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Theoretical concentrations for solar furnaces
Theoretical Concentrations for Solar Furnaces B y M. H . C o b b l e * University of Delaware, Newark, Delaware
The cencentration for a paraboloid of revolution mirror and for a parabolic cylinder mirror are derived as a function of relative aperture for several target geometries. The expression for o p t i m u m concentration for each target-mirror combination is developed, and the equation for the ideal target shape for a target o f a p a r a b o l i c
l m = m a x i m u m distance from point on mirror to focus, ft
( n = relative aperture
Q,,~ = radiation rate to mirror, B t u hr Btu Qt = radiation rate to target, h r
CONCENTRATIONS
FOR SOLAR FURNACES
R~,~ = distance from the earth to the sun,
Several relationships arc derived for determining the concentration of solar furnaces, using either a singlecurved or a double-curved mirror, for several types of targets. The derivations are based on the following assumptions: (1) all the energy reflected b y an ideal mirror is used; (2) the target area is small c o m p a r e d to the mirror area, a n d so it is assumed t h a t the target does not shield the mirror; (3) all the radiation is parallel to the axis of the mirror,
(92.9 X 10 ~ mi) r = d, ft S = arc length, ft
S,¢ = diameter of sun, 8.66 X 105 mi S~ = .r = :r,,~ = # = g,~ = a = ¢~ =
NOMENCLATURE A = constant A ..... = a r e a o f m i r r o r n o r m a l t o r a d i a t i o n , At = area °f t'arget' ft2 a = vertex ot triangle
, dimensionless
Q = radiation rate, BtUhr
cylinder mirror having a relative aperture o f 4 is obtained, THEORETICAL
D) n =
radius of sun, 4.33 X 105 nfi rectangular coordinate, ft m a x i m u m rectangular coordinate, ft rectangular coordinate, ft m a x i m u m rectangular coordinate, ft angle subtended by the sun, dimensionless angle of deflection that. a ray makes when hitting mirror, dimensionless
2 ) , dimensionless 3'l = (90 ° - ~ ( a) 3,o = 90 ° + ~ , dimensionless
ft ~-
b = vertex of triangle B t u (target) / B t u (mirror) con(,.ent, ration - h r ft 2 C ~ hr ft.~
~i = angle, dimensionless p = polar radius, ft
c = vertex of a triangle D = mirror aperture, it d = t a r g e r width, ft d~1 d/]
INTRODUCTION~DEFINITION CONCENTRATION
Assuming an ideal mirror, the radiation rate falling on the mirror is equal to the radiation rate going
d~, t = target geometry, ft (See Figures)
t h r o u g h the target area, so that.
d~]
0m = 0t
d~)
dc/dn = rate of change of concentration with respect
OF
[11
Multiplying the left, side n u m e r a t o r and denonfinator b y the normal area of the mirror, and multiplying the right side n u m e r a t o r and d e n o m i n a t o r b y the area of the target results in Q~ A~,,,~ _ Qt A t [2]
to relative aperture, dimensionless ds = differential of arc length, ft f = focal length of mirror, fg 1 = distance from point on mirror to focus, ft * Associate Professor of Mechanical Engineering.
A,,,~ 61
At
Rearranging yields Q~the A t _c°ncentrati°nA .. - (7
[3]
"~I"
1
Art m
This concentration (C) will be used in the following derivations: I. C o n c e n t r a t i o n for a parabolic a small relative aperture
cylinder
j
/
having
The concentration is given from the introduction as c
.4 ......
f
"~¢~2
[~1
From the geometry of Fig. 1, it is seen t,hat D X L
I'"
D
'
;
[2]
tl
The definition of relative aperture (n) is n
=
D
[3]
f
~-
thus
Fro.
D = nf
2.
D
Paraboloid
aperture
of
revolution
d =f
2tan
with
small
relative
[41 so
The tangent of the solar half-angle is t a n a = d/2 = d 2 f 2f
[51
The concentration then follows -
__d2
C
-- d
k
f 2 tan
[7]
2 tan a/2 '~
[8]
C =~-.107.3n
[9]
Equations [8] and [9] are good approximations for n < .5, becoming more accurate as n ~ 0. ... ¢I !
N
,
~
~
II.
Concentration having a small
I --
for a paraboloid relative aperture
of revolution
The concentration is
[~1
A ....
•~
C = At \
As seen from Fig. 2 this is equivalent to 7rD 2
-Fro.
1. P a r a b o l i c a p e r t u re
D cylinder
mirror
+J ~ith
small
C
relative
-
4
--
7rd24
62
-
D2 d2
[21
Equation I-[4] states
are of length L, Eq. [1] becomes D = nf
[3]
C -DXL-
D
~dL
rd
From Fig. 2
[2]
Using Eq. 1-[4] tan -a = d/2_ = d 2
f
[4] D = nf
[3]
sin • a =d / i2 d= -2 lm 21,,
[4]
2f
Thus as above
From Fig. 4 d = f
(
~)
[5]
2 t a n 7)_
Using the results of Eqs. [3] and [5] ill [2] results ill
or rearranged d
C-
D= -
(F
d = l,~ (2 sin a )
(nf)2
\
f 2 tan
[6] ~Y"
'~~
. 2 2 tan
l:rom Fig. 3
oy
tm=
2 tan ~
~ / { f - u,,~)~ + x ~ 2 :g
y [7] or
= 4fy
III. C o n e e n t r a t i o n for a parabolic c y l i n d e r h a v i n g cylinder
[8]
At the maximum position this becomes xm'-' = 4 fy.,
target
It is evident from the geometry of the problem, as shox~T1 in Fig. 3, that the diameter of the target that will just receive all the radiation is determined by the rays reflected from the extremity of the mirror (assuming the mirror is symmetric). Thus the concentration is C = A ....
[71]
4f
Equations [6] and [7] are good approximations for small n.
a circular
[(~]
The equation of the parabola with vertex at the origin is
or
C ~ (107.3) 2 n 2 ~ 11,550 n 2
,5]
[9]
Substitution in Eq. [6] yields 1,~, = %/(f -- !1,,)2 + 4fg,, this becomes with rearrangement lm = "v/ (f q- y,.,)2
[10] [11]
or
[1]
At t., = f +
y.,
[12]
From Fig. 3 it is obvious that if the target and mirror But 2
f ~ ] d.
