The invention relates to a moving blade row of high peripheral speed for thermal axial-flow turbo machines, typically for the last stage of condensing steam turbines in which the middle and outer regions of the blades, viewed in a radial direction, are in the range of transonic flow.
Condensing steam turbines of high output call for relatively long blades in the last stage with pitch diameters of approximately 2500 mm. At a rotative speed of 3000 rpm, the peripheral speed in that stage will be approximately 390 m/sec, the relative velocity of the steam leaving the moving blade at the median section will be approximately 1.4 times the speed of sound (Ma.sub.2 = 1.4). Since the steam flow entering the blade rows in the region of the angle of attack .beta..sub.1 of 70.degree. to 110.degree. is approximately at a right angle, an inlet Mach No. Ma.sub.1 = 0.2 to 0.4 is obtained at the blade rows of steam turbines -- depending on the outlet angle adopted.
In the Drawings
FIG. 1 shows a section through two conventional turbine blades.
FIG. 2 shows a section through two turbine blades having middle and outer regions with features of the present invention.
The outlet Mach number being only just above unity, it is known practice in steam turbines to use conventional wing sections such as are illustrated in FIG. 1 of the drawing. In this known section, acceleration takes place from the sonic line (Ma = 1) between the points b - c to the outlet Mach No. Ma.sub.2 = 1.4 in the region a-b-c-d-e. Supersonic expansion calls for additional space for the flow which is obtained by a rotation through the angle .DELTA..beta.. This process occurs without matching wall surfaces in the blade lattice in an uncontrolled manner in the free space a-c-d-e. A disadvantage of these known wing sections is in the high two-dimensional profile losses with increasing outlet Mach numbers Ma.sub.2.
The two-dimensional profile loss is defined as ##EQU1## IN WHICH: W.sub.1 = RELATIVE FLOW VELOCITY AT THE LATTICE INLET
w.sub.2 = relative flow velocity at the lattice outlet
.DELTA.i.sub.s = isentropic blade wheel or runner drop.
The object of the invention is to provide a moving blade row of the type described initially which -- compared to conventional wing sections -- affords lower profile losses at outlet Mach numbers between 1 and 1.5 and permits smaller outlet angles.
According to the invention, this object is attained by having the blade section formed in the middle range, or in the middle and outer ranges, starting from the trailing edge, by two straight lines of which the straight line at the suction surface side joins the steadily curved curve of the remaining pressure surface side with a discontinuity in the vicinity of the trailing edge of the blade.
The features of the invention enable in particular a higher peripheral efficiency (related to the work transmitted to blade air-foils) to be achieved because the profile losses are lower. The peripheral efficiency is expressed by the equation: ##EQU2## In this equation: L.sub.w = peripheral work
.DELTA.i.sub.s = isentropic stage drop
c.sub.o = absolute entrance flow velocity of the fluid medium in front of the stage
c.sub.2 = absolute flow velocity of the fluid medium past the blade wheel or runner drop.
This advantage primarily derives from the discontinuity at the pressure surface side because it causes part of the corner expansion which generally is at the trailing edge of the blade to be shifted into the passage between the blades. A typical embodiment of the invention is shown schematically in FIG. 2. This drawing shows part of the development of a cylinder surface that is concentric with the rotor shaft and sections the blades -- viewed in a radial direction -- in their middle region.
Every blade section 1 according to the invention is formed starting from the trailing edge H with a small edge radius by two straight lines 2 and 3 and two curved sections 4 and 5 with the curved sections 4 and 5 at the leading edge having a large radius compared to that of the trailing edge.
The curved sections 4 and 5 are calculated in line with known practice in a manner that optimum flow conditions are obtained. The straight line 2 at the suction surface side Sa extends up to the point b of the sonic line (Ma = 1) to join the steady curve 4 of the remaining suction surface side without any discontinuity. The straight line 3 of the pressure surface side D is substantially shorter than the straight line 2 and extends from the trailing edge up to the point c of the sonic line (Ma = 1) and at point c joins the steady curve 5 of the pressure surface side with a discontinuity, i. e. not tangentially, so that a convex corner is formed. The angle .gamma. between the line b - c and the straight line 2 is approximately 90.degree.. The angle .delta. between the line b - c and a horizontal straight line lying in the plane of the drawing is for physical design reasons larger than the angle .delta. of the known blade section according to FIG. 1 which is important for the outlet angle .beta..sub.2 because it is decreased as a result. The angle .nu. between the straight line 3 and the tangent to the curve 5 at point c is matched to the supersonic flow regime.
The sections in the extreme region (tip end) of the blades are constructed in the same manner as the sections in the vicinity of the median section described above.
In the radially middle and outer parts of the blade row, flow is transonic, i. e. the steam enters the blade row at subsonic velocity (Ma.sub.1 = 0.2 to 0.4); .beta..sub.1 = 70.degree. - 110.degree.) to leave the blade row - after a marked deflection - at supersonic velocity which may be at Mach numbers up to 1.5.
It is, of course, to be understood that the present invention is, by no means, limited to the specific showing in the drawings but also comprises any modifications within the scope of the appended claims.