg run: 230 m Fuel internal: 160 lt Range: 980 km
Designed by R. Sanders, the T-65 15m Contest Class single-seater is the first sailplane of entirely Slingsby design to appear since the liquidation of the former Slingsby Aircraft Co in July 1969 and its reorganisation as part of the Vickers group; it was later known as Slingsby Engineering Ltd (Aircraft Division). The Vega was designed to take advantage of the change in Standard Class rules permitting camber-changing flaps to be installed in this class after 1976. The all composite T. 65 was the first sailplane designed from the outset with a carbon fibre mainspar. The wings are of foam plastics sandwich construction with a single carbon-fibre main spar, which keeps the weight of each wing down to only about 130lb; the Wortmann wing section and carbon-fibre spar allow a constant 15% thickness/chord ratio from root to tip, giving performance benefits at the higher speeds. The wing tips are turned downwards to reduce tip stalling and are protected by inset metal rubbing strakes, and a convenient feature is that all controls are automatically coupled on rigging, leaving only the centre pin to be inserted. The wings also hold up to 195lb of water ballast in shaped plastic bags, thus avoiding any leakage which may occur when the wing itself is used as a tank. The cantilever mid-set wings are designed for optimum performance and have combined flaps/air brakes inboard and the ailerons outboard; the latter can be operated independently or in conjunction with the flaps. The wings have a unique single-lever operation for the flap and air brake system instead of using two separate levers as in other types; in the Vega the lever moves fore and aft in the usual way for air brake movement but is rotated by wrist action to select the flap positions which range from -12° to + 12°. The air brakes are hinged to the flaps with continuous flexible straps. Trim setting is adjustable by flap setting for hands-off flight at most operating speeds. Also automatic are the coupling of control and ballast-dumb plumbing on rigging.
The Vega prototype first flew on 3 June 1977 and, after some initial problems resulting from stiffness of the single-lever flap/air brake control, resumed test flights in November that year; the first production delivery was in April 1978, by which time 48 had already been ordered.
The fuselage is a conventional semi-monocoque plastics structure, and is gently ‘waisted’ to reduce the possibility of airflow separation over the wing/fuselage junction; the tow hook is carried on the frame that carries the monowheel, and retracts with it. The latter has a brake, and an unusual feature for a sailplane is that the Vega’s tailwheel retracts as well. The pilot sits upright under a long one-piece canopy which opens forwards and upwards, and is jettisonable. The cantilever T-tail has a tailplane of symmetrical Wortmann section with a carbon-fibre spar and a separate elevator with a spring trimmer.
The A model has glass wing skins and 100 kg/ 220 lb of water ballast, while the D model has Kevlar skins for added strength and 160 kg./ 352 lb of ballast. The T. 65C model is a Sports Class variant. The T65C Sport Vega first flew on 18 December 1979, and this version differs from the Vega in having a glassfibre main spar, rotating trailing edge air brakes instead of flaps, and a fixed monowheel and tailwheel. There is no provision for water ballast. The T.65D was first built in 1979 with a standard price at the time of US$17,900. At the time it was produced, the Slingsby company operated under the name Vickers-Slingsby, but the Vickers part was subsequently dropped.
By the beginning of 1980 34 Vegas had been delivered.