I
Im
a
g" -
and
4f
D 2x., n = .f = f
nf
Ym
:~,,, = ,j ,
Xm = ~
-!
[14]
[151
t
X
Thus substitution of Eq. xm
I., =.l" + y., =.t" + i f
[13]
and [15] in Eq. [12] gives 1
= f q- ~f \ ~ ]
D
[l(~l ,~f ( n~ ) = .f-1-iti = f 1 + ] - 6
Fro. :3. Par,,bolic cylinder mirror with circular cylinder lrtH'get
63
Therefore using Eq. [31 and [16] in Eq. [2] yields C
D r
2 sin
lm =
nf
E(
7r f C=
[
nf
2 sill
1 + 16)
2)]
n
(
7r 1 + 16
2sin
'= [m Fro. 4. Cylinder target geometry
~1
OF
C ~-~
107.3n ~r 1 + n
of n = 4 into Eq. III-[17] gives the m a x i m u m eoneentration.
When n << 1, Eq. [18] simplifies to
C =
C --~ 107.3n ~ 34.2n -7r This relation is good for n < ½
[19]
7r 1 +
2 sill = 7r 1 q - ~ , .
IV. M a x i m u m concentration for a parabolic cylinder having a circular cylinder target The expression for concentration, n
C =
Eq.
C -
III-[17] is
7r 1 + ~ )
2sin
~. 2 X 107.:3
2 sm~
or
-
2 sin
2 ~
An -
[7[
4
1 q- ]~
C -----68.3
where the constant A is given b y
V. C o n c e n t r a t i o n having
[9]
for a paraboloid
a spherical
of revolution
target
1
A=
(
~) ~r 2 sin 2
[2]
Referring to Fig. :3, the diamet~er of the sphere t h a t will just receive all the radiation is determined b y the rays reflected from the e x t r e m i t y of the mirror. T h u s the concentration is
T h e m a x i m u m concentration is determined b y setting the derivative
dn
resulting equation,
equal to zero, and solving the
A,,:
which is
Looking at. Fig. :3, and evaluating for a sphere of diameter d, Eq. [1] becomes
/2n,- I
/
1
( - 1 )n ~ ) [ ~ It
l +~
1 +]~/
C -
rearranging gives
7rD 2 _ D 2 4
~-d'-' n~ 0 = 1 -4- 16
[1]
At
V dC
C-
2n 2 16
[21
4d 2
Using Eq. I-[4] [4]
or
D = ,f
[3]
sina _ d/2 _ d 2 /,, 2l,,
[4]
F r o m Fig. 4 n 2-
16 = 0
[5]
thus
solving for d yields n = ± 4
[6]
(9
T h e solution of n = -- 4 has no meaning. Substitution
d = lm 2 sin ~ 64
[5]
dO
db
~-
,.- .,~
2
~
)-
2 dc 1-.~]
-~
al~
,
2
db
-~"
~''--
X
]
!
d',
--?
~
,,~
Xm
Ym
)
D
I~
FIG. 5. Flat plate target geometry
Using Eq. IIl-[16]
Where the constant A is given by L = f
~ +
[6]
A -
Substitution of Eqs. [3], [5] and [6] in (2) gives (Y
O2
--
4d2
__
[(
4 f
n
C = 4
(1 +]~]
(n/) 2
1 + n 2 ~ ( 2 sin
16/\
.~
4 2 sin
,7,
Setting
2
dn
°Y
2sin ~
d(!
-- " C ~ (107.3)'~n 2 ~ ll,oo0n" -- 4 n'-''~" 4 ( 1 + ~ )/2~2 / (1 A- 16]
[,q]
0
4
n2~2( 2)2 1 + ~/ 2 sin
=
2n
=
(--2)n~
]6
+
[3] 1 -~- ~ i /
( r1~+) ~ i
16 4n:~
[4]
or
2n :~ = 32n
[5]
n = ±4 As before, the solution n = - 4 has no meaning. Substitutionof n = + 4 into E q . V - [ 8 ] , g i v e s t h e m a x i nmm concentration
An2
(
[
0 = 2n
The expression for concentration is 2
A
rearranging gives
C =~ 11,oo0n" ~ 2890n 2 [10] 4 ¥ I . ) l a x i n l u m c o n c e n t r a t i o n for a p a r a b o l o i d of revolution h a v i n g a spherical target
n
equal to zero and solving the resulting
1 -Jr- l(i/
When n < < 1, Eq. [9] may~. be., given as
(
[2]
equation yields
-
C =
1
nZy 1 + ~)/
[1]
65
C=
n
2
( Ill] 4
l +
2isin
_
90 ° -
c o s / 3 - - cos
2 sill
90°-- 2
sin/3
d:' e o s -
16/\
C =
)
(3/
a
db =
l
( 2 sin 2 ) 2
2
[( sill 90 ° cos ~o -- cos 90 ¢ sin 2
cos /3
[7] - - ( e o s 9 0 ° ( ' o s ~ . a + sin g0° sin 2 ) sin/3 ]
or o/
C ---~ 11,550
[8]
dl' e o s ~ de =
VII. Concentration ing a fiat plate
for a parabolic target
cylinder
[10l
2
hay-
cos ~ cos/3 -- sill ,~ sin/3
°
E °
1
But since
T h e starting point for the concentration is
O/
C -
,4 .....
cos ~ = 1.0000
[11]
a sin ~ = .00467
[121
[11
At From Fig. 5 it is seen t h a t for a mirror and t a r g e t of length L,
and
C = D X L = D d~ X L da F r o m Fig. 5 it is also a p p a r e n t t h a t
Eq. [10] m a y be written with good a p p r o x i m a t i o n for all values of /3 except, those approaching 90 ° as d(
[2]
[131
db --
tan a _ d~'/2 _
[3]
d(
2 cos B T h e value on the right of Eq. [13] is equal to d~ as seen
2 lm 2 X 1,o thus, upon rearranging this becomes
dl' = l m ( 2 t a n a )
from Fig. 5. B y syrnlnetry it is seen t.hat the largest image dimension
[4]
[14]
da = 2db
Using the law of sines on triangle abe, Fig. 5
d~
sin 72
F u r t h e r it is seen that
_ d?/2
[51
sin 5
rearranging yields
[151
_
l,,
or db-
d~'sin72 2 sin (3
[6]
dl' = 1,,
substitution of ~
= 90 ° +
~
a 2 tan 2
= f
1 +
2 tan
](i
[71
cos/3 - f - / y 1 8 0 ° - - 72 - - /3 =
180
--
(
90 ° +
0 ~
90 °
c~ _
2
_
cos/3,, -- 'f -- Ym _ f -- y,,, 1. . . .
