72-Hf-178
72-Hf-178 JAEA EVAL-AUG09 K. Shibata (JAEA)
DIST-MAY10 20091111
----JENDL-4.0 MATERIAL 7237
-----INCIDENT NEUTRON DATA
------ENDF-6 FORMAT
History
09-08 Evaluated by K. Shibata.
09-10 Compiled by K. Shibata.
MF= 1 General information
MT=451 Descriptive data and directory
MF= 2 Resonance parameters
MT=151 Resolved and unresolved resonance parameters
Resolved resonance parameters (MLBW formula) : Below 1.5keV
JENDL-3.3 was based on the compilation of Mughabghab./1/
In JENDL-4, the data remain unchanged from JENDL-3.3.
Unresolved resonance region: 1.5 keV - 220 keV
The parameters were obtained by fitting to the total and
capture cross sections calculated from POD /2/. The
unresolved parameters should be used only for self-shielding
calculation.
Thermal cross sections and resonance integrals at 300 K
----------------------------------------------------------
0.0253 eV res. integ. (*)
(barns) (barns)
----------------------------------------------------------
Total 8.8527E+01
Elastic 4.4735E+00
n,gamma 8.4054E+01 1.9150E+03
----------------------------------------------------------
(*) Integrated from 0.5 eV to 10 MeV.
MF= 3 Neutron cross sections
MT= 1 Total cross section
Calculated with POD code /2/.
MT= 2 Elastic scattering cross section
Obtained by subtracting non-elastic cross sections from total
cross sections.
MT= 3 Non-elastic cross section
Sum of partial non-elastic cross sections.
MT= 4,51-91 (n,n') cross section
Calculated with POD code /2/.
MT= 16 (n,2n) cross section
Calculated with POD code /2/.
MT= 17 (n,3n) cross section
Calculated with POD code /2/.
MT= 22 (n,na) cross section
Calculated with POD code /2/.
MT= 28 (n,np) cross section
Calculated with POD code /2/.
MT= 32 (n,nd) cross section
Calculated with POD code /2/.
MT=102 Capture cross section
Calculated with POD code /2/.
MT=103 (n,p) cross section
Calculated with POD code /2/.
MT=104 (n,d) cross section
Calculated with POD code /2/.
MT=105 (n,t) cross section
Calculated with POD code /2/.
MT=106 (n,He3) cross section
Calculated with POD code /2/.
MT=107 (n,a) cross section
Calculated with POD code /2/.
MT=203 (n,xp) cross section
Calculated with POD code /2/.
MT=204 (n,xd) cross section
Calculated with POD code /2/.
MT=205 (n,xt) cross section
Calculated with POD code /2/.
MT=206 (n,xHe3) cross section
Calculated with POD code /2/.
MT=207 (n,xa) cross section
Calculated with POD code /2/.
MF= 4 Angular distributions of emitted neutrons
MT= 2 Elastic scattering
Calculated with POD code /2/.
MF= 6 Energy-angle distributions of emitted particles
MT= 16 (n,2n) reaction
Neutron spectra calculated with POD/2/.
MT= 17 (n,3n) reaction
Neutron spectra calculated with POD/2/.
MT= 22 (n,na) reaction
Neutron spectra calculated with POD/2/.
MT= 28 (n,np) reaction
Neutron spectra calculated with POD/2/.
MT= 32 (n,nd) reaction
Neutron spectra calculated with POD/2/.
MT= 51 (n,n') reaction
Neutron angular distributions calculated with POD/2/.
MT= 52 (n,n') reaction
Neutron angular distributions calculated with POD/2/.
MT= 53 (n,n') reaction
Neutron angular distributions calculated with POD/2/.
MT= 54 (n,n') reaction
Neutron angular distributions calculated with POD/2/.
MT= 55 (n,n') reaction
Neutron angular distributions calculated with POD/2/.
MT= 56 (n,n') reaction
Neutron angular distributions calculated with POD/2/.
MT= 57 (n,n') reaction
Neutron angular distributions calculated with POD/2/.
MT= 58 (n,n') reaction
Neutron angular distributions calculated with POD/2/.
MT= 59 (n,n') reaction
Neutron angular distributions calculated with POD/2/.