Span: 49 ft 2.5 in Length: 22 ft 0.5 in Height: 4 ft 11 in Wing area: 108.2 sqft Aspect ratio: 22.4 Empty weight: 515 lb Max weight: 970 lb Max speed: 155 mph (in smooth air) Max aero-tow speed: 92 mph Min sinking speed: 2.21 ft/sec at 51 mph Best glide ratio: 42:1 at 69 mph
T.65D Wing span: 15m / 49.2ft Wing area: 10.05sq.m / 108.2sq.ft Length: 22 ft Height: 4.75 ft Empty Weight: 236kg / 520lb Payload: 600lb / 272kg Gross Weight: 1120lb /508kg Wing Load: 10.35lb/sq.ft / 50.5kg/sq.m Water Ballast: 352lb /160kg Airfoil: Wortmann FX 67-K-150 Aspect ratio: 22 MinSink: 0.56 m/s / 1.85 fps / 1.10 kt No. of Seats: 1 L/DMax: 42.1 @ 111 kph / 60 kt / 69 mph Max speed: 135 kt Stall speed: 34 kts Rough air airspeed: 135 kts No. Built: 80 Structure: carbon fibre main spar, Kevlar wing skin, fibreglass fuselage and tail
Vega Wing span: 15.0 m / 49 ft 2 in Length: 6.72 m / 22 ft 0.5 in Wing area: 10.05 sq.m / 108.2 sq ft Wing section: Wortmann FX-67-K-150/FX-71-L-150 Aspect ratio: 22.4 Empty weight: 234 kg / 516 lb Max weight: 440 kg / 970 lb Water ballast: 88 kg / 195 lb Max wing loading: 43.8 kg/sq.m / 8.97 lb/sq ft Max speed: 135 kt / 250 km/h Stalling speed: 36 kt / 67 km/h Min sinking speed: 0.67m/sec / 2.21 ft/sec at 44 kt / 82 km/h Best glide ratio: 42 at 60 kt / 111 km/h
Universal Pictures contracted Slingsby Sailplanes to build rwo flying and several static replicas of the 1917 Rumpler C.IV scout aircraft. They were built at Kirkbymoorside 1968/69 using Tiger Moth airframes and Gipsy Major 10 Mk. 1-3 engines.
The Gipsy Major 10 Mk. 1-3 engine, converted to run upright by Hants & Sussex.
The Tiger basis made them 0.86 scale replicas.
First flown in March 1969 they were shipped to Tunisia for filming before being sold in Virginia.
c/n 1704 G-AXAL First flew 24 March 1969 at Rufforth Sold in USA as N1915E It was donated to the Golden Age Air Museum in Pennsylvania
c/n 1705 G-AXAM First flew 25 March 1969 at Rufforth Sold in USA as N1916E with Ron Bloomquist in Tennessee, USA, in July 2007
Engine: Gipsy Major 10 Mk. 1-3 Wingspan: 39.04 ft Length: 23.11 ft
In 1969 Slingsby built a flyable Type T.57 Sopwith Camel Replica powered by a 145hp Warner Scarab engine for use in a Biggles film that was not made. It first flew on 4 March 1969, at White Waltham.
It became N1917H in 1971 (Flying Circus, Bealeton, VA). In 1973 it was sold to Pocono Eagle Industries, but damaged in a ground loop.
In 1975 repairs were started and it was brought back to the UK by AF Carlisle and became G-AWYY. Rebuild completed by Shuttleworth Collection at Old Warden with 29 hours on the log, flown again in October 1976.
Registered G-AWYY c/n 1701, it has a Warner Scarab engine installed and is painted as B6401.
In March 1977 it went to Leisure Sport at Chertsey but in 1982 it was put up for sale and stored at Lands End, Cornwall.
In February 1984 it went to the FAAM at Yeovilton and stored in the Cobham Hall reserve collection. The Certificate of Airworthiness expired on 1 September 1985.
This aircraft is now on display at the Fleet Air Arm Museum, Yeovilton painted as B6401.
Engine: 145hp Warner Scarab Span: 28.00 ft Length: 19.04 ft
In 1967 Slingsby Sailplanes Limited built six Currie Wot based aircraft to represent the Royal Aircraft Factory S.E.5A for film work. They were powered by 115 hp Lycoming O-235 engines with dummy exhausts and other modifications as 0.83 scale replicas.
They were not modified Currie Wots but were built by Slingsby as a new type based in the Wot drawings, they differ considerably from the Wot. Gliding guru Derek Piggot oversaw the construction of the Slingsby versions, but due to a slight scaling error in design, the nose section was big and boxy. It had almost twice the frontal area, so a large part of the propellor arc was blanked and performance suffered.
They were delivered to Ireland and fitted with dummy guns for the film Darling Lili. These Slingbsy T.56 were referred to as Minis due to their not being full size reproductions. Many static mock ups were built by Slingsby at the same time for the Film Darling Lili.
Four additional SE-5s (N908AC, N909AC, N910AC & N912AC) built after The Blue Max for Darling Lili and used in You Can’t Win Them All, Von Richthofen and Brown and Zeppelin were technically Slingsby T56s, 7/8-scale replicas built on converted Currie Wot biplane kits. The latter two movies saw fatal crashes and the aircraft were soon after dispersed to private collections. They were all sold to The Fighting Air Command in Denton, Texas, in the early 1980s, by which time none of them were airworthy.