/3
d~'sin 2 sin
Y=
( 9 0 ° + 0~
90 °
a2
f+
[18]
y.,
F r o m Eq. III-[13],
in Eq. [6] gives
& =
[171
oF
- - /3
[8] =
[16]
Dealing with the angle /3, it can be seen from Fig. 5 that
mad =
d,'/2
tan a 2
_
x4f ~
2
[19]
or [9] Y" =
/3
66
4f
16
[201
Substitution in Eq. [18] gives
f
where the constant A is given by
n~f
cos ~., -
1 - - - n~ --
16 _ ,n2f
f+~
16 2
l+n
A-
a [2] 2 The maximum concentration is determined by setting
[21]
2 tail
16 Using Eq. [14] in [13] used at, the mirror extremity gives 2 n 2 dl' f 1 -4- 16 tan ~ do
{dC'~
)(o)
(
1
\ ] d n equal to zero, and solving the resulting equation for n. Thus
e()s ~m
dC-
0 = A[(l
__
n 2
] ~ ) ( 1 +12(7))-2
~,2~ 2(__~) or f d,--~
( +Y(:) (+) 1 + 16)]
2
?l 2
it2~
[3] 3
tan
[23]
after some rearranging this results in
1 -- lii
n 4 -- 96n 2 + 256 = 0
As before
[41
which in turn yields D = nf
[24]
n = =1=4X/3-4- ,fig
Substitution of Eq. [23] and [24] in Eq. [2] yields C =
[51
Rejecting negative relative apertures, this gives n = 4~v/3 -4- x/g
nf
[6]
f ( 1 + ]~)/ 1 --
or
[ C = (
n2 \
n 2 y ( ~6 2) 1 q-~] 2tan
[25]
(n"=) 107.3n 1 -- 16
(
(/~ ~ -- [
I261
n
a - 107.3n 2 tan ~
[27]
1 -- T6
n2"~2(2) 1 -4- ~6/ 2 tan
[9]
C ='/' 107.3
[10]
2tan
C - A .....
("/?'2) = An (
) a
As before the starting point is
The expression for concentration Eq. VII-(25) is n
1
]1]
IX. Concentration for a paraboloid of revolution h a v i n g a flat p l a t e t a r g e t
VIII. Maximum concentration for a p a r a b o l i c cylinder having a flat plate target
(
' -- 16 rt2)2( a) 1 q-~ 2tan~
The value n = 9.64 is thrown out because it gives a negative eoncenm~tion.
which is Eq. I-[9].
C =
[8]
or
For n << 1
(7b2)
n _-- 9.64
n
C = (
1 -t- 1 6 ]
C '/'
/7]
Putting the solution [7] ill Eq. VII-[25] gives the value
or c =
n ~--- 1.65
1 -- ]~ n2~ 2 1 + 17J)/
[1]
At From Fig. 5 the target geometry ix determined by the largest image thrown on the plate from the extremities of the mirror. Due to symmetry this image will be a
[1-]
67
circle. Thus
The maximum concentration is determined by setting 7rD~
C -
D 2
4
-
~-d,, 2
de
[2]
d,"-
equal to zero and solving the resulting equation
for n. Thus
From Eq. III-[3]
dn
0
0 -- 2n
/,~~N]- 4
and from Eq. VII-[23] f
1 -t-~/\
do ~
tan
+ (-4)n 2 \
[4]
( n2)l-~
n4-
2 tan
(
96n 2 + 2 5 6 = 0
[4]
which in turn yields
(nf) 2
l + 16
\16/J
thisresults after some rearranging in
Substitution of Eq. [3] and [4] in Eq. [2] gives
f
1 + ~/
16 /
[5]
finally
i6/n2~2
or
with the applicable result ¢
~)
n2 l -
C ~---
[(
[6]
Using this value of n in Eq. [1] yields
~Y(~ tan ~
'
9;
1 + 16/\
n
or
~
16/ ( 1 -- ,
C =
(
11,550 n ~ 1 -C ~
n~ ~ ~]
----
C
[71
or
~/
+
[11
1 + Nn2~' ] (2 tan 2 ) ~
c
1
-
(:)
[8]
~
2 tan
When n << 1, Eq. [6] reduces to 2
~t
2 tan c) or
C ~ 11,550n ~-
I8]
These are the same as Equations II-[6] and II-[7] respectively. X. ~|aximum concentration for a paraboloid revolution having a flat plate target
of
The expression for concentration is n ~
.
C =
_ .an
1+~
2tan~
f
21 l
rt ~ -
-
1+Tg
Where ~he constant A is given by A
---
(
1 2 tan ~
[2]
x
i
~"
Fro. 6. Mirror geometry for optimum target shape for a parabolic mirror having a relative aperture of 4.
68
a n d finally
C~ 11,550
[9]
t40-
XI. Optimum target shape for a parabolic mirror having a relative aperture of 4
tan2
d
2X /
l
thus
d = l
ParabolicCylinder I ~-Plate Target (n << I)
120-
T h e target, should p r o v i d e a cross section j u s t wide enough to i n t e r c e p t each b e a m from e v e r y p o i n t on t h e mirror. T h e d e v e l o p m e n t follows. F r o m Fig. 6 it is seen t,hat~ o~ . . . . .d/'2 .
y<
Ioo-
-%~imum Targe! \
\
-~
.o_ =
FCylinder Target j
,
y--_
/ "~,<<1)
80-
o
g
2 tall ,~
Target
/ - - P l a t e
[l]
(o)
I
Mirror
60-
[2]
40-t
F r o m a p r e v i o u s development I = / + :]
[31
On t h e m i r r o r
2 o_
Y
z
2
N]
4.f
o
I 0
,
~
I
2
alld D -
f
2,c -
5
Relative Aperture
n-
n
4
3
FIG. 8 [5]
j'
F r o m Fig. 6 also
thus x
_
[6]
nf
c o t a n ¢~ - f -
3"
y -
f
./~
:~I = f 3"
X
x2
4f3;
2 ')
cot,a n N - 2 ---
~
,
-
-
S
~'t
~ ~
d
l
n
17]
8
m u l t i p l y i n g t h r o u g h b y 8n gives
/
8n c o t a n ~ = 16 -- n 2 -.
or
solving for n yields, finally -.