MT= 60 (n,n') reaction
Neutron angular distributions calculated with POD/2/.
MT= 61 (n,n') reaction
Neutron angular distributions calculated with POD/2/.
MT= 62 (n,n') reaction
Neutron angular distributions calculated with POD/2/.
MT= 63 (n,n') reaction
Neutron angular distributions calculated with POD/2/.
MT= 64 (n,n') reaction
Neutron angular distributions calculated with POD/2/.
MT= 65 (n,n') reaction
Neutron angular distributions calculated with POD/2/.
MT= 66 (n,n') reaction
Neutron angular distributions calculated with POD/2/.
MT= 67 (n,n') reaction
Neutron angular distributions calculated with POD/2/.
MT= 68 (n,n') reaction
Neutron angular distributions calculated with POD/2/.
MT= 69 (n,n') reaction
Neutron angular distributions calculated with POD/2/.
MT= 70 (n,n') reaction
Neutron angular distributions calculated with POD/2/.
MT= 71 (n,n') reaction
Neutron angular distributions calculated with POD/2/.
MT= 72 (n,n') reaction
Neutron angular distributions calculated with POD/2/.
MT= 73 (n,n') reaction
Neutron angular distributions calculated with POD/2/.
MT= 74 (n,n') reaction
Neutron angular distributions calculated with POD/2/.
MT= 75 (n,n') reaction
Neutron angular distributions calculated with POD/2/.
MT= 76 (n,n') reaction
Neutron angular distributions calculated with POD/2/.
MT= 77 (n,n') reaction
Neutron angular distributions calculated with POD/2/.
MT= 78 (n,n') reaction
Neutron angular distributions calculated with POD/2/.
MT= 79 (n,n') reaction
Neutron angular distributions calculated with POD/2/.
MT= 80 (n,n') reaction
Neutron angular distributions calculated with POD/2/.
MT= 81 (n,n') reaction
Neutron angular distributions calculated with POD/2/.
MT= 82 (n,n') reaction
Neutron angular distributions calculated with POD/2/.
MT= 83 (n,n') reaction
Neutron angular distributions calculated with POD/2/.
MT= 84 (n,n') reaction
Neutron angular distributions calculated with POD/2/.
MT= 85 (n,n') reaction
Neutron angular distributions calculated with POD/2/.
MT= 86 (n,n') reaction
Neutron angular distributions calculated with POD/2/.
MT= 87 (n,n') reaction
Neutron angular distributions calculated with POD/2/.
MT= 88 (n,n') reaction
Neutron angular distributions calculated with POD/2/.
MT= 89 (n,n') reaction
Neutron angular distributions calculated with POD/2/.
MT= 90 (n,n') reaction
Neutron angular distributions calculated with POD/2/.
MT= 91 (n,n') reaction
Neutron spectra calculated with POD/2/.
MT= 203 (n,xp) reaction
Proton spectra calculated with POD/2/.
MT= 204 (n,xd) reaction
Deuteron spectra calculated with POD/2/.
MT= 205 (n,xt) reaction
Triton spectra calculated with POD/2/.
MT= 206 (n,xHe3) reaction
He3 spectra calculated with POD/2/.
MT= 207 (n,xa) reaction
Alpha spectra calculated with POD/2/.
MF=12 Gamma-ray multiplicities
MT= 3 Non-elastic gamma emission
Calculated with POD code /2/.
MF=14 Gamma-ray angular distributions
MT= 3 Non-elastic gamma emission
Assumed to be isotropic.
MF=15 Gamma-ray spectra
MT= 3 Non-elastic gamma emission
Calculated with POD code /2/.
***************************************************************
* Nuclear Model Calculations with POD Code /2/ *
***************************************************************
1. Theoretical models
The POD code is based on the spherical optical model, the
distorted-wave Born approximaiton (DWBA), one-component exciton
preequilibrium model, and the Hauser-Feshbach-Moldauer statis-
tical model. With the preequilibrim model, semi-empirical
pickup and knockout process can be taken into account for
composite-particle emission. The gamma-ray emission from the
compound nucleus can be calculated within the framework of the
exciton model. The code is capable of reading in particle
transmission coefficients calculated by separate spherical or
coupled-channel optical model code.