.
n = 4 (csc ~ -- cot, fl)
n = 4 tan 2 " Fro. 7. Target geometry for optinmm target shape with a par'd)olic mirror having a relative aperture of 4.
Eq. [9] is a c o n v e n i e n t r e l a t i o n b e t w e e n n a n d ¢~. S u b 69
L 14,000
Mirror Paraboloid of Revolution
Plate Target (n (< I) 12,000-
I
~.
/-Plate Target
/
,o,ooo_ , / Spherical Target
g 6,ooo0
4,000-
1
[
0
I
5
2
4
5
T
n- Relative Aperture
FI(~. 10. Ideal t a r g e t cross s e c t i o n for a p a r a b o l i c mirror with a r e l a t i v e a p e r t u r e of 4.
FIG. 9
stitution in Eq. [2] yields d = 1 2
=
(
f +
~
finally = (f+y)
O = ~f sec ~
2tan,~a
xf ) ( 2 ) 2 tan
ThelengthoiareSofl?ig. S =
2 tan 62
7isgivenby
dS =
v @ 4- p,2 d/9
[12I
1
d = f
1 -t- ~
2 tan ~
By symmetry
or
Where d =.f
(
I +~-~
2tan
[10]
o = A see2/9 2
From Fig. 7
P
and the constant. A is given by
2
2
f[ p =
[14]
1+
and p' is
(4 tan 2B-)21( 2 ) 16 2tan
A sin~2
O = ~f i 1 4- tan 2 ' ~ 1 ( 2~ t)a n ~
P'-- cos3-2 /9 7O
[16]
a
S o Earth Z
~
~
~r
_
_
~C. . . . . . . C .~7,~
_
~
x
_
~
The concentration then, for a mirror and target of length L, is
Sr ~
C - A,,,~ _ D X L _ D
SXL
At
Sd
C ~ 4.598f
-
Geometry
of earth and
=
2 tan 9.
[20]
n
4.598
2 tan
Since n = 4, the concentration is
sun
T h u s continuing
4
+{
J°'/24/
(~)2
fit 2
\Atan6/
Thiscomparestothevah,
cos- ~
= 68.3foracircular
x = p cos fl
[22]
p sin fl
[23]
and
.~/~ see ~ ,~; = 4A J0
eofC
To obtain the equation of the target in rectangular coordinates let
1 + t a n 2 a dfl
cos - - 2 fl 2
[21]
C_~93.8
dN
./~ -0
4 X 107.3 4.598
C
/ =
°)
Res
FIG. 11.
S
S
nf
/
[19]
dfl
,/2
~ d ~ = 4A f~o eos~ 97
[17]
-
Y =
fl
3"he equation i or O is
cos '~ p = Asee ~ fl9
~/2 8A ~ dfl/2
-
A
~
_
2A 1 + cos fl
COS2 ~
[24]
A cos' ~
but also
integration yields
,s = 8.4
~
p = ~v/.c~ + y-~
ft + 21
tan
COS2 _
l] i]
+
2
I
J
acos 13 - . p v T . ~ - -+ y2 setting p = p, and rearranging
_]0
7F
2A -
sm~
tan( 4
i
[25]
8)
-
1 +cosfl
i
[26]
V/~2 _~_ y2
2A 1 -+-.x
I_
- V / ~ + y2 +
cos 2 0 + In t a n
+ 0
= % / ~ + g~
V':r~ + y2 + .~. finally N = 4A [ 2 ! . v/ ~ + In tan 3~--] k (½~v/~)2 ~ - ,I S--4A
[ 1~7071 +
In 2.42
]
%/x~-+ q.2 + x = 2A
[18]
[27]
this can be modified t()
v~ + u._,=
= 4A[1.414 + . 8 8 5 ]
2 d --
.,.
:c2 + y2 = 4A 2 _ 4Ax + x 2 S----~4A[2.299] ~ 4
2tan
= 4A 2 -- 4Ax = 4A 2 1 -
[2.299]
S ~=4 . 5 9 8 f " 2 tan
Y = ±2A 7l
~1
A:r
x
[28]
b u t since Se
Substitution of the value of A gives y = 4.2
f
V=&,
2tan~
sin '2 f
2 tan
2R~ - - 2 X 92.9 X 106
the equation for one-half of the surface when
[3al l
~ .00467
214.6 [0
< f (2 tan 2) ]
also
T h e equation for the other half of the target is y = 4-2
[( :)1,/ ( : ) f
2 tan
1 -t-
x
f
•
-f
'2 sin a ~'~ 1 2 - - 107.3
2tan
2 tan
[3t)]
The following trigonometric series are useful in solar furnace relationships :~ a 7
[30]
< x < 0
The slope is given b y
it;
it:
.F
~
5!
7!
X3
9 5 ~:r
6,~2 X 9
17:C 7
tan x = x -~ ~ + ] 5 + 315 + 2 8 ~ -t- " "
[51 y, _
4- 1
T h u s when a is a small angle, it is true t h a t A
y' = -4
1
[6a]
2 sin ,~ ~ 2 t a n ~ ~ a
[(ib]
and a
f
sin ~ ~-- t a n ,~ _ ~
2 tan ~
On the earth, the solar half angle is
[ 0 --<
x < f
(2
a -- Sill •--1 (.004()i~. ")
tan 2)]
[7]
'2
The points of interest are at x = f
2 tan
, and x = 0. •
For the first the slope is
x
3
1.3x ~
sIn-~x = x -I- 2 . 3 -t- 2 ~
1 . 3 "5 x
7
-/- 2 - 4 . 6 . ~ + "'"
Y' = 4- ~ . Forx
[8]
E
= 0, t h e s l o p e i s
if" < 1 , -
y'=
4-1
APPENDIX
~
x
'1
Thus I
a
~'~ .00467 radians ---~.2675 degrees ~ 16.08~mimites. [.9] 2 --
F r o m Fig. 1 sin a _
S~
2
R~,
[1]
I t follows then t h a t the solar angle is =~ 32.16 minutes.
72
[10]
The cencentration for a paraboloid of revolution mirror and for a parabolic cylinder mirror are derived as a function of relative aperture for several target geometries. The expression for o p t i m u m concentration for each target-mirror combination is developed, and the equation for the ideal target shape for a target o f a p a r a b o l i c
l m = m a x i m u m distance from point on mirror to focus, ft
( n = relative aperture
Q,,~ = radiation rate to mirror, B t u hr Btu Qt = radiation rate to target, h r
CONCENTRATIONS
FOR SOLAR FURNACES
R~,~ = distance from the earth to the sun,
Several relationships arc derived for determining the concentration of solar furnaces, using either a singlecurved or a double-curved mirror, for several types of targets. The derivations are based on the following assumptions: (1) all the energy reflected b y an ideal mirror is used; (2) the target area is small c o m p a r e d to the mirror area, a n d so it is assumed t h a t the target does not shield the mirror; (3) all the radiation is parallel to the axis of the mirror,
(92.9 X 10 ~ mi) r = d, ft S = arc length, ft
S,¢ = diameter of sun, 8.66 X 105 mi S~ = .r = :r,,~ = # = g,~ = a = ¢~ =
NOMENCLATURE A = constant A ..... = a r e a o f m i r r o r n o r m a l t o r a d i a t i o n , At = area °f t'arget' ft2 a = vertex ot triangle
, dimensionless
Q = radiation rate, BtUhr
cylinder mirror having a relative aperture o f 4 is obtained, THEORETICAL
D) n =
radius of sun, 4.33 X 105 nfi rectangular coordinate, ft m a x i m u m rectangular coordinate, ft rectangular coordinate, ft m a x i m u m rectangular coordinate, ft angle subtended by the sun, dimensionless angle of deflection that. a ray makes when hitting mirror, dimensionless
2 ) , dimensionless 3'l = (90 ° - ~ ( a) 3,o = 90 ° + ~ , dimensionless
ft ~-
b = vertex of triangle B t u (target) / B t u (mirror) con(,.ent, ration - h r ft 2 C ~ hr ft.~
~i = angle, dimensionless p = polar radius, ft
c = vertex of a triangle D = mirror aperture, it d = t a r g e r width, ft d~1 d/]
INTRODUCTION~DEFINITION CONCENTRATION
Assuming an ideal mirror, the radiation rate falling on the mirror is equal to the radiation rate going
d~, t = target geometry, ft (See Figures)
t h r o u g h the target area, so that.
d~]
0m = 0t
d~)
dc/dn = rate of change of concentration with respect
OF
[11
Multiplying the left, side n u m e r a t o r and denonfinator b y the normal area of the mirror, and multiplying the right side n u m e r a t o r and d e n o m i n a t o r b y the area of the target results in Q~ A~,,,~ _ Qt A t [2]
to relative aperture, dimensionless ds = differential of arc length, ft f = focal length of mirror, fg 1 = distance from point on mirror to focus, ft * Associate Professor of Mechanical Engineering.
A,,,~ 61
At
Rearranging yields Q~the A t _c°ncentrati°nA .. - (7
[3]
"~I"
1
Art m
This concentration (C) will be used in the following derivations: I. C o n c e n t r a t i o n for a parabolic a small relative aperture
cylinder
j
/
having
The concentration is given from the introduction as c
.4 ......
f
"~¢~2
[~1
From the geometry of Fig. 1, it is seen t,hat D X L
I'"
D
'
;
[2]
tl
The definition of relative aperture (n) is n
=
D
[3]
f
~-
thus
Fro.
D = nf
2.
D
Paraboloid
aperture
of
revolution
d =f
2tan
with
small
relative
[41 so
The tangent of the solar half-angle is t a n a = d/2 = d 2 f 2f
[51
The concentration then follows -
__d2
C
-- d
k
f 2 tan
[7]
2 tan a/2 '~
[8]
C =~-.107.3n
[9]
Equations [8] and [9] are good approximations for n < .5, becoming more accurate as n ~ 0. ... ¢I !
N
,
~
~
II.
Concentration having a small
I --
for a paraboloid relative aperture
of revolution
The concentration is
[~1
A ....
•~
C = At \
As seen from Fig. 2 this is equivalent to 7rD 2
-Fro.
1. P a r a b o l i c a p e r t u re
D cylinder
mirror
+J ~ith
small
C
relative
-
4
--
7rd24
62
-
D2 d2
[21
Equation I-[4] states
are of length L, Eq. [1] becomes D = nf
[3]
C -DXL-
D
~dL
rd
From Fig. 2
[2]
Using Eq. 1-[4] tan -a = d/2_ = d 2
f
[4] D = nf
[3]
sin • a =d / i2 d= -2 lm 21,,
[4]
2f
Thus as above
From Fig. 4 d = f
(
~)
[5]
2 t a n 7)_
Using the results of Eqs. [3] and [5] ill [2] results ill
or rearranged d
C-
D= -
(F
d = l,~ (2 sin a )
(nf)2
\
f 2 tan
[6] ~Y"
'~~
. 2 2 tan
l:rom Fig. 3
oy
tm=
2 tan ~
~ / { f - u,,~)~ + x ~ 2 :g
y [7] or
= 4fy
III. C o n e e n t r a t i o n for a parabolic c y l i n d e r h a v i n g cylinder
[8]
At the maximum position this becomes xm'-' = 4 fy.,
target
It is evident from the geometry of the problem, as shox~T1 in Fig. 3, that the diameter of the target that will just receive all the radiation is determined by the rays reflected from the extremity of the mirror (assuming the mirror is symmetric). Thus the concentration is C = A ....
[71]
4f
Equations [6] and [7] are good approximations for small n.
a circular
[(~]
The equation of the parabola with vertex at the origin is
or
C ~ (107.3) 2 n 2 ~ 11,550 n 2
,5]
[9]
Substitution in Eq. [6] yields 1,~, = %/(f -- !1,,)2 + 4fg,, this becomes with rearrangement lm = "v/ (f q- y,.,)2
[10] [11]
or
[1]
At t., = f +
y.,
[12]
From Fig. 3 it is obvious that if the target and mirror But 2
f ~ ] d.