2. Optical model parameters
Neutrons:
Coupled-channel optical model parameters /3/
Protons:
Koning and Delaroche /4/
Deuterons:
Lohr and Haeberli /5/
Tritons:
Becchetti and Greenlees /6/
He-3:
Becchetti and Greenlees /6/
Alphas:
Lemos /7/ potentials modified by Arthur and Young /8/
3. Level scheme of Hf-178
-------------------------
No. Ex(MeV) J PI
-------------------------
0 0.00000 0 +
1 0.09318 2 +
2 0.30662 4 +
3 0.63218 6 +
4 1.05856 8 +
5 1.14742 8 -
6 1.17463 2 +
7 1.19939 0 +
8 1.26025 2 -
9 1.26854 3 +
10 1.27669 2 +
11 1.31007 1 -
12 1.32246 3 -
13 1.36255 2 -
14 1.36409 9 -
15 1.38446 4 +
16 1.40944 4 -
17 1.43362 3 -
18 1.43421 0 +
19 1.44394 0 +
20 1.45036 4 +
21 1.47904 8 -
22 1.49642 2 +
23 1.51259 5 -
24 1.51361 2 +
25 1.51383 4 +
26 1.53315 5 +
27 1.53879 4 -
28 1.55400 6 +
29 1.56153 2 +
30 1.56667 2 -
31 1.57100 10 +
32 1.60147 10 -
33 1.63560 4 +
34 1.63673 5 -
35 1.63976 3 -
36 1.64045 5 +
37 1.64884 6 -
38 1.65146 5 -
39 1.65410 4 +
40 1.69108 6 +
-------------------------
Levels above 1.70108 MeV are assumed to be continuous.
4. Level density parameters
Energy-dependent parameters of Mengoni-Nakajima /9/ were used.
----------------------------------------------------------
Nuclei a* Pair Esh T E0 Ematch Elv_max
1/MeV MeV MeV MeV MeV MeV MeV
----------------------------------------------------------
Hf-179 20.645 0.897 1.612 0.514 -0.871 5.514 0.896
Hf-178 20.930 1.799 1.834 0.544 -0.516 7.225 1.691
Hf-177 20.775 0.902 1.759 0.533 -1.190 6.000 0.624
Hf-176 20.775 1.809 1.927 0.538 -0.407 7.077 1.767
Lu-178 20.825 0.000 1.338 0.403 -0.584 2.568 0.300
Lu-177 20.295 0.902 1.742 0.499 -0.639 5.159 1.184
Lu-176 19.534 0.000 1.378 0.516 -1.470 4.263 0.659
Yb-176 20.775 1.809 1.620 0.490 0.295 5.983 1.767
Yb-175 20.006 0.907 1.310 0.518 -0.680 5.317 1.035
Yb-174 20.077 1.819 1.456 0.506 0.310 6.070 2.037
----------------------------------------------------------
5. Gamma-ray strength functions
M1, E2: Standard Lorentzian (SLO)
E1 : Generalized Lorentzian (GLO) /10/
6. Preequilibrium process
Preequilibrium is on for n, p, d, t, He-3, and alpha.
Preequilibrium capture is on.
References
1) S.F.Mughabghab, Neutron Cross Sections, Vol.2, Part B,
(1984).
2) A.Ichihara et al., JAEA-Data/Code 2007-012 (2007).
3) S.Kunieda et al., J. Nucl. Sci. Technol. 44, 838 (2007).
4) A.J.Koning, J.P.Delaroche, Nucl. Phys. A713, 231 (2003).
5) J.M.Lohr, W.Haeberli, Nucl. Phys. A232, 381 (1974).
6) F.D.Becchetti,Jr., G.W.Greenlees, "Polarization
Phenomena in Nuclear Reactions," p.682, The University
of Wisconsin Press (1971).
7) O.F.Lemos, Orsay Report, Series A, No.136 (1972).
8) E.D.Arthur, P.G.Young, LA-8626-MS (1980).
9) A.Mengoni, Y.Nakajima, J. Nucl. Sci. Technol. 31, 151
(1994).
10) J.Kopecky, M.Uhl, Nucl. Sci. Eng. 41, 1941 (1990).