I
Im
a
g" -
and
4f
D 2x., n = .f = f
nf
Ym
:~,,, = ,j ,
Xm = ~
-!
[14]
[151
t
X
Thus substitution of Eq. xm
I., =.l" + y., =.t" + i f
[13]
and [15] in Eq. [12] gives 1
= f q- ~f \ ~ ]
D
[l(~l ,~f ( n~ ) = .f-1-iti = f 1 + ] - 6
Fro. :3. Par,,bolic cylinder mirror with circular cylinder lrtH'get
63
Therefore using Eq. [31 and [16] in Eq. [2] yields C
D r
2 sin
lm =
nf
E(
7r f C=
[
nf
2 sill
1 + 16)
2)]
n
(
7r 1 + 16
2sin
'= [m Fro. 4. Cylinder target geometry
~1
OF
C ~-~
107.3n ~r 1 + n
of n = 4 into Eq. III-[17] gives the m a x i m u m eoneentration.
When n << 1, Eq. [18] simplifies to
C =
C --~ 107.3n ~ 34.2n -7r This relation is good for n < ½
[19]
7r 1 +
2 sill = 7r 1 q - ~ , .
IV. M a x i m u m concentration for a parabolic cylinder having a circular cylinder target The expression for concentration, n
C =
Eq.
C -
III-[17] is
7r 1 + ~ )
2sin
~. 2 X 107.:3
2 sm~
or
-
2 sin
2 ~
An -
[7[
4
1 q- ]~
C -----68.3
where the constant A is given b y
V. C o n c e n t r a t i o n having
[9]
for a paraboloid
a spherical
of revolution
target
1
A=
(
~) ~r 2 sin 2
[2]
Referring to Fig. :3, the diamet~er of the sphere t h a t will just receive all the radiation is determined b y the rays reflected from the e x t r e m i t y of the mirror. T h u s the concentration is
T h e m a x i m u m concentration is determined b y setting the derivative
dn
resulting equation,
equal to zero, and solving the
A,,:
which is
Looking at. Fig. :3, and evaluating for a sphere of diameter d, Eq. [1] becomes
/2n,- I
/
1
( - 1 )n ~ ) [ ~ It
l +~
1 +]~/
C -
rearranging gives
7rD 2 _ D 2 4
~-d'-' n~ 0 = 1 -4- 16
[1]
At
V dC
C-
2n 2 16
[21
4d 2
Using Eq. I-[4] [4]
or
D = ,f
[3]
sina _ d/2 _ d 2 /,, 2l,,
[4]
F r o m Fig. 4 n 2-
16 = 0
[5]
thus
solving for d yields n = ± 4
[6]
(9
T h e solution of n = -- 4 has no meaning. Substitution
d = lm 2 sin ~ 64
[5]
dO
db
~-
,.- .,~
2
~
)-
2 dc 1-.~]
-~
al~
,
2
db
-~"
~''--
X
]
!
d',
--?
~
,,~
Xm
Ym
)
D
I~
FIG. 5. Flat plate target geometry
Using Eq. IIl-[16]
Where the constant A is given by L = f
~ +
[6]
A -
Substitution of Eqs. [3], [5] and [6] in (2) gives (Y
O2
--
4d2
__
[(
4 f
n
C = 4
(1 +]~]
(n/) 2
1 + n 2 ~ ( 2 sin
16/\
.~
4 2 sin
,7,
Setting
2
dn
°Y
2sin ~
d(!
-- " C ~ (107.3)'~n 2 ~ ll,oo0n" -- 4 n'-''~" 4 ( 1 + ~ )/2~2 / (1 A- 16]
[,q]
0
4
n2~2( 2)2 1 + ~/ 2 sin
=
2n
=
(--2)n~
]6
+
[3] 1 -~- ~ i /
( r1~+) ~ i
16 4n:~
[4]
or
2n :~ = 32n
[5]
n = ±4 As before, the solution n = - 4 has no meaning. Substitutionof n = + 4 into E q . V - [ 8 ] , g i v e s t h e m a x i nmm concentration
An2
(
[
0 = 2n
The expression for concentration is 2
A
rearranging gives
C =~ 11,oo0n" ~ 2890n 2 [10] 4 ¥ I . ) l a x i n l u m c o n c e n t r a t i o n for a p a r a b o l o i d of revolution h a v i n g a spherical target
n
equal to zero and solving the resulting
1 -Jr- l(i/
When n < < 1, Eq. [9] may~. be., given as
(
[2]
equation yields
-
C =
1
nZy 1 + ~)/
[1]
65
C=
n
2
( Ill] 4
l +
2isin
_
90 ° -
c o s / 3 - - cos
2 sill
90°-- 2
sin/3
d:' e o s -
16/\
C =
)
(3/
a
db =
l
( 2 sin 2 ) 2
2
[( sill 90 ° cos ~o -- cos 90 ¢ sin 2
cos /3
[7] - - ( e o s 9 0 ° ( ' o s ~ . a + sin g0° sin 2 ) sin/3 ]
or o/
C ---~ 11,550
[8]
dl' e o s ~ de =
VII. Concentration ing a fiat plate
for a parabolic target
cylinder
[10l
2
hay-
cos ~ cos/3 -- sill ,~ sin/3
°
E °
1
But since
T h e starting point for the concentration is
O/
C -
,4 .....
cos ~ = 1.0000
[11]
a sin ~ = .00467
[121
[11
At From Fig. 5 it is seen t h a t for a mirror and t a r g e t of length L,
and
C = D X L = D d~ X L da F r o m Fig. 5 it is also a p p a r e n t t h a t
Eq. [10] m a y be written with good a p p r o x i m a t i o n for all values of /3 except, those approaching 90 ° as d(
[2]
[131
db --
tan a _ d~'/2 _
[3]
d(
2 cos B T h e value on the right of Eq. [13] is equal to d~ as seen
2 lm 2 X 1,o thus, upon rearranging this becomes
dl' = l m ( 2 t a n a )
from Fig. 5. B y syrnlnetry it is seen t.hat the largest image dimension
[4]
[14]
da = 2db
Using the law of sines on triangle abe, Fig. 5
d~
sin 72
F u r t h e r it is seen that
_ d?/2
[51
sin 5
rearranging yields
[151
_
l,,
or db-
d~'sin72 2 sin (3
[6]
dl' = 1,,
substitution of ~
= 90 ° +
~
a 2 tan 2
= f
1 +
2 tan
](i
[71
cos/3 - f - / y 1 8 0 ° - - 72 - - /3 =
180
--
(
90 ° +
0 ~
90 °
c~ _
2
_
cos/3,, -- 'f -- Ym _ f -- y,,, 1. . . .
/3
d~'sin 2 sin
Y=
( 9 0 ° + 0~
90 °
a2
f+
[18]
y.,
F r o m Eq. III-[13],
in Eq. [6] gives
& =
[171
oF
- - /3
[8] =
[16]
Dealing with the angle /3, it can be seen from Fig. 5 that
mad =
d,'/2
tan a 2
_
x4f ~
2
[19]
or [9] Y" =
/3
66
4f
16
[201
Substitution in Eq. [18] gives
f
where the constant A is given by
n~f
cos ~., -
1 - - - n~ --
16 _ ,n2f
f+~
16 2
l+n
A-
a [2] 2 The maximum concentration is determined by setting
[21]
2 tail
16 Using Eq. [14] in [13] used at, the mirror extremity gives 2 n 2 dl' f 1 -4- 16 tan ~ do
{dC'~
)(o)
(
1
\ ] d n equal to zero, and solving the resulting equation for n. Thus
e()s ~m
dC-
0 = A[(l
__
n 2
] ~ ) ( 1 +12(7))-2
~,2~ 2(__~) or f d,--~
( +Y(:) (+) 1 + 16)]
2
?l 2
it2~
[3] 3
tan
[23]
after some rearranging this results in
1 -- lii
n 4 -- 96n 2 + 256 = 0
As before
[41
which in turn yields D = nf
[24]
n = =1=4X/3-4- ,fig
Substitution of Eq. [23] and [24] in Eq. [2] yields C =
[51
Rejecting negative relative apertures, this gives n = 4~v/3 -4- x/g
nf
[6]
f ( 1 + ]~)/ 1 --
or
[ C = (
n2 \
n 2 y ( ~6 2) 1 q-~] 2tan
[25]
(n"=) 107.3n 1 -- 16
(
(/~ ~ -- [
I261
n
a - 107.3n 2 tan ~
[27]
1 -- T6
n2"~2(2) 1 -4- ~6/ 2 tan
[9]
C ='/' 107.3
[10]
2tan
C - A .....
("/?'2) = An (
) a
As before the starting point is
The expression for concentration Eq. VII-(25) is n
1
]1]
IX. Concentration for a paraboloid of revolution h a v i n g a flat p l a t e t a r g e t
VIII. Maximum concentration for a p a r a b o l i c cylinder having a flat plate target
(
' -- 16 rt2)2( a) 1 q-~ 2tan~
The value n = 9.64 is thrown out because it gives a negative eoncenm~tion.
which is Eq. I-[9].
C =
[8]
or
For n << 1
(7b2)
n _-- 9.64
n
C = (
1 -t- 1 6 ]
C '/'
/7]
Putting the solution [7] ill Eq. VII-[25] gives the value
or c =
n ~--- 1.65
1 -- ]~ n2~ 2 1 + 17J)/
[1]
At From Fig. 5 the target geometry ix determined by the largest image thrown on the plate from the extremities of the mirror. Due to symmetry this image will be a
[1-]
67
circle. Thus
The maximum concentration is determined by setting 7rD~
C -
D 2
4
-
~-d,, 2
de
[2]
d,"-
equal to zero and solving the resulting equation
for n. Thus
From Eq. III-[3]
dn
0
0 -- 2n
/,~~N]- 4
and from Eq. VII-[23] f
1 -t-~/\
do ~
tan
+ (-4)n 2 \
[4]
( n2)l-~
n4-
2 tan
(
96n 2 + 2 5 6 = 0
[4]
which in turn yields
(nf) 2
l + 16
\16/J
thisresults after some rearranging in
Substitution of Eq. [3] and [4] in Eq. [2] gives
f
1 + ~/
16 /
[5]
finally
i6/n2~2
or
with the applicable result ¢
~)
n2 l -
C ~---
[(
[6]
Using this value of n in Eq. [1] yields
~Y(~ tan ~
'
9;
1 + 16/\
n
or
~
16/ ( 1 -- ,
C =
(
11,550 n ~ 1 -C ~
n~ ~ ~]
----
C
[71
or
~/
+
[11
1 + Nn2~' ] (2 tan 2 ) ~
c
1
-
(:)
[8]
~
2 tan
When n << 1, Eq. [6] reduces to 2
~t
2 tan c) or
C ~ 11,550n ~-
I8]
These are the same as Equations II-[6] and II-[7] respectively. X. ~|aximum concentration for a paraboloid revolution having a flat plate target
of
The expression for concentration is n ~
.
C =
_ .an
1+~
2tan~
f
21 l
rt ~ -
-
1+Tg
Where ~he constant A is given by A
---
(
1 2 tan ~
[2]
x
i
~"
Fro. 6. Mirror geometry for optimum target shape for a parabolic mirror having a relative aperture of 4.
68
a n d finally
C~ 11,550
[9]
t40-
XI. Optimum target shape for a parabolic mirror having a relative aperture of 4
tan2
d
2X /
l
thus
d = l
ParabolicCylinder I ~-Plate Target (n << I)
120-
T h e target, should p r o v i d e a cross section j u s t wide enough to i n t e r c e p t each b e a m from e v e r y p o i n t on t h e mirror. T h e d e v e l o p m e n t follows. F r o m Fig. 6 it is seen t,hat~ o~ . . . . .d/'2 .
y<
Ioo-
-%~imum Targe! \
\
-~
.o_ =
FCylinder Target j
,
y--_
/ "~,<<1)
80-
o
g
2 tall ,~
Target
/ - - P l a t e
[l]
(o)
I
Mirror
60-
[2]
40-t
F r o m a p r e v i o u s development I = / + :]
[31
On t h e m i r r o r
2 o_
Y
z
2
N]
4.f
o
I 0
,
~
I
2
alld D -
f
2,c -
5
Relative Aperture
n-
n
4
3
FIG. 8 [5]
j'
F r o m Fig. 6 also
thus x
_
[6]
nf
c o t a n ¢~ - f -
3"
y -
f
./~
:~I = f 3"
X
x2
4f3;
2 ')
cot,a n N - 2 ---
~
,
-
-
S
~'t
~ ~
d
l
n
17]
8
m u l t i p l y i n g t h r o u g h b y 8n gives
/
8n c o t a n ~ = 16 -- n 2 -.
or
solving for n yields, finally -.
.
n = 4 (csc ~ -- cot, fl)
n = 4 tan 2 " Fro. 7. Target geometry for optinmm target shape with a par'd)olic mirror having a relative aperture of 4.
Eq. [9] is a c o n v e n i e n t r e l a t i o n b e t w e e n n a n d ¢~. S u b 69
L 14,000
Mirror Paraboloid of Revolution
Plate Target (n (< I) 12,000-
I
~.
/-Plate Target
/
,o,ooo_ , / Spherical Target
g 6,ooo0
4,000-
1
[
0
I
5
2
4
5
T
n- Relative Aperture
FI(~. 10. Ideal t a r g e t cross s e c t i o n for a p a r a b o l i c mirror with a r e l a t i v e a p e r t u r e of 4.
FIG. 9
stitution in Eq. [2] yields d = 1 2
=
(
f +
~
finally = (f+y)
O = ~f sec ~
2tan,~a
xf ) ( 2 ) 2 tan
ThelengthoiareSofl?ig. S =
2 tan 62
7isgivenby
dS =
v @ 4- p,2 d/9
[12I
1
d = f
1 -t- ~
2 tan ~
By symmetry
or
Where d =.f
(
I +~-~
2tan
[10]
o = A see2/9 2
From Fig. 7
P
and the constant. A is given by
2
2
f[ p =
[14]
1+
and p' is
(4 tan 2B-)21( 2 ) 16 2tan
A sin~2
O = ~f i 1 4- tan 2 ' ~ 1 ( 2~ t)a n ~
P'-- cos3-2 /9 7O
[16]
a
S o Earth Z
~
~
~r
_
_
~C. . . . . . . C .~7,~
_
~
x
_
~
The concentration then, for a mirror and target of length L, is
Sr ~
C - A,,,~ _ D X L _ D
SXL
At
Sd
C ~ 4.598f
-
Geometry
of earth and
=
2 tan 9.
[20]
n
4.598
2 tan
Since n = 4, the concentration is
sun
T h u s continuing
4
+{
J°'/24/
(~)2
fit 2
\Atan6/
Thiscomparestothevah,
cos- ~
= 68.3foracircular
x = p cos fl
[22]
p sin fl
[23]
and
.~/~ see ~ ,~; = 4A J0
eofC
To obtain the equation of the target in rectangular coordinates let
1 + t a n 2 a dfl
cos - - 2 fl 2
[21]
C_~93.8
dN
./~ -0
4 X 107.3 4.598
C
/ =
°)
Res
FIG. 11.
S
S
nf
/
[19]
dfl
,/2
~ d ~ = 4A f~o eos~ 97
[17]
-
Y =
fl
3"he equation i or O is
cos '~ p = Asee ~ fl9
~/2 8A ~ dfl/2
-
A
~
_
2A 1 + cos fl
COS2 ~
[24]
A cos' ~
but also
integration yields
,s = 8.4
~
p = ~v/.c~ + y-~
ft + 21
tan
COS2 _
l] i]
+
2
I
J
acos 13 - . p v T . ~ - -+ y2 setting p = p, and rearranging
_]0
7F
2A -
sm~
tan( 4
i
[25]
8)
-
1 +cosfl
i
[26]
V/~2 _~_ y2
2A 1 -+-.x
I_
- V / ~ + y2 +
cos 2 0 + In t a n
+ 0
= % / ~ + g~
V':r~ + y2 + .~. finally N = 4A [ 2 ! . v/ ~ + In tan 3~--] k (½~v/~)2 ~ - ,I S--4A
[ 1~7071 +
In 2.42
]
%/x~-+ q.2 + x = 2A
[18]
[27]
this can be modified t()
v~ + u._,=
= 4A[1.414 + . 8 8 5 ]
2 d --
.,.
:c2 + y2 = 4A 2 _ 4Ax + x 2 S----~4A[2.299] ~ 4
2tan
= 4A 2 -- 4Ax = 4A 2 1 -
[2.299]
S ~=4 . 5 9 8 f " 2 tan
Y = ±2A 7l
~1
A:r
x
[28]
b u t since Se
Substitution of the value of A gives y = 4.2
f
V=&,
2tan~
sin '2 f
2 tan
2R~ - - 2 X 92.9 X 106
the equation for one-half of the surface when
[3al l
~ .00467
214.6 [0
< f (2 tan 2) ]
also
T h e equation for the other half of the target is y = 4-2
[( :)1,/ ( : ) f
2 tan
1 -t-
x
f
•
-f
'2 sin a ~'~ 1 2 - - 107.3
2tan
2 tan
[3t)]
The following trigonometric series are useful in solar furnace relationships :~ a 7
[30]
< x < 0
The slope is given b y
it;
it:
.F
~
5!
7!
X3
9 5 ~:r
6,~2 X 9
17:C 7
tan x = x -~ ~ + ] 5 + 315 + 2 8 ~ -t- " "
[51 y, _
4- 1
T h u s when a is a small angle, it is true t h a t A
y' = -4
1
[6a]
2 sin ,~ ~ 2 t a n ~ ~ a
[(ib]
and a
f
sin ~ ~-- t a n ,~ _ ~
2 tan ~
On the earth, the solar half angle is
[ 0 --<
x < f
(2
a -- Sill •--1 (.004()i~. ")
tan 2)]
[7]
'2
The points of interest are at x = f
2 tan
, and x = 0. •
For the first the slope is
x
3
1.3x ~
sIn-~x = x -I- 2 . 3 -t- 2 ~
1 . 3 "5 x
7
-/- 2 - 4 . 6 . ~ + "'"
Y' = 4- ~ . Forx
[8]
E
= 0, t h e s l o p e i s
if" < 1 , -
y'=
4-1
APPENDIX
~
x
'1
Thus I
a
~'~ .00467 radians ---~.2675 degrees ~ 16.08~mimites. [.9] 2 --
F r o m Fig. 1 sin a _
S~
2
R~,
[1]
I t follows then t h a t the solar angle is =~ 32.16 minutes.
72
[